Impact of COVID-19 on Biochemical Oxygen Demand Market Latest trending report is booming globally by Top Leading Players LAR, Hach, Lovibond, VELP,…

Note: Due to the pandemic, we have included a special section on the Impact of COVID 19 on the Biochemical Oxygen DemandMarket which would mention How the Covid-19 is Affecting the Industry, Market Trends and Potential Opportunities in the COVID-19 Landscape, Key Regions and Proposal for Biochemical Oxygen Demand Market Players to battle Covid-19 Impact.

The Biochemical Oxygen DemandMarket report is compilation of intelligent, broad research studies that will help players and stakeholders to make informed business decisions in future. It offers detailed research and analysis of key aspects of the Biochemical Oxygen Demand market. Readers will be able to gain deeper understanding of the competitive landscape and its future scenarios, crucial dynamics, and leading segments of the global Biochemical Oxygen Demand market. Buyers of the report will have access to accurate PESTLE, SWOT and other types of analysis on the global Biochemical Oxygen Demand market. Moreover, it offers highly accurate estimations on the CAGR, market share, and market size of key regions and countries. Players can use this study to explore untapped Biochemical Oxygen Demand markets to extend their reach and create sales opportunities.

The study encompasses profiles of major Companies/Manufacturers operating in the global Biochemical Oxygen Demand Market.Key players profiled in the report include:LAR, Hach, Lovibond, VELP, YSI (Xylem), Skalar, Mantech-Inc, Mettler Toledo, Thermo Fisher Scientific, WTW (Xylem), Camlab, Ohkura and More

Get PDF Sample Copy of the Report to understand the structure of the complete report (Including Full TOC, List of Tables & Figures, Chart):https://www.marketinforeports.com/Market-Reports/Request-Sample/143683

Segmental Analysis:The report has classified the global Biochemical Oxygen Demand market into segments including product type and application. Every segment is evaluated based on share and growth rate. Besides, the analysts have studied the potential regions that may prove rewarding for the Biochemical Oxygen Demand manufcaturers in the coming years. The regional analysis includes reliable predictions on value and volume, there by helping market players to gain deep insights into the overall Biochemical Oxygen Demand industry.

Market Segment By Type:Laboratory BOD AnalyzerPortable BOD AnalyzerOnline BOD Analyzer

Market Segment By Application:Municipal Wastewater Treatment PlantsIndustrial Production FacilitiesLaboratoriesOthers

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The authors of the report have analyzed both developing and developed regions considered for the research and analysis of the global Biochemical Oxygen Demand market. The regional analysis section of the report provides an extensive research study on different regional and country-wise Biochemical Oxygen Demand industry to help players plan effective expansion strategies.

Regions Covered in the Global Biochemical Oxygen Demand Market: The Middle East and Africa (GCC Countries and Egypt) North America (the United States, Mexico, and Canada) South America (Brazil etc.) Europe (Turkey, Germany, Russia UK, Italy, France, etc.) Asia-Pacific (Vietnam, China, Malaysia, Japan, Philippines, Korea, Thailand, India, Indonesia, and Australia)

Years Considered to Estimate the Market Size:History Year: 2015-2019Base Year: 2019Estimated Year: 2020Forecast Year: 2020-2025

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Impact of COVID-19 on Biochemical Oxygen Demand Market Latest trending report is booming globally by Top Leading Players LAR, Hach, Lovibond, VELP,...

Sarepta Therapeutics and University of Florida Announce Collaboration to Accelerate the Discovery and Development of Therapies for Rare Genetic…

CAMBRIDGE, Mass. and GAINESVILLE, Fla., Aug. 11, 2020 (GLOBE NEWSWIRE) -- Sarepta Therapeutics, Inc. Inc. (NASDAQ:SRPT), the leader in precision genetic medicine for rare diseases, and the University of Florida today announced a strategic collaboration to enable cutting-edge research for novel genetic medicines. Through the agreement, Sarepta will fund multiple research programs at the University, and will have an exclusive option to further develop any new therapeutic compounds that result from the funded research programs.

We have developed a productive incubator approach to our pipeline development, partnering with the best and brightest in genetic medicine, including leading academic researchers like those at the University of Florida, to discover and translate into meaningful therapies genetic medicine for rare diseases, said Sarepta President and CEO Doug Ingram. Weare excited topartner with andsupportUF research that has the potentialto profoundlyimproveand extend the lives of patients with rare genetic-based diseases.

Through the collaboration, currently unique to UF, funding has been allocated for four innovative projects. These projects include exploratory research in novel gene therapy vectors, next-generation capsids and gene editing technologies as well as work in new therapeutic areas in degenerative genetic diseases. The goal is to foster early relationships with experts and accelerate the scientific advancements that lead to the development of transformational precision genetic medicines for patients in need.

Our researchers intend to find solutions for diseases that have no cure or limited therapeutic options. Their goal is to move these solutions from their labs to patients who need them to see their discoveries change lives. Because Sarepta has a focus and expertise in disease areas that coincide with the work of some of our scientists, its a match and collaboration that make sense and, we hope, will save lives, said Jim OConnell, assistant vice president of UF Innovate, the technology commercialization arm of the university. Sarepta has a bold vision for transforming genetic disease because the company, ultimately, serves patients. That end goal drives its willingness and ability to translate research into a medical reality. We want to be part of that.

University of Florida is a gene therapy powerhouse. UF researchers were the first to discover the life cycle of the adeno-associated virus (AAV), the smallest human virus. Using AAV as a benign delivery vehicle to carry therapeutics to a target, UF was first to reverse blindness in dogs with genetic disease, and UF researchers were integral in the first gene therapy approved by the FDA to treat an inherited genetic disease that can cause blindness. Today, UF is developing technologies in manufacturing, capsid design and therapies to address neuromuscular, cardiovascular, inflammatory, metabolic, pulmonary, skeletal, ophthalmic, and other disorders.

About SareptaAt Sarepta, we are leading a revolution in precision genetic medicine and every day is an opportunity to change the lives of people living with rare disease. The Company has built an impressive position in Duchenne muscular dystrophy (DMD) and in gene therapies for limb-girdle muscular dystrophies (LGMDs), mucopolysaccharidosis type IIIA, Charcot-Marie-Tooth (CMT), and other CNS-related disorders, with more than 40 programs in various stages of development. The Companys programs and research focus span several therapeutic modalities, including RNA, gene therapy and gene editing. For more information, please visitwww.sarepta.comor follow us onTwitter,LinkedIn,InstagramandFacebook.

Sarepta Forward-Looking Statements This press release contains "forward-looking statements." Any statements contained in this press release that are not statements of historical fact may be deemed to be forward-looking statements. Words such as "believes," "anticipates," "plans," "expects," "will," "intends," "potential," "possible" and similar expressions are intended to identify forward-looking statements. These forward-looking statements include statements regarding the ability of the collaboration between Sarepta and UF to engage in cutting-edge research for novel genetic medicines; Sareptas commitment to fund multiple research programs at UF; Sareptas option to further develop any new therapeutic compounds that result from the funded research programs; Sareptas incubator approach to discover and translate into meaningful therapies genetic medicine for rare diseases; the collaborations potential to profoundly improve and extend the lives of patients with rare genetic-based diseases; the collaborations ability to foster early relationships with experts to accelerate the scientific advancements that lead to the development of transformational precision genetic medicines; and Sareptas vision to transform genetic disease and translate research into a medical reality.

These forward-looking statements involve risks and uncertainties, many of which are beyond Sareptas control. Known risk factors include, among others: the expected benefits and opportunities related to the collaboration between Sarepta and UF may not be realized or may take longer to realize than expected due to challenges and uncertainties inherent in product research and development. In particular, the collaboration may not result in the discovery of any new therapeutic compounds or any viable treatments suitable for commercialization due to a variety of reasons, including any inability of the parties to perform their commitments and obligations under the agreement; Sarepta may not be able to execute on its business plans and goals, including meeting its expected or planned regulatory milestones and timelines, clinical development plans, and bringing its product candidates to market, due to a variety of reasons, many of which may be outside of Sareptas control, including possible limitations of company financial and other resources, manufacturing limitations that may not be anticipated or resolved for in a timely manner, regulatory, court or agency decisions, such as decisions by the United States Patent and Trademark Office with respect to patents that cover Sareptas product candidates and the COVID-19 pandemic; and those risks identified under the heading Risk Factors in Sareptas most recent Annual Report on Form 10-K for the year ended December 31, 2019, and most recent Quarterly Report on Form 10-Q filed with the Securities and Exchange Commission (SEC) as well as other SEC filings made by Sarepta which you are encouraged to review.

Any of the foregoing risks could materially and adversely affect Sareptas business, results of operations and the trading price of Sareptas common stock. For a detailed description of risks and uncertainties Sarepta faces, you are encouraged to review the SEC filings made by Sarepta. We caution investors not to place considerable reliance on the forward-looking statements contained in this press release. Sarepta does not undertake any obligation to publicly update its forward-looking statements based on events or circumstances after the date hereof.

Contacts:

Sarepta Therapeutics Investors: Ian Estepan, 617-274-4052, iestepan@sarepta.comMedia: Tracy Sorrentino, 617-301-8566, tsorrentino@sarepta.com

UF Innovate: Sara Dagen, 352-294-0998, saradagen@ufl.edu

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Sarepta Therapeutics and University of Florida Announce Collaboration to Accelerate the Discovery and Development of Therapies for Rare Genetic...

Governor Cooper Announces Genetic Medicine Company Will Create 201 Jobs in Durham County – NC Dept of Commerce

Governor Roy Cooper announced today that Beam Therapeutics (Nasdaq; BEAM), a biotechnology company developing precision medicines through DNA base editing, plans to build a manufacturing facility in North Carolinas Research Triangle Park, creating 201 jobs. Over a period of 5 years, the company expects to invest $83 million in the facility, which will support clinical and commercial manufacturing for the companys novel base editing programs.

"North Carolina is a leader in biotechnology, from the research in our labs to the states biomanufacturers, said Governor Cooper. Companies like Beam Therapeutics work in developing precision medicines will help keep North Carolina on the cutting edge of this industry.

Beam Therapeutics, with headquarters in Cambridge, Massachusetts, develops precision genetic medicines through base editing. The foundational level of genetic information is a single base letter in DNA, and an error to a single letter, known as a point mutation, can cause disease. Base editors have the ability to rewrite just a single letter, and thereby intervene at the most foundational level. Beams proprietary base editors create precise, predictable and efficient single base changes, at targeted genomic sequences, without making double-stranded breaks in the DNA. This enables a wide range of potential therapeutic editing strategies that Beam is using to advance a diversified portfolio of base editing programs.

We believe investment in strategic manufacturing capabilities is an important component of fully realizing the power of our base editing technology and achieving our vision to provide life-long cures to patients suffering from serious diseases, said John Evans, CEO of Beam Therapeutics. Research Triangle Park is a thriving biopharmaceutical hub, providing significant access to the broad range of talent we will need to make this vision a reality.

Although wages will vary depending on position, the average salary for the new positions will be $102,654. The average wage in Durham County is $71,756. The state and local area will see a yearly economic impact of more than $20.6 million from this companys new payroll.

"North Carolina has been a world leader in biotechnology for many years, but were not resting on our past accomplishments, said North Carolina Commerce Secretary Anthony M. Copeland. Beam Therapeutics joins a host of gene therapy companies that are keeping North Carolina at the forefront of this new frontier of medicine.

Beam Therapeutics project in North Carolina will be facilitated, in part, by a Job Development Investment Grant (JDIG) approved by the states Economic Investment Committee earlier today. Over the course of 12 years, the project is estimated to grow the states economy by $1.36 billion. Using a formula that takes into account the new tax revenues generated by the new jobs, the agreement authorizes the potential reimbursement to the company of up to $3,237,750, spread over 12 years. Payments for all JDIGs only occur following performance verification by the departments of Commerce and Revenue that the company has met its incremental job creation and investment targets. JDIG projects result in positive net tax revenue to the state treasury, even after taking into consideration the grants reimbursement payments to a given company.

Because Beam Therapeutics chose a site in Durham County, classified by the states economic tier system as Tier 3, the companys JDIG agreement also calls for moving as much as $1,079,250 into the states Industrial Development Fund Utility Account. The Utility Account helps rural communities finance necessary infrastructure upgrades to attract future business. Even when new jobs are created in a Tier 3 county such as Durham, the new tax revenue generated through JDIG grants helps more economically challenged communities elsewhere in the state. More information on the states economic tier designations is available here.

In addition to the North Carolina Department of Commerce and the Economic Development Partnership of N.C., other key partners on this project were the the North Carolina Community College System, the North Carolina Biotechnology Center, Durham County, and the Greater Durham Chamber of Commerce.

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Governor Cooper Announces Genetic Medicine Company Will Create 201 Jobs in Durham County - NC Dept of Commerce

5 things to know about CRISPR and gene editing in the COVID era – World Economic Forum

One of the most common misconceptions about CRISPR is that its only useful for gene editing. In reality, CRISPR can be used for a wide variety of non-gene editing applications, ranging from diagnostics to antiviral applications.

There is also a perception that the gene-editing mechanism of CRISPR is the bottleneck for curing all disease. The reality is that, for many applications, the bottleneck is actually our understanding of the genetic code itself or the limitations of what changing that code can actually accomplish. How factors interplay with our genetic code to produce diseases is a field that is critical for unlocking gene editings full potential.

One of the most perplexing aspects of COVID-19 is its enormous range of symptoms. Three people might contract it and have no overlap in their experience. Precision medicine an innovative approach to care that takes into account an individuals genes, environment, and lifestyle is playing a key role in understanding the genetic and environmental factors that might explain why one person is asymptomatic while another must be put on a ventilator, says Cameron Fox, Specialist on Precision Medicine at the World Economic Forum, and an expert in COVID-19 diagnostics technology.

Beyond the current crisis, this innovative work will have lasting, positive effects on many facets of the health ecosystem. One example is CRISPR-based diagnostics. CRISPRs ability to rapidly and accurately diagnose a wide range of diseases is only now being seriously explored. If this technology can be perfected, it would be a gamechanger in our fight against COVID-19, Fox continues.

Mammoth Biosciences is a World Economic Forum Global Innovator at the forefront of these developments. Here are five things Mammoths Co-Founder and CEO Trevor Martin thinks are important to know about how the field is evolving in the era of COVID-19.

The advent of CRISPR-based diagnostics fundamentally means a better understanding of the molecular world around us for areas ranging from human disease to crop health.

Infectious disease is a key use-case area for the diagnostic applications of CRISPR. Its become clear that one of its most powerful uses is its ability to provide reliable molecular information quickly and in a variety of formats.

International borders, workplaces, homes and maybe even concerts, conferences or other large events could benefit greatly from having tests for COVID-19 (and other diseases) that give gold-standard results within minutes. During a pandemic, this type of information is critical for fully reopening economies and engaging in robust contact tracing.

We created a robust test for the novel coronavirus within weeks particularly important as we contemplate the fact that it is a matter of when, not if, we must combat future pandemics beyond the current one, says Trevor Martin.

Beyond these more immediate uses, there is exciting potential for testing our environment more broadly, through monitoring samples from sewage or air. These measurements could give us unprecedented insight into our ecosystems and how they influence our health.

As CRISPR-based diagnostics pave the way for decentralized testing, the technological disruption will also open the door for accelerated adoption of value-based care models, rather than fee-for-service healthcare as in the United States.

Decentralized testing allows people to have more control over their own health and understand better when and how to interact with the healthcare system. Ideally, robust and prevalent diagnostics could mean fewer physical visits to a doctor (and shorter wait times), but the same or higher quality of care for more people by supercharging a doctors ability to care for patients through virtual consultations.

To reach its full potential, decentralized testing needs to go beyond its current model of expensive and complicated boxes with cartridges and embrace fully democratizable formats that can be used by individuals without extensive training. For example, Mammoth is creating CRISPR-based tests for diseases like COVID-19 in a format similar to a pregnancy test. This truly decentralized testing will allow for greater access to care and better information about when to seek it.

The application of precision medicine to save and improve lives relies on good-quality, easily-accessible data on everything from our DNA to lifestyle and environmental factors. The opposite to a one-size-fits-all healthcare system, it has vast, untapped potential to transform the treatment and prediction of rare diseasesand disease in general.

But there is no global governance framework for such data and no common data portal. This is a problem that contributes to the premature deaths of hundreds of millions of rare-disease patients worldwide.

The World Economic Forums Breaking Barriers to Health Data Governance initiative is focused on creating, testing and growing a framework to support effective and responsible access across borders to sensitive health data for the treatment and diagnosis of rare diseases.

The data will be shared via a federated data system: a decentralized approach that allows different institutions to access each others data without that data ever leaving the organization it originated from. This is done via an application programming interface and strikes a balance between simply pooling data (posing security concerns) and limiting access completely.

The project is a collaboration between entities in the UK (Genomics England), Australia (Australian Genomics Health Alliance), Canada (Genomics4RD), and the US (Intermountain Healthcare).

COVID-19 has opened many peoples eyes to the massive and surprising gaps in infectious disease diagnostics.

Diagnostics is, currently, a space where you must choose between a highly accurate result that requires long turn-around times and trained personnel and/or expensive equipment or a rapid result in an accessible format that sacrifices sensitivity and specificity.

COVID-19 has also made us more conscious of our shared responsibility to combat these unique types of diseases that we silently spread to each other. Hopefully, through focused investment in technology development as well as an elevated societal and government focus on detecting, curing and preventing infectious diseases, we can not only fight this pandemic but come out stronger against emerging infectious diseases.

The adage an ounce of prevention is worth a pound of cure will be more relevant than ever as weve seen the devastating effects and herculean efforts required to control and cure an infectious disease once it has evaded containment and prevention techniques.

As part of the focus on prevention, we need to ensure that as many people as possible have access to and entry points into broader healthcare networks. Access in particular should become a key focus as this pandemic has highlighted that we are only as strong as the most vulnerable among us. This challenges the current model of service-based healthcare.

Furthermore, biotechnology will become a top strategic priority for many governments, as an ability to prevent and mitigate a pandemic is an enormous political and economic advantage. It will become ever more important to understand and focus on how to communicate sound science broadly and in a way that all people trust. Weve seen in this pandemic that the increased use of pre-print servers has accelerated an amazing new model for rapidly disseminating cutting-edge science so people around the world can collaborate and build on it quickly. At the same time, it is harder than ever for individuals to know what is relevant and real. It will be important to find ways to retain the shift in pace, speed and openness of communication while maintaining the reliability and trust that gatekeeping mechanisms like peer-reviewed journals have long tried to provide.

Reliable, accurate and understandable information is key for both. We need consensus sources of information that are trusted by diverse groups and backed by strong science internationally.

People want what is best for their communities, their families and themselves, but it can be hard to separate fact from fiction. It is all the more important to ensure we have robust and frequent communication about science as well as forums that allow for stakeholders of all stripes to participate in a conversation on their benefits and drawbacks.

Ethical use of these technologies should not and cannot be determined only by a single group or individual. It is a shared responsibility across patients, industry, government and civic leaders. Understanding the molecular world and modifying it are increasingly tractable and accessible notions, but the use and misuse of technologies like CRISPR are important topics that have no easy answers.

The bottom line: It is critical that the public has an opportunity to understand how these technologies work and access to informed and rigorous sources of information for doing so, concludes Trevor Martin. Equally important, we must make sure that this information and insight is distributed widely and equally so that all of us participate in shaping and can benefit from these exciting advances.

Image: World Economic Forum

Last year, the World Economic Forum launched Strategic Intelligence, its flagship digital product to help individuals and organizations see the big picture on the global issues facing the world. It provides a tremendous resource for exploring the interconnections between over 250 different topics and keeping up to date on everything that could potentially be an opportunity or a risk to you or your organization. Strategic Intelligence enables organizations, like the Global Innovators, to keep abreast of risks, opportunities and trends, enabling them to take more of a data-driven approach to managing their business.

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5 things to know about CRISPR and gene editing in the COVID era - World Economic Forum

In the face of COVID-19, cell and gene therapy space shows ‘remarkable resilience:’ report – FierceBiotech

In the early days of COVID-19, the Alliance for Regenerative Medicine (ARM) was unsure how the pandemic and its accompanying economic downturn would affect the cell and gene therapy space.

It was a really specific time when the world and the markets were clearly reeling from the first appreciation for the seriousness of COVID-19, Janet Lambert, the organizations CEO said.

Now, the numbers are inand theyre better than ever. In the first half of 2020, the regenerative medicine sector raised $10.7 billion, more than the total capital raised in 2019 and a 120% jump over the first half of 2019, ARM found in a new report titled, Innovation in the Time of COVID-19. The proceeds were shared pretty evenly between cell therapy companies ($7.5 billion) and gene and gene-modified cell therapy companies ($7.9 billion), with companies focused on tissue engineering reeling in $84 million.

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RELATED: Biotech IPO bonanza: Legend's $350M offering as Repare, Forma get in on the action

That $10.7 billion was driven by a couple of outsize deals and includes $1.4 billion raised in five IPOs, $1.6 billion in follow-on offerings and $3 billion in venture capital. Chinese CAR-T player Legend Biotech led the pack with its mammoth $487 million Wall Street debut in June, but its peers netted considerable sums too. That same month, gene therapy companies Generation Bio and Akouos raised $230 million and $244 million, respectively. In February, another gene therapy outfit, Passage Bio, raised $284 million and gene-editing biotech Beam Therapeutics bagged $207 million.

On the venture side, Sana Biotechnology scored $700 millionalmost as much as the five next largest private rounds raised by Orca Bio Elevate Bio, Legend, Freeline Therapeutics and Poseida, the report found. Like Legend, Generation Bio and Akouos also completed sizable private rounds the same year they went public.

RELATED: 'The silver lining': Biotech IPOs in the time of coronavirus

All this enthusiasm for this sector right now is evidenced by these really astonishing financing numbers I think the drivers of that enthusiasm remain in place and make me optimistic for the second half of 2020, Lambert said. We continue to see really promising clinical results. We continue to see products making it to market. We continue to see patient, regulator and payer enthusiasm for these products.

Part of that enthusiasm stems from an appreciation for the biotech sector generally, Lambert said.

Attention is being paid to what the biopharma sector can do for us all as we try to weather and get out of the pandemic, she said, echoing the sentiments of venture capitalists whove managed to raise life sciences funds in spite of the pandemic.

The other side of the equation is the nature of biotechbecause the drug development cycle is long, biotech investors arent looking for quarter-to-quarter returns, but at milestone readouts that can come more than a year after IPO, Jordan Saxe, head of healthcare listings at Nasdaq, said in a previous interview.

Biotech is actually fairly well positioned to weather these kinds of events because youre not relying on day-to-day consumer spending. Youre relying on meaningful clinical catalysts at the end of the day to really generate value, and thats still going to be there in this environment, said Jason Pitts, Ph.D., a principal at Sofinnova, in ARMs report.

RELATED: Flagship raises $1.1B to create biotechs for post-pandemic world

All this gas in the tank isnt just bankrolling existing cell and gene therapies, but also driving company formation, Lambert said. For the first time, ARM counts more than 1,000 companies working in the sector, with more than 1,000 clinical trials going on worldwide. More than half of those studies are in phase 2, with just over a third in phase 1 and the remainder in phase 3.

Of those studies, 11 are testing regenerative medicine approaches against COVID-19, with several academic research centers and biopharma companies working on new treatments to treat the disease in the short and long term.

Most of them are using cell therapies to address ARDS, or acute respiratory distress syndrome, which is a consequence of COVID-19, Lambert said. Unlike other prospects in the pipeline, such as antibodies, which could potentially be used to prevent infection as well as treat it, regenerative treatments focus on repairing damage to the lungs or other organs that patients can suffer as part of COVID-19.

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In the face of COVID-19, cell and gene therapy space shows 'remarkable resilience:' report - FierceBiotech

Global Gene Synthesis Market Will Reach USD 27308 Million By 2027: Facts and Factors – PharmiWeb.com

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LogicBio Therapeutics Reports Second Quarter 2020 Financial Results and Provides Business UpdatesFDA Clears IND Application for LB-001 for the…

LEXINGTON, Mass., Aug. 10, 2020 (GLOBE NEWSWIRE) -- LogicBio Therapeutics, Inc. (Nasdaq:LOGC) (LogicBio or the Company), a company dedicated to extending the reach of genetic medicine with pioneering targeted delivery platforms, today reported financial results for the quarter ended June 30, 2020, provided a business update and announced the U.S. Food and Drug Administration (FDA) has cleared the Companys Investigational New Drug (IND) application for LB-001 for the treatment of methylmalonic acidemia in pediatric patients. LogicBio released a separate press release this morning providing further details on the planned Phase 1/2 clinical design for LB-001.

We are thrilled to have received clearance to move forward with this first-in-human clinical trial with our lead product candidate, LB-001, for the treatment of methylmalonic acidemia, a life-threatening congenital genetic disease with no current therapeutic treatment options. This represents a significant milestone in our goal of bringing a treatment to MMA patients as well as for our GeneRide platform. We have maintained continuous dialogue with the centers of excellence that are planned to participate in the Phase 1/2 clinical trial, and we look forward to activating these sites as quickly as possible, said Fred Chereau, CEO of LogicBio. We have instituted systems attempting to mitigate COVID-19 dynamics on our study start-up process and, based on our best estimates, we plan to enroll our first patient in early 2021.

Commenting on the Next Generation Capsid Program, Mr. Chereau said, We are very excited about the recent advances in our novel capsid program, which has generated liver-tropic capsids intended for use in gene editing technologies such as GeneRide and other gene therapy approaches. We are focused on executing across all of our programs and look forward to sharing further details on our novel capsids in early 2021.

Appointment of Daniel Gruskin, M.D. to SVP, Head of Clinical Development

Daniel Gruskin, M.D. was appointed as SVP, head of clinical development in August 2020. Dr. Gruskin has served as interim head of clinical development of LogicBio since June 2020. In April 2020, Dr. Gruskin started consulting with the Company as a special advisor. Previously, Dr. Gruskin served in roles of increasing responsibility at Sanofi Genzyme, most recently as vice president, head of global medical affairs, rare disease, in which capacity he oversaw medical affairs, life cycle management, scientific affairs and other medical and development activities related to metabolic, rare and/or genetic diseases. Prior to his role at Sanofi Genzyme, Dr. Gruskin served as assistant professor, human genetics and pediatrics at Emory University School of Medicine, where he was also the chief of the genetics section at Childrens Healthcare of Atlanta.

Daniel has been instrumental in leading LB-001 clinical development efforts including getting the IND cleared. His deep experience in genetic medicines and metabolic diseases will serve LogicBio well as we look to execute on our goals for both the GeneRide and Next Generation Capsid platforms in search of transformative medicines, said Mr. Chereau.

Anticipated Milestones for 2020 and 2021:

Second Quarter 2020 Financial Results

Three Months Ended June 30, 2020 and 2019

About LogicBio Therapeutics

LogicBio Therapeuticsis dedicated to extending the reach of genetic medicine with pioneering targeted delivery platforms.

LogicBios proprietary genome editing technology platform, GeneRide, enables the site-specific integration of a therapeutic transgene without nucleases or exogenous promoters by harnessing the native process of homologous recombination. LogicBio has received FDA clearance for the first-in-human clinical trial of LB-001, a wholly owned genome editing program leveraging GeneRide for the treatment of methylmalonic acidemia. Patient enrollment is expected to begin in early 2021. In addition, LogicBio has a collaboration with Takeda to research and develop LB-301, an investigational therapy leveraging GeneRide for the treatment of the rare pediatric disease Crigler-Najjar syndrome.

LogicBio is also developing a Next Generation Capsid platform for use in gene editing and gene therapies. Data presented have shown that the capsids deliver highly efficient functional transduction of human hepatocytes with improved manufacturability with low levels of pre-existing neutralizing antibodies in human samples. Top-tier capsid candidates from this effort demonstrated significant improvements over benchmark AAVs currently in clinical development. LogicBio is developing these highly potent vectors for internal development candidates and potentially for business development collaborations.

LogicBio is headquartered inLexington, Mass. For more information, please visitwww.logicbio.com.

Forward Looking Statements

This press release contains forward-looking statements within the meaning of the federal securities laws, including those related to the Companys plans to initiate, advance and complete its planned SUNRISE Phase 1/2 clinical trial of LB-001 in MMA; the timing, progress and results of the Companys research and development activities, including those related to the GeneRide technology platform and Next Generation Capsid Program; its plans for LB-301 in Crigler-Najjar; and the sufficiency of its cash and cash equivalents to fund operating expenses and capital expenditure requirements. These are not statements of historical facts and are based on managements beliefs and assumptions and on information currently available. They are subject to risks and uncertainties that could cause the actual results and the implementation of the Companys plans to vary materially, including the risks associated with the initiation, cost, timing, progress and results of the Companys current and future research and development activities and preclinical studies and potential future clinical trials. In particular, the impact of the COVID-19 pandemic on the Companys ability to progress with its research, development, manufacturing and regulatory efforts, including the Companys plans to initiate, advance and complete its Phase 1/2 clinical trial for LB-001 in MMA, and the value of and market for the Companys common stock, will depend on future developments that are highly uncertain and cannot be predicted with confidence at this time, such as the ultimate duration of the pandemic, travel restrictions, quarantines, social distancing and business closure requirements in the United States and in other countries, and the effectiveness of actions taken globally to contain and treat the disease. These risks are discussed in the Companys filings with the U.S. Securities and Exchange Commission (SEC), including, without limitation, the Companys Annual Report on Form 10-K filed on March 16, 2020 with the SEC, the Companys Quarterly Report on Form 10-Q filed on May 11, 2020, and the Companys subsequent Quarterly Reports on Form 10-Q and other filings with the SEC. Except as required by law, the Company assumes no obligation to update these forward-looking statements publicly, even if new information becomes available in the future.

Contacts:

Investors:Brian LuqueAssociate Director, Investor Relationsbluque@logicbio.com951-206-1200

Media:Stephanie SimonTen Bridge CommunicationsStephanie@tenbridgecommunications.com617-581-9333

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LogicBio Therapeutics Reports Second Quarter 2020 Financial Results and Provides Business UpdatesFDA Clears IND Application for LB-001 for the...

Global Cell and Gene Therapy Market, Forecast to 2025 by Product, Disease, End-user and Region – COVID-19 Updated – PRNewswire

DUBLIN, Aug. 10, 2020 /PRNewswire/ -- The "Cell & Gene Therapy Market - Global Outlook and Forecast 2020-2025" report has been added to ResearchAndMarkets.com's offering.

In-depth Analysis and Data-driven Insights on the Impact of COVID-19 Included

The study considers the present scenario of the cell and gene therapy market and its market dynamics for the period 2019-2025. It covers a detailed overview of several market growth enablers, restraints, and trends. The report offers both the demand and supply aspects of the market. It profiles and examines leading companies and other prominent ones operating in the market.

Key Questions Answered

1. What is the cell and gene therapy market size and growth rate during the forecast period?2. What are the factors impacting the growth of the cell and gene therapy market share?3. How is the growth of the healthcare segment affecting the growth of the cell and gene therapy market?4. Who are the leading vendors in the cell and gene therapy market, and what are their market shares?5. Which product type/ end-user type/region is generating the largest revenue in the Asia-Pacific region?

The global cell and gene therapy market by revenue is expected to grow at a CAGR of over 30.9% during the period 2019-2025

The global cell and gene therapy market is one of the fastest-growing segments in the regenerative medicine market. The market is expected to grow at a faster pace during the forecast period. The demand can be attributed to the growing prevalence of several chronic diseases such as cancer, cartilage related problems, wounds, diabetic foot ulcer, genetic disorders, and other rare diseases across the globe.

The prevalence of cancer and diabetes is increasing in the global population, which is influencing the growth of the market. There is a large unmet need in the treatment available, which is filled by cell and gene therapies. The market is growing due to the increased availability of funding from various public and private institutions. Besides, there is increased support from regulatory bodies for product approval. Several governments are creating awareness of cell and gene therapies in the population.

Cell and Gene Therapy Market Segmentation

The global cell and gene therapy market research report includes a detailed segmentation by product, disease, end-user, and geography.

In 2019, the cell therapy segment accounted for a market share of over 53% in the global cell and gene therapy market. The segment is expected to grow at a steady rate during the forecast period due to the increase in the target population and the rise in the number of countries preferring cell therapies in their patients. Increased therapeutic benefits are attracting several countries to invest in this technology and conduct a high number of clinical trials. However, the lack of advanced infrastructure in developing countries is hindering the growth of the segment.

In 2019, the oncology segment accounted for a share of over 40% in the global cell and gene therapy market. Oncology has been one of the targets of intense research for the gene therapy procedures & approach. More than 60% of on-going gene therapy clinical trials are targeting cancer. The segment is expected to grow at a promising rate on account of the high prevalence of cancer diseases, especially in low and middle-come countries. The market is growing at a double-digit CAGR, which is expected to help the segment as many cell and gene therapy for cancer are commercially available.

The dermatology application segment in the cell and gene therapy includes wound care management among patients. Vendors are focusing on the development and commercialization of advanced wound care products for the treatment of chronic and acute wounds, thereby increasing the growth of the wound care market. The increased pervasiveness of diabetics is increasing acute and chronic wounds, including surgical wounds, pressure ulcers, diabetic foot ulcers, and other wounds.

In 2019, the oncology segment accounted for a share of over 40% in the global cell and gene therapy market. Oncology has been one of the targets of intense research for the gene therapy procedures & approach. More than 60% of on-going gene therapy clinical trials are targeting cancer. The segment is expected to grow at a promising rate on account of the high prevalence of cancer diseases, especially in low and middle-come countries. The market is growing at a double-digit CAGR, which is expected to help the segment as many cell and gene therapy for cancer are commercially available.

The dermatology application segment in the cell and gene therapy includes wound care management among patients. Vendors are focusing on the development and commercialization of advanced wound care products for the treatment of chronic and acute wounds, thereby increasing the growth of the wound care market. The increased pervasiveness of diabetics is increasing acute and chronic wounds, including surgical wounds, pressure ulcers, diabetic foot ulcers, and other wounds.

Segmentation by Product

Segmentation by Disease

Segmentation by End-user

Insights by Geography

In 2019, North America accounted for a share of over 60% of the global cell and gene therapy market. There are more than 530 regenerative medicine companies, including cell and gene therapy manufacturing developers. The number of products approved in North America grew significantly in 2019, with developers filed for marketing authorization for 10+ regenerative medicines, many of which we expect to be approved in 2020. Within the next 1-2 years, the number of approved gene therapies is expected to double.

The US and Canada are the major contributors to the cell and gene therapy market in North America. Regulatory bodies are supporting several investigational products, fast track approvals, RMAT designation for the faster approval of the product into the market. The alliance for regenerative medicine and Medicare and Medicaid is working together to bring the structured reimbursement channels for cell and gene therapies.

Segmentation by Geography

Insights by Vendors

The global cell and gene therapy market is highly dynamic and characterized by the presence of several global, regional, and local vendors offering a wide range of therapies. Dendreon, Gilead Sciences, Novartis, Organogenesis, Osiris Therapeutics, Vericel, Amgen, and Spark Therapeutics are the leading players in the market with significant shares.

Vendors such as NuVasive, APAC Biotech, Nipro, Orthocell, bluebird bio, J-TEC, and Terumo are the other prominent players in the market with a presence, especially in the cell therapy market. Most leading players are focusing on implementing strategies such as product launches and approvals, marketing and promotional activities, acquisitions, increased R&D investments, and strengthening their distribution networks to enhance their share and presence in the market.

Prominent Vendors

Other Prominent Vendors

Market Dynamics

Opportunities & Trends

Growth Enablers

Growth Restraints

For more information about this report visit https://www.researchandmarkets.com/r/is5t27

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Global Cell and Gene Therapy Market, Forecast to 2025 by Product, Disease, End-user and Region - COVID-19 Updated - PRNewswire

BEAM THERAPEUTICS : Management’s Discussion and Analysis of Financial Condition and Results of Operations (form 10-Q) – marketscreener.com

The following discussion and analysis of our financial condition and results ofoperations should be read in conjunction with our condensed consolidatedfinancial statements and the related notes to those statements includedelsewhere in this Quarterly Report on Form 10-Q. In addition to historicalfinancial information, the following discussion and analysis containsforward-looking statements that involve risks, uncertainties and assumptions.Some of the numbers included herein have been rounded for the convenience ofpresentation. Our actual results may differ materially from those anticipated inthese forward-looking statements as a result of many factors, including thosediscussed in "Risk Factors" in Part II, Item 1A. and elsewhere in this QuarterlyReport on Form 10-Q.

Overview

We are a biotechnology company committed to creating a new class of precisiongenetic medicines based on our proprietary base editing technology, with avision of providing life-long cures to patients suffering from serious diseases.Our proprietary base editing technology potentially enables an entirely newclass of precision genetic medicines that targets a single base in the genomewithout making a double-stranded break in the DNA. This approach uses a chemicalreaction designed to create precise, predictable and efficient genetic outcomesat the targeted sequence. Our novel base editors have two principal components:(i) a CRISPR protein, bound to a guide RNA, that leverages the establishedDNA-targeting ability of CRISPR, but modified to not cause a double-strandedbreak, and (ii) a base editing enzyme, such as a deaminase, which carries outthe desired chemical modification of the target DNA base. We believe this designcontributes to a more precise and efficient edit compared to traditional geneediting methods. The precision of our editors has the potential to increase theimpact of gene editing for a broad range of therapeutic applications. Bybuilding on the significant recent advances in the field of genetic medicine, webelieve we will be able to rapidly advance our portfolio of novel base editingprograms.

Existing gene editing technologies operate by creating targeted double-strandedbreaks in the DNA, and then rely on cellular mechanisms to complete the editingprocess. Such approaches can be effective in the disruption of gene expression;however, they are inefficient for precise repair or alteration of genesequences, and can result in unwanted DNA modifications. We believe our baseediting platform offers meaningful advantages over existing approaches in geneediting and gene therapy, including:

We are currently advancing a broad, diversified portfolio of base editingprograms against distinct editing targets. To unlock the full potential of ourbase editing technology across a wide range of therapeutic applications, we arepursuing a comprehensive suite of clinically validated delivery modalities inparallel. For a given tissue type, we use the delivery modality with the mostcompelling biodistribution. Our programs are organized by delivery modality intothree distinct pipelines: electroporation for efficient delivery to blood cellsand immune cells ex vivo; lipid nanoparticles, or LNPs, for non-viral in vivodelivery to the liver and potentially other organs in the future; andadeno-associated viral vectors, or AAV, for viral delivery to the eye andcentral nervous system, or CNS.

Our base editing portfolio

The elegance and simplicity of the base editing approach provides for anefficient, precise, and highly versatile gene editing system, capable of genecorrection, gene silencing/gene activation, and multiplex editing of severalgenes simultaneously. We believe the flexibility and versatility of our baseeditors may lead to broad therapeutic applicability and transformationalpotential for the field of precision genetic medicines.

We have achieved proof-of-concept in vivo with long-term engraftment of ex vivobase edited human CD34 cells in mice for BEAM-101, our program that reproducessingle base changes seen in individuals with Hereditary Persistence of FetalHemoglobin, or HPFH, that protects them from the effects of mutations causingsickle cell disease or thalassemia. Additionally, in the second quarter of 2020,

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we published data on BEAM-102, our program to directly correct the causativemutation in sickle cell disease by recreating a naturally-occurring humanhemoglobin variant, Hb-G Makassar. The Makassar variant does not causehemoglobin to polymerize, or red cells to sickle and, therefore, edited cellsare cured through elimination of the disease-causing protein. With respect toour liver disease programs, also in the second quarter of 2020, we have shownthe ability to directly correct the mutation causing alpha-1 antitrypsindeficiency, providing both in vitro and in vivo proof of concept for baseediting to correct this disease. We have also successfully demonstratedfeasibility of base editing with each of our three delivery modalities inrelevant cell types for electroporation and AAV and in vivo in mice for LNP.

Beyond the in vivo proofs-of-concept already established, we expect to achieveadditional milestones in 2020, including the publication of additional in vivobase editing data and, provided the COVID-19 pandemic does not cause ourtimelines to slip materially, initiation of investigational new drug, or IND,enabling studies for at least one of our lead programs. We expect to submit aninitial wave of IND filings from this portfolio, and we remain on track to fileour first IND in 2021.

The modularity of our platform means that establishing preclinicalproof-of-concept of base editing using a particular delivery modality will alsopotentially reduce risk and accelerate the timeline for additional productcandidates that we may develop targeting the same tissue. In some cases, a newproduct candidate may only require changing the guide RNA. Subsequent programsusing the same delivery modality can also take advantage of shared capabilitiesand resources of earlier programs. In this way, we view each delivery modalityas its own unique pipeline, where the success of any one program may pave theway for a large number of additional programs to progress quickly to the clinic.

Ex vivo electroporation for hematologic diseases and oncology

Sickle Cell Disease and Beta-Thalassemia

Sickle cell disease, a severe inherited blood disease, is caused by a singlepoint mutation, E6V, in the beta globin gene at the sixth amino acid. Thismutation causes the mutated form of hemoglobin, or HbS, to aggregate into long,rigid molecules that bend red blood cells into a sickle shape under conditionsof low oxygen. Sickled cells obstruct blood vessels and die prematurely,ultimately resulting in anemia, severe pain (crises), infections, stroke, organfailure, and early death. Sickle cell disease is the most common inherited blooddisorder in the United States, affecting an estimated 100,000 individuals, ofwhich a significant proportion are of African-American descent (1:365 births).Beta-thalassemia is another inherited blood disorder characterized by severeanemia caused by reduced production of functional hemoglobin due to insufficientexpression of the beta globin protein. Transfusion-dependent beta-thalassemia,or TDBT, is the most severe form of this disease, often requiring multipletransfusions per year. Patients with TDBT suffer from failure to thrive,persistent infections, and life-threatening anemia. The incidence of symptomaticbeta-thalassemia is estimated to be 1:100,000 worldwide, including 1:10,000 inEurope. In the United States, based on affected birth incidence of 0.7 in100,000 births, and increasing survival rates, we expect the population ofindividuals affected by this disease to be more than 1,400 and rising. The onlypotentially curative therapy currently available for patients with sickle celldisease or beta-thalassemia is allogeneic Hematopoietic Stem Cell Transplant, orHSCT; however, this procedure holds a high level of risk, particularlyGraft-versus-Host Disease, or GvHD, resulting in a low number of patients optingfor this treatment.

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We are using base editing to pursue two complementary approaches to treatingsickle cell disease and one to treat beta-thalassemia:

BEAM-101: Recreating naturally-occurring protective mutations to activate fetalhemoglobin

The beneficial effects of the fetal form of hemoglobin, or HbF, to compensatefor mutations in adult hemoglobin were first identified in individuals with acondition known as HPFH. Individuals who carry mutations that would havetypically caused them to be beta-thalassemia or sickle cell disease patients,but who also have HPFH, are asymptomatic or experience a much milder form oftheir disease. HPFH is caused by single base changes in the regulatory region ofthe genes, HBG1 and HBG2, which prevents binding of one or more repressorproteins and increases the expression of gamma globin, which forms part of theHbF tetramer.

Using base editing, we reproduce these specific, naturally occurring basechanges in the regulatory elements of the gamma globin genes, preventing bindingof repressor proteins and leading to re-activation of gamma globin expression,and thus the increase in gamma globin levels. Our in vitro and in vivocharacterization of BEAM-101 using ex vivo delivery achieved precise andefficient editing of human CD34+ hematopoietic stem and progenitor cells, orHSPCs, resulting in long-term engraftment and therapeutically-relevant increasesin target gene expression in mice.

In vitro characterization of BEAM-101:

In vivo performance of BEAM-101:

BEAM-102: Direct correction of the sickle cell mutation

Our second base editing approach for sickle cell disease, BEAM-102, is a directcorrection of the causative sickle mutation at position 6 of the beta globingene. By making a single A-to-G edit, we have demonstrated in primary humanCD34+ cells isolated from sickle cell disease patients the ability to create thenaturally occurring Makassar variant of hemoglobin. This variant, which wasoriginally identified in humans in 1970, has the same function as the wild-typevariant and does not cause sickle cell disease. Distinct from other approaches,cells that are successfully edited in this way are fully corrected, no longercontaining the sickle protein.

BEAM-102 uses ex vivo delivery of our adenine base editor, or ABE, to edit CD34+HSPCs. In cells isolated from donors with sickle cell disease, we achievedgreater than 80% correction of the sickle point mutation to the HbG-Makassarvariant, following in vitro erythroid differentiation. As expected, we observedthe simultaneous reduction of HbS to less than 20% of control levels. More than70% of erythroid colonies derived from edited patient cells showed biallelicediting (yielding cells that no longer produce any sickle protein at all), 20%had monoallelic editing (with one sickle allele and one corrected allele, likelyconferring a level of protection similar to patients with "sickle cell trait"who do not show significant symptoms of disease), and 2% were unedited. Further,the correction of the HbS protein to the HbG-Makassar variant was shown tosignificantly reduce the propensity of in vitro differentiated erythroid cellsto sickle when subjected to hypoxia. These findings represent therapeutic levelsof correction and support advancement of this program to potentially address theunderlying genetic cause of sickle cell disease. Published modeling studiessuggest that as little as 20% correction of HbS may be sufficient to cure thedisease.

Ex vivo electroporation for multiplex editing of advanced cell therapies

CAR-T Cell Therapies in Immunology/Oncology

We believe base editing is an ideal tool to simultaneously multiplex edit manygenes without unintended on-target effects, such as genomic rearrangements oractivation of the p53 pathway, that can result from simultaneous editing withnucleases through the creation of double strand breaks. The ability to create alarge number of multiplex edits in T cells could endow CAR-T cells and other

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cell therapies with combinations of features that may dramatically enhance theirtherapeutic potential in treating hematological or solid tumors.

Proof-of-concept experiments have now demonstrated the ability of base editorsto efficiently modify up to 8 genomic loci simultaneously in primary human Tcells with efficiencies ranging from 85-95% as measured by flow cytometry oftarget protein knockdown. Importantly, these results are achieved without thegeneration of chromosomal rearrangements, as detected by a sensitive method(UDiTaSTM) and with no loss of cell viability from editing. The proof-of-conceptexperiments have also demonstrated robust T cell killing of target tumor cells.

Our initial focus will be on hematologic malignancies, and we are developingallogeneic CAR-T product candidates that have four edits each. This multiplexediting will enable a high degree of engineering and functionality, includingthe following simultaneous edits:

The initial indications that we plan to target with these product candidates arerelapsed, refractory, pediatric T-cell Acute Lymphoblastic Leukemia, or T-ALL,and pediatric Acute Myeloid Leukemia, or AML. We believe that our approach hasthe potential to produce higher response rates and deeper remissions thanexisting approaches.

Non-Viral delivery for liver diseases

Alpha-1 Antitrypsin Deficiency

Alpha-1 Antitrypsin Deficiency, or Alpha-1, is a severe inherited geneticdisorder that can cause progressive lung and liver disease. The most severe formof ALPHA-1 arises when a patient has a point mutation in both copies of theSERPINA1 gene at amino acid 342 position (E342K, also known as the PiZ mutationor the "Z" allele). This point mutation causes alpha-1 antitrypsin, or AAT, tomisfold, accumulating inside liver cells rather than being secreted, resultingin very low levels (10%-15%) of circulating AAT. As a consequence, the lung isleft unprotected from neutrophil elastase, resulting in progressive, destructivechanges in the lung, such as emphysema, which can result in the need for lungtransplants. The mutant AAT protein also accumulates in the liver, causing liverinflammation and cirrhosis, which can ultimately cause liver failure or cancerand require patients to undergo a liver transplant. It is estimated thatapproximately 60,000 individuals in the United States have two copies of the Zallele. There are currently no curative treatments for patients with ALPHA-1.

With the high efficiency and precision of our base editors, we aim to utilizeour ABEs to enable the programmable conversion of A-to-T and G-to-C base pairsand precisely correct the E342K point mutation back to the wild type sequence.

For a recent study, we engineered novel ABEs and guide RNAs capable ofcorrecting the PiZ mutation, and then applied a proprietary non-viral lipidnanoparticle formulation to deliver the optimized reagents to the livers of aPiZ transgenic mouse model. This direct editing approach resulted in an averageof 16.9% correction of beneficial alleles at 7 days and 28.8% at three months.This significant increase over the period suggests that corrected hepatocytesmay have a proliferative advantage relative to uncorrected cells. In addition,treated mice demonstrate decreased alpha-1 antitrypsin, or A1AT, globule burdenwithin the liver and a durable, significant increase in serum A1AT activeprotein at three months, roughly 4.9-fold higher than in controls, levels whichwe believe would be therapeutic if achieved in patients. These data indicate thepotential for base editing as a one-time therapy to treat both lung and livermanifestations of Alpha-1 antitrypsin deficiency.

Glycogen Storage Disease 1a

Glycogen Storage Disease Type 1A, also known as Von Gierke disease, is an inborndisorder of glucose metabolism caused by mutations in the G6PC gene, whichresults in low blood glucose levels that can be fatal if patients do not adhereto a strict regimen of slow-release forms of glucose, administered every one tofour hours (including overnight). There are no disease-modifying therapiesavailable for patients with GSD1a.

Our approach to treating patients with glycogen storage disease 1a, or GSD1a, isto apply base editing via LNP delivery to repair the two most prevalentmutations that cause the disease, R83C and Q347X. It is estimated that thesetwo-point mutations account for 900 and 500 patients, respectively, in theUnited States, representing approximately 59% of all GSD1a patients. Animalstudies have shown that as little as 11% of normal G6Pase activity in livercells is sufficient to restore fasting glucose; however, this level must bemaintained in order to preserve glucose control and alleviate other serious, andpotentially fatal, GSD1a sequelae

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We have identified product candidates that can correct up to 80% of the allelesin cells harboring the Q347X point mutation and approximately 60% of the allelesin cells harboring the R83C mutation as shown in the figures below. Correctionof at least 11% is expected to be clinically relevant and potentially diseasemodifying for GSD1a patients.

Viral delivery for ocular and CNS disorders

Stargardt Disease

Stargardt Disease is an inherited disorder of the central region of the retina,causing progressive vision loss typically beginning in adolescence andultimately leading to central and night vision blindness. The most prevalentmutation in the ABCA4 gene that leads to Stargardt disease is the G1961E pointmutation. Approximately 5,500 individuals in the United States are affected bythis mutation. Our base editing approach is to repair the G1961E point mutationin the ABCA4 gene. Disease modeling using tiny spot stimuli, or light stimulithrough holes that are equivalent in size to a single photoreceptor cell,suggests that only 12%-20% of these cells are sufficient to preserve vision. Weanticipate, therefore, that editing percentages in the range of 12%-20% of thesecells would be disease-modifying, since each edited cell will be fully correctedand protected from the biochemical defect.

Given that the base editor is larger than the packaging capacity of a singleAAV, we use a split AAV system that delivers the base editor via two AAVvectors. Once inside the cell, the two halves of the editor are recombined tocreate a functional base editor. In a human retinal pigment epithelial cell line(ARPE-19 cells) in which we have knocked in the ABCA4 G1961E point mutation, wehave demonstrated the precise correction of approximately 75% of the diseasealleles at 5 weeks after dual infection with the split AAV system.

Collaborations

We believe our base editing technology has potential across a broad array ofgenetic diseases. To fully realize this potential, we have established and willcontinue to seek out innovative collaborations, licenses, and strategicalliances with pioneering companies and with leading academic and researchinstitutions. Additionally, we have and will continue to pursue relationshipsthat potentially allow us to accelerate our preclinical research and developmentefforts. These relationships will allow us to uphold our vision of maximizingthe potential of base editing to provide life-long cures for patients sufferingfrom serious diseases.

Ex vivo electroporation for hematologic diseases and oncology

Boston Children's Hospital

In July 2020, we formed a strategic alliance with Boston Children's Hospital.Under the terms of the agreement, we will sponsor research programs at BostonChildren's to facilitate development of disease-specific therapies using ourproprietary base editing technology. Boston Children's will also serve as aclinical site to advance bench-to-bedside translation of our pipeline acrosscertain therapeutic areas of interest, including programs in sickle cell diseaseand pediatric leukemias and exploration of new programs targeting otherdiseases.

Magenta Therapeutics

In June 2020, we announced a non-exclusive research and clinical collaborationagreement with Magenta Therapeutics to evaluate the potential utility ofMGTA-117, Magenta's novel targeted ADC for conditioning of patients with sicklecell disease and beta-thalassemia receiving our base editing therapies.Conditioning is a critical component necessary to prepare a patient's body toreceive the edited cells, which carry the corrected gene and must engraft in thepatient's bone marrow in order to be effective. Today's conditioning regimensrely on nonspecific chemotherapy or radiation, which are associated withsignificant toxicities. MGTA-117 precisely targets only hematopoietic stem andprogenitor cells, sparing immune cells, and has shown high selectivity, potentefficacy, wide safety margins and broad tolerability in non-human primatemodels. MGTA-117 may be capable of clearing space in bone marrow to supportlong-term engraftment and rapid recovery in patients. Combining the precision ofour base editing technology with the more targeted conditioning regimen enabledby MGTA-117 could further improve therapeutic outcomes for patients sufferingfrom these severe diseases. We will be responsible for clinical trial costsrelated to development of our base editors when combined with MGTA-117, whileMagenta will continue to be responsible for all other development costs ofMGTA-117.

Non-Viral delivery for liver diseases

Verve Therapeutics

In April 2019, we entered into a collaboration and license agreement with Verve,a company focused on developing genetic medicines to safely edit the genome ofadults to permanently lower LDL cholesterol and triglyceride levels and therebytreat coronary heart disease. This collaboration allows us to fully realize thepotential of base editing in treating cardiovascular diseases, an area outsideof our core focus where the Verve team has significant, world-class expertise.Under the terms of the agreement, Verve received exclusive access to our baseediting technology, gene editing, and delivery technologies for humantherapeutic applications against certain cardiovascular targets. In exchange, wereceived 2,556,322 shares of Verve common stock. Additionally, we will receivemilestone payments for certain clinical and regulatory events and retains theoption, after the completion of Phase 1 studies, to participate in futuredevelopment and commercialization, and share 50 percent of U.S. profits andlosses, for any product directed

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against these targets. Verve granted to us a non-exclusive license underknow-how and patents controlled by Verve, and an interest in joint collaborationtechnology. Either party may owe the other party other milestone payments forcertain clinical and regulatory events related to the delivery technologyproducts. Royalty payments may become due by either party to the other based onthe net sales of any commercialized delivery technology products under theagreement.

In June 2020, Verve reported preclinical proof-of-concept data in non-humanprimates that demonstrated the successful use of adenine base editors to turnoff a gene in the liver. Utilizing ABE technology licensed from us and anoptimized guide RNA packaged in an engineered lipid nanoparticle, Verveevaluated in vivo liver base editing to turn off proprotein convertasesubtilisin/kexin type 9 (PCSK9), a gene whose protein product elevates blood LDLcholesterol or angiopoietin-like protein 3 (ANGPTL3), a gene whose proteinproduct elevates blood triglyceride-rich lipoproteins. We believe theseproof-of-concept data, which show we can safely edit the primate genome,represent the first successful application of the base editing technology innon-human primates

In two separate studies, seven animals were treated with the drug producttargeting the PCSK9 gene and seven additional animals with the drug producttargeting the ANGPTL3 gene. Whole liver editing, blood protein and lipid levelswere measured at two weeks and compared to baseline. The program targeting PCSK9showed an average of 67% whole liver PCSK9 editing, which translated into an 89%reduction in plasma PCSK9 protein and resulted in a 59% reduction in blood LDLcholesterol levels. The program targeting ANGPTL3 showed an average of 60% wholeliver ANGPTL3 editing, which translated into a 95% reduction in plasma ANGPTL3protein and resulted in a 64% reduction in blood triglyceride levels and 19%reduction in LDL cholesterol levels. In addition, in studies in primary humanhepatocytes, clear evidence of on-target editing was observed with no evidenceof off-target editing.

Per the terms of our agreement with Verve, we can exercise our right toparticipate in the future development and commercialization of any programs atthe completion of Phase I studies.

Viral delivery for ophthalmology and CNS diseases

IOB

In July 2020, we announced a research collaboration with the Institute ofMolecular and Clinical Ophthalmology Basel (IOB). Founded in 2018 by aconsortium that includes Novartis, the University Hospital of Basel and theUniversity of Basel, IOB is a leader in basic and translational research aimedat treating impaired vision and blindness. Clinical scientists at IOB have alsohelped to develop better ways to measure how vision is impacted by Stargardtdisease. Additionally, researchers at IOB have developed living models of theretina, known as organoids, which can be used to test novel therapies. Under theterms of the agreement, the companies will leverage IOB's unique expertise inthe field of ophthalmology along with our novel base editing technology toadvance programs directed to the treatment of certain ocular diseases, includingStargardt disease.

Manufacturing

To realize the full potential of base editors as a new class of medicines, weare building customized and integrated capabilities across discovery,manufacturing, and preclinical and clinical development. Due to the criticalimportance of high-quality manufacturing and control of production timing andknow-how, we have taken steps toward establishing our own manufacturingfacility, which will provide us the flexibility to manufacture numerousdifferent drug product modalities. We believe this investment will maximize thevalue of our portfolio and capabilities, the probability of technical success ofour programs, and the speed at which we can provide life-long cures to patients.

In August 2020, we entered into a lease agreement with Alexandria Real EstateEquities, Inc. to build a 100,000 square foot current Good ManufacturingPractice, or cGMP, compliant manufacturing facility in Research Triangle Park,North Carolina intended to support a broad range of clinical programs. We willinvest up to $83 million over a five-year period and anticipate that thefacility will be operational by the first quarter of 2023. The project will befacilitated, in part, by a JDIG approved by the North Carolina EconomicInvestment Committee, which authorizes potential reimbursements based on new taxrevenues generated through the project. The facility will be designed to supportmanufacturing for our ex vivo cell therapy programs in hematology and oncologyand in vivo non-viral delivery programs for liver diseases, with flexibility tosupport manufacturing of our viral delivery programs, and ultimately, scale-upto support potential commercial supply.

For our initial waves of clinical programs, we will use contract manufacturingorganizations, or CMOs, with relevant manufacturing experience in geneticmedicines.

COVID-19

With the ongoing concern related to the COVID-19 pandemic, we have maintainedand expanded the business continuity plans, implemented in the first six monthsof 2020, to address and mitigate the impact of the COVID-19 pandemic on ourbusiness. In March 2020, to protect the health of our employees, and theirfamilies and communities, we restricted access to our offices to personnel whoperformed critical activities that must be completed on-site, limited the numberof such personnel that can be present at our facilities at any one time, andrequested that most of our employees work remotely. In May 2020, as certainstates eased restrictions, we established new protocols to better allow our fulllaboratory staff access to our facilities. These protocols included severalshifts

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working over a seven days week protocol. We expect to continue incurringadditional costs to ensure we adhere to the guidelines instituted by the Centersfor Disease Control and to provide a safe working environment to our onsiteemployees.

The extent to which the COVID-19 pandemic impacts our business, our corporatedevelopment objectives, results of operations and financial condition, includingand the value of and market for our common stock, will depend on futuredevelopments that are highly uncertain and cannot be predicted with confidenceat this time, such as the ultimate duration of the pandemic, travelrestrictions, quarantines, social distancing and business closure requirements,and the effectiveness of actions taken globally to contain and treat thedisease. Disruptions to the global economy, disruption of global healthcaresystems, and other significant impacts of the COVID-19 pandemic could have amaterial adverse effect on our business, financial condition, results ofoperations and growth prospects.

While the COVID-19 pandemic did not significantly impact our business or resultsof operations during the six months ended June 30, 2020, the length and extentof the pandemic, its consequences, and containment efforts will determine thefuture impact on our operations and financial condition.

Critical accounting policies and significant judgements

Our critical accounting policies are those policies which require the mostsignificant judgments and estimates in the preparation of our condensedconsolidated financial statements. We have determined that our most criticalaccounting policies are those relating to stock-based compensation, variableinterest entities, fair value measurements, and leases. There have been nosignificant changes to our existing critical accounting policies discussed inour Annual Report on Form 10-K for the year ended December 31, 2019.

Financial operations overview

General

We were incorporated on January 25, 2017 and commenced operations shortlythereafter. Since our inception, we have devoted substantially all of ourresources to building our base editing platform and advancing development of ourportfolio of programs, establishing and protecting our intellectual property,conducting research and development activities, organizing and staffing ourcompany, business planning, raising capital and providing general andadministrative support for these operations. To date, we have financed ouroperations primarily through the sales of our redeemable convertible preferredstock and proceeds from our IPO.

We are a development stage company, and all of our programs are at a preclinicalstage of development. To date, we have not generated any revenue from productsales and do not expect to generate revenue from the sale of products for theforeseeable future. Since inception we have incurred significant operatinglosses. Our net losses for the six months ended June 30, 2020 and 2019 were$64.7 million and $31.5 million, respectively. As of June 30, 2020, we had anaccumulated deficit of $267.7 million. We expect to continue to incursignificant expenses and increasing operating losses in connection with ongoingdevelopment activities related to our portfolio of programs as we continue ourpreclinical development of product candidates; advance these product candidatestoward clinical development; further develop our base editing platform; researchactivities as we seek to discover and develop additional product candidates;maintenance, expansion enforcement, defense, and protection of our intellectualproperty portfolio; and hiring research and development, clinical and commercialpersonnel. In addition, we expect to continue to incur additional costsassociated with operating as a public company.

As a result of these anticipated expenditures, we will need additional financingto support our continuing operations and pursue our growth strategy. Until suchtime as we can generate significant revenue from product sales, if ever, weexpect to finance our operations through a combination of equity offerings, debtfinancings, collaborations, strategic alliances, and licensing arrangements. Wemay be unable to raise additional funds or enter into such other agreements whenneeded on favorable terms or at all. Our inability to raise capital as and whenneeded would have a negative impact on our financial condition and our abilityto pursue our business strategy. We can give no assurance that we will be ableto secure such additional sources of funds to support our operations, or, ifsuch funds are available to us, that such additional funding will be sufficientto meet our needs.

Research and development expenses

Research and development expenses consist of costs incurred in performingresearch and development activities, which include:

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We expense research and development costs as incurred. Advance payments that wemake for goods or services to be received in the future for use in research anddevelopment activities are recorded as prepaid expenses. The prepaid amounts areexpensed as the benefits are consumed.

In the early phases of development, our research and development costs are oftendevoted to product platform and proof-of-concept studies that are notnecessarily allocable to a specific target, therefore, we have not yet beguntracking our expenses on a program-by-program basis.

We expect that our research and development expenses will increase substantiallyin connection with our planned preclinical and future clinical developmentactivities.

General and administrative expenses

General and administrative expenses consist primarily of salaries and otherrelated costs, including stock-based compensation, for personnel in ourexecutive, intellectual property, business development, finance, andadministrative functions. General and administrative expenses also include legalfees relating to intellectual property and corporate matters, professional feesfor accounting, auditing, tax and consulting services, insurance costs, travel,and direct and allocated facility related expenses and other operating costs.

We anticipate that our general and administrative expenses will increase in thefuture to support increased research and development activities. We also expectto incur increased costs associated with being a public company, including costsof accounting, audit, legal, regulatory and tax-related services associated withmaintaining compliance with Nasdaq and SEC requirements, director and officerinsurance costs, and investor and public relations costs.

Results of operations

Comparison of the three months ended June 30, 2020 and 2019

The following table summarizes our results of operations, together with thechange in dollars (in thousands):

License revenue was $6 thousand for the three months ended June 30, 2020 and2019 representing Verve license revenue recorded under the Collaboration andLicense Agreement executed in April 2019.

Research and development expenses

Research and development expenses were $19.4 million and $12.7 million for thethree months ended June 30, 2020 and 2019, respectively. The increase of$6.7 million was primarily due to the following:

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Research and development expenses will continue to increase as we continue ourcurrent research programs, initiate new research programs, continue ourpreclinical development of product candidates, and conduct future clinicaltrials for any of our product candidates.

General and administrative expenses

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BEAM THERAPEUTICS : Management's Discussion and Analysis of Financial Condition and Results of Operations (form 10-Q) - marketscreener.com

2 New COL7A1 Gene Mutations Discovered in Chinese Girl With RDEB – Epidermolysis Bullosa News

Scientists have identified two new variants in the COL7A1 gene associated with recessive dystrophic epidermolysis bullosa (RDEB) in a three-year-old Chinese girl.

The findings expand the spectrum of known mutations causing the disease and also highlight the usefulness of two methods of genetic analyses clinical exome sequencing (CES) and minigene assay to identify these variants.

The case report, Novel biallelic variants in COL7A1 cause recessive dystrophic epidermolysis bullosa, was published in the journal Molecular Genetics & Genomic Medicine.

RDEB is a severe form of epidermolysis bullosa caused by mutations in the COL7A1 gene, which encodes a protein called type 7 collagen (COL7) that is essential for skin health.

In the report, investigators in China described the case of a young Chinese girl with RDEB who was found to carry two new mutations in COL7A1.

The three-year-old girl (of Han ethnicity) was the first child of a biologically-unrelated healthy couple. According to her parents, she lacked skin on her left leg at birth, and had been having multiple blisters and scarring on her limbs, trunk, and neck since.

Physical examination revealed her skin was in poor condition, especially on her knees, elbows, hands, and feet. She also showed signs of tooth decay, was missing several teeth, and had mild webbing on her toes (fused toes). Her parents also said she often had bloody or dark stools, a telltale sign the tissue lining her gastrointestinal tract was also affected.

She was initially suspected of having dystrophic epidermolysis bullosa, but a genetic test had never been performed to confirm the diagnosis.

In the study, the investigators used CES a technique in which the exome (all protein-coding genes) is scanned to look for disease-causing mutations to determine which mutations were causing her condition.

CES identified two genetic variants in COL7A1 (c.3867delT and c.5532+4_5532+5delAG), which were confirmed by Sanger sequencing, another gene sequencing method. Both mutations had never been described in the literature, and were not included in any public genomic databases.

The girl inherited each mutation from each of her parents. The one she inherited from her father (c.3867delT) was a disease-causing variant that led to the production of an abnormally short version of COL7. In turn, the one she inherited from her mother (c.5532+4_5532+5delAG) was thought to disrupt gene splicing, a process through which the same gene gives rise to different proteins.

To confirm the COL7A1 splicing impairment, the researchers used a minigene assay, a technique in which the portion of the gene sequence containing the mutation is inserted into a minigene construct that is then placed inside lab-cultured cells.

The assay confirmed that the maternally-inherited mutation disrupted splicing in COL7A1, resulting in DNA deletion deemed as disease-causing. The girls mother, who was pregnant with her second child, underwent amniocentesis and prenatal genetic testing to confirm if the fetus had inherited the same genetic mutations as the first child. No RDEB-related mutations or complications were found in the second child.

Our study expands the mutation spectrum of COL7A1 and demonstrated that CES and minigene assays were efficient tools for RDEB molecular diagnoses, the researchers concluded.

Joana holds a BSc in Biology, a MSc in Evolutionary and Developmental Biology and a PhD in Biomedical Sciences from Universidade de Lisboa, Portugal. Her work has been focused on the impact of non-canonical Wnt signaling in the collective behavior of endothelial cells cells that made up the lining of blood vessels found in the umbilical cord of newborns.

Total Posts: 22

Jos holds a PhD in Neuroscience from Universidade of Porto, in Portugal. He has also studied Biochemistry at Universidade do Porto and was a postdoctoral associate at Weill Cornell Medicine, in New York, and at The University of Western Ontario in London, Ontario, Canada. His work has ranged from the association of central cardiovascular and pain control to the neurobiological basis of hypertension, and the molecular pathways driving Alzheimers disease.

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2 New COL7A1 Gene Mutations Discovered in Chinese Girl With RDEB - Epidermolysis Bullosa News

Vienna Researchers’ Mesothelioma Discovery Highlights Use of Precision Medicine – Mesothelioma.net Blog

Published on August 11, 2020

Researchers from MedUniVienna have successfully identified a blockade of compounds that activate a rare mutation found in malignant mesothelioma cells, thus halting their unrestricted growth. This highly specific approach makes clear that the best way to treat this rare and fatal form of cancer is through a highly tailored approach.

The mesothelioma investigators focused on the impact that telomerase has on the growth and spread of cancer cells. Telomerase is an enzyme that is active in rapidly dividing cells in our bodies. Though it plays a positive role in most instances, it also facilitates many types of cancer growth and is found in excessive amounts in mesothelioma patients.

The researchers determined that a particularly aggressive subgroup of malignant pleural mesothelioma cells have a distinct genetic mutation that serves to promote the production of the TERT gene, which plays an outsized role in the activation of telomerase. Through this discovery, they were able to identify a new treatment strategy for those suffering from the rare form of cancer and who test positive for the mutation.

Writing in the journalClinical Cancer Research, the researchers explained that the mutation they identified is found in the regulatory region of the cancer cell, which determines how much of a protein is produced. Previous cancer studies have shown that mutations activating the TERT gene are found in families with high genetic tendencies towards cancer, and are associated with other highly aggressive tumors like melanoma and glioblastoma.

Though the TERT gene mutation is only present in a small subgroup of patients diagnosed with malignant pleural mesothelioma, those that have it generally have an extremely poor prognosis. The researchers found that by inhibiting a specific protein linked to the activation of the mutated TERT gene, they were able to block its aggressiveness. According to Walter Berger, Member, Comprehensive Cancer Center, Institute of Cancer Research, Medical University of Vienna, We are currently investigating whether a pharmacological blockade of the ETS factors has potential as a new treatment option for patients with TERT promoter-mutated MPM. If this proves to be the case, the mutation would be both a biomarker for the selection of suitable patients and a therapeutic target an ideal combination for precision medicine.

Every person diagnosed with malignant pleural mesothelioma has a different story of exposure and a different experience with the disease. The Patient Advocates at Mesothelioma.net are here to help you make sense of your situation. Contact us today at 1-800-692-8608.

Learn more about and contact Terri

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Vienna Researchers' Mesothelioma Discovery Highlights Use of Precision Medicine - Mesothelioma.net Blog

Here’s Why Shares of Editas Medicine and Beam Therapeutics Are Soaring Today – Motley Fool

What happened

Shares of Editas Medicine (NASDAQ:EDIT) and Beam Therapeutics (NASDAQ:BEAM) rose as much as 23% and 29%, respectively, today after the pair were rumored to be considering a merger. Although investors shouldn't invest based on speculation, a merger would make sense on multiple fronts.

The duo already have an agreement in place to collaborate on genetic medicines, but the struggling pipeline of Editas Medicine could receive a significant boost from Beam Therapeutics. It would also allow Editas shareholders to avoid many of the technical pitfalls of first-generation CRISPR gene-editing tools, which have yet to be adequately reflected in stock prices. Of course, the flip side is that the merger doesn't make as much sense for Beam Therapeutics.

As of 12:50 p.m. EDT, both small-cap stocks had settled to gains of about 14%.

Image source: Getty Images.

There are multiple reasons a merger makes sense. Consider that:

There's not much to the report that Editas Medicine and Beam Therapeutics are considering a merger. Only one digital publication mentions "chatter" without providing any follow-up details. The rumors are at least plausible given the ties to the Broad Institute and overlap of the scientific founders, but investors simply don't have much to go on. That said, a merger would make more sense for Editas Medicine than Beam Therapeutics, as the latter has a much stronger technical foundation to lean on for the long haul.

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Here's Why Shares of Editas Medicine and Beam Therapeutics Are Soaring Today - Motley Fool

Clinically Validated Blood-Based Test Predicts Response to Anti-TNF Therapies in RA – Rheumatology Advisor

A model incorporating gene expression and clinical factors predicts response to anti-tumor necrosis factor (TNF) therapy in patients with rheumatoid arthritis (RA), according to study results published in Network and Systems Medicine.

Rheumatoid arthritis is a complex disease and the molecular factors that predict response to treatment are poorly understood. Using gene expression data from patients receiving anti-TNF therapy, investigators aimed to build a biomarker panel, which predicts response to anti-TNF therapies in patients with RA.

Using publicly available data, a comprehensive map of the human protein-protein interactome was generated and used to identify an RA disease module, which contained approximately 200 proteins. Within this module, 66% of the proteins had been previously linked to RA in genome-wide association studies, and the remaining were significantly enriched in similar Gene Ontology biological processes.

Microarray data were obtained from the Gene Expression Omnibus database for 58 women receiving anti-TNF therapy. Using a random forest machine-learning algorithm, the data were used to identify genes for which expression was predictive of response and nonresponse to therapy. Based on the microarray profile and the RA disease module, 37 genes were identified as discriminatory biomarkers for anti-TNF response.

In addition, RNA sequencing (RNAseq) data were obtained for 143 patients with RA from the Comparative Effectiveness Registry to Study Therapies for Arthritis and Inflammatory Conditions (CERTAIN) study. In addition to gene expression, RNAseq data enabled the identification of single-nucleotide variations (SNVs; formerly single-nucleotide polymorphisms) that were associated with treatment response. An additional 22 SNVs, which were associated with the RA disease model, were identified that were linked to response to anti-TNF therapy.

With the inclusion of clinical factors, a total of 70 biomarkers were identified and used to train a machine-learning algorithm to predict response to anti-TNF therapy. The final model generated, which predicted nonresponse to anti-TNF therapy, consisted of 10 SNPs, 8 gene transcripts, 2 laboratory tests, and 3 clinical measures.

To confirm that the model was broadly generalizable, data from an independent group of 175 patients from the CERTAIN study were used for a validation trial. Patients who were identified by the model as being nonresponders to anti-TNF therapy were 6.57-times more likely to be a true nonresponder than a responder (95% CI, 2.75-15.70). The model predicted nonresponse to therapy with a positive predictive value of 89.7% (95% CI, 79.0-95.7%), a specificity of 86.8% (95% CI, 72.4-94.1%), and a sensitivity of 50.0% (95% CI, 40.8-58.7%). There was no significant difference observed in the predictive power of the model based on ethnicity.

When the relevant gene transcripts and SNVs were mapped to the human interactome, they were all within close proximity to the RA disease module as well as established RA drug targets, including Janus kinase and TNF-. Pathway enrichment identified genes involved in T-cell signaling as the most enriched pathway in the biomarkers associated with a therapeutic response.

Customization of treatment regimens to match the individualized disease biology of each patient is a goal of modern medicine, the researchers concluded. Development and validation of a drug response algorithm that predicts nonresponse to a targeted therapy using this machine-learning and network medicine approach show great promise for advancing precision medicine in the treatment of RA and other complex autoimmune diseases where costly therapeutic interventions are met with inadequate patient response.

Disclosure: This study was supported by Scipher Medicine Corporation. Please see the original reference for a full list of authors disclosures.

Mellors T, Withers JB, Ameli A, et al. Clinical validation of a blood-based predictive test for stratification of response to tumor necrosis factor inhibitor therapies in rheumatoid arthritis patients. Network and Systems Medicine. 2020;3(1):91-104.

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Clinically Validated Blood-Based Test Predicts Response to Anti-TNF Therapies in RA - Rheumatology Advisor

Genetic Change Detected in Brothers Helps Explain Why COVID-19 More Severe in Men – MedicalResearch.com

MedicalResearch.com Interview with:

Caspar van der Made, MDResident in Internal Medicine, PhD-studentAlexander Hoischen, PhDGeneticist, Assistant professor,Departments of Human Genetics and Internal Medicine

Radboud University Medical enterNijmegen, The Netherlands

First author Caspar van der Made is a resident in Internal Medicine and PhD-student on the topic of immunogenomics.Alexander Hoischen is geneticist with a special focus on the application of genomic technologies in primary immunodeficiencies and last author of this study.

MedicalResearch.com: What is the background for this study?

Response: This study was initiated to investigate the presence of monogenic factors that predispose young individuals to develop a severe form of COVID-19. It has become clear that several general risk factors such as obesity, hypertension and diabetes mellitus increase the risk of developing severe coronavirus disease. However, even though differences in interindividual genetic make-up are thought to influence the immune response to SARS-CoV-2, such specific genetic risk factors had not yet been identified.

We therefore chose to study young brother pairs (sharing half of their genomes) without any general risk factors that nevertheless contracted severe COVID-19.

We hypothesized these highly selected case series may offer the most optimal chance of identifying a (possible X-linked) primary immunodeficiency specific to COVID-19.

MedicalResearch.com: What are the main findings?

Response: In this case series, two young brother pairs of which all four individuals with a mean age of 26 years required mechanical ventilation at the ICU were enrolled and studied. We performed rapid clinical whole-exome sequencing of the patients and segregation in available family members to identify loss-of-function variants of the X-chromosomal TLR7. This gene encodes the toll-like receptor 7 protein that plays a critical role in the innate immune response against coronaviruses, predominantly by mediating the production of type I interferons. Especially in SARS-CoV-2 infections this response is crucial, as the virus has evasive mechanisms to disrupt a proper type I interferon response. In primary peripheral blood mononuclear cells extracted from the patients, we have shown that the transcription of type I-interferon genes was lower in patients upon stimulation with the TLR7 agonist imiquimod, as compared to controls. Furthermore, the production of the type II interferon IFNg was also decreased in patients.

MedicalResearch.com: What should readers take away from your report?

Response: To our knowledge this is the first report that proposes a specific monogenic factor to develop severe COVID-19. We aim to highlight the important contribution of genetics in the susceptibility to develop COVID-19 and hope to create awareness among physicians to consider genetic evaluation of young patients with unexplained severe COVID-19.

The finding of TLR7 deficiency in these patients furthermore underlines the importance of an intact type I and II interferon response to fight off SARS-CoV-2 and provides insight in the timing of possible treatment options.

MedicalResearch.com: What recommendations do you have for future research as a result of this work?

Response: While the TLR7 deficiency is most likely a rare phenomenon, with an estimate of 1:10,000 TLR7 mutation carriers in the general population; our findings shall be replicated and expanded by others. Similar to other rare disease genetic studies, this shall allow additional insides into disease pathogenesis in general. Further research should focus on the elucidation of the exact role of TLR7-signaling in the pathogenesis of SARS-CoV-2 and ultimately the exploration of rational treatment options.

Also, these findings may provide part of the explanation for the male sex bias observed in COVID-19, which should be addressed more in-depth. More generally, we encourage further studies towards the identification of other genetic risk factors and applaud the efforts already undertaken by other large consortia.

MedicalResearch.com: Is there anything else you would like to add?

Response: We are very grateful to the families that participated in this study, and would like to acknowledge our interdisciplinary team of collaborators.

Any disclosures?

No relevant conflict of interest for any of the authors.

Citation:

van der Made CI, Simons A, Schuurs-Hoeijmakers J, et al. Presence of Genetic Variants Among Young Men With Severe COVID-19.JAMA.Published online July 24, 2020. doi:10.1001/jama.2020.13719

https://jamanetwork.com/journals/jama/fullarticle/2768926

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New genetic cause of an inherited neuropathy discovered | Penn Today – Penn Today

Inherited mutations in a gene that keeps nerve cells intact was shown, for the first time, to be a driver of a neuropathy known as Charcot-Marie-Tooth (CMT) disease. This finding is detailed in a study led by researchers in the Perelman School of Medicine, which published inNeurologyGenetics, an official journal of the American Academy of Neurology.

The findings, thanks to siblings treated at Penn since the late 1980s, present a clearer picture of the diseases genetic underpinnings that could inform the development of gene therapies to correct it.

The mutations in the gene known as dystonin (DST) add to a growing list of malfunctions found to cause their type of CMT, known as CMT2, which is defined by the loss of the nerve fibers, or axons, in the peripheral nerve cells. The researchers also showed that these mutations affect two key protein isoforms, BPAG1-a2 and BPAG1-b2, that are involved in nerve fiber function. Mutations in other isoforms of the same protein were previously tied to a blistering skin disease.

There are more than 100 mutations found to be associated with CMT, with likely many more out there.Past studies from Penn researchers haveidentified some of these mutations by studying patients treated at Penn Medicine.

We are determined to fill in the blanks of this giant jigsaw puzzle, says senior authorSteven S. Scherer, a professor of neurology. This latest paper is but one of many examples of where breakthroughs have happened between patients and the doctors at Penn and the support of different organizations and institutions to bring it all together."

Read more at Penn Medicine News.

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New genetic cause of an inherited neuropathy discovered | Penn Today - Penn Today

BridgeBio Pharma Expands Reach Into China and Other Major Asian Markets Through Strategic Collaboration With Perceptive Advisors-Founded Company,…

$26.5 million total near-term payments to BridgeBio, plus participation in long-term value creation of up to $505 million in milestone payments, tiered double-digit royalty payments and an equity interest in LianBio.

BridgeBio CEO and founder Neil Kumar, Ph.D., has been appointed to LianBios board of directors.

PALO ALTO, Calif., Aug. 11, 2020 (GLOBE NEWSWIRE) -- BridgeBio Pharma, Inc. (NASDAQ: BBIO), a clinical-stage biopharmaceutical company focused on genetic diseases and cancers with clear genetic drivers, today announced that it is partnering with Shanghai-based LianBio, a new company founded by Perceptive Advisors, to expand its global reach into China, the second-largest pharmaceutical market in the world. The partnership marks the first major expansion of BridgeBios pipeline into Asian markets.

This strategic relationship will initially focus on two of BridgeBios targeted oncology drug candidates, FGFR inhibitor infigratinib, currently in Phase 3 development for FGFR-driven tumors and Phase 1-ready SHP2 inhibitor BBP-398, for tumors driven by RAS and receptor tyrosine kinase mutations. The agreement also provides LianBio with preferential future access in the territory to more than 20 drug development candidates currently owned or controlled by BridgeBio. This collaboration is designed to advance and accelerate BridgeBios programs in China and other major Asian markets, allowing BridgeBio to quickly bring innovation to large numbers of patients with high unmet need.

Tremendous patient need and a fast-developing healthcare infrastructure make China a strategic priority. We are eager to not only expand late-stage therapies to the broader patient population there, but also to accelerate our clinical development efforts in Asia and better understand and address the needs of patients there early. We are grateful to be deepening our relationship with Perceptive Advisors through this agreement with LianBio and look forward to a lasting partnership focused on expanding our reach to patients, said BridgeBio CEO and founder Neil Kumar, Ph.D.

We value our relationship with BridgeBio and are happy to be enabling the entry of important programs to LianBios territories, said Adam Stone, CIO of Perceptive Advisors. BridgeBio and its affiliate companies exemplify the commitment to science-driven, precision medicine that we believe is a key driver to innovation in healthcare. We are excited about this opportunity to leverage their promising pipeline and LianBios local expertise to accelerate both global development and local access to leading edge therapeutics.

Under the terms of the agreements, LianBio will receive commercial rights in China and selected Asian markets and participate in clinical development activities for infigratinib (housed in BridgeBio affiliate QED) and BBP-398 (housed in BridgeBio affiliate Navire). BridgeBios near-term economics includes a total of $26.5 million in upfront and milestone payments. BridgeBio will receive up to $505 million in future milestone payments, tiered royalty payments from single- to double-digits on net sales of both products in licensed territories. Additionally, BridgeBio will increase its equity interest via investment in LianBio and BridgeBio CEO Neil Kumar has been appointed to the LianBio board of directors.

LianBio is participating in the ongoing Phase 3 study of infigratinib in first line cholangiocarcinoma (PROOF) in mainland China and further plans to initiate a Phase 2a study of infigratinib in gastric cancer and other FGFR-driven tumors. Additionally, LianBio will contribute to clinical development of BBP-398 in combination with various agents in solid tumors such as non-small cell lung cancer (NSCLC), colorectal and pancreatic cancer, in mainland China and other major Asian markets.

About BridgeBio PharmaBridgeBio is a team of experienced drug discoverers, developers and innovators working to create life-altering medicines that target well-characterized genetic diseases at their source. BridgeBio was founded in 2015 to identify and advance transformative medicines to treat patients who suffer from Mendelian diseases, which are diseases that arise from defects in a single gene, and cancers with clear genetic drivers. BridgeBios pipeline of over 20 development programs includes product candidates ranging from early discovery to late-stage development. For more information, please visitwww.bridgebio.com.

About LianBio

LianBios mission is to catalyze the development and accelerate availability of paradigm-shifting medicines to patients in China and major Asian markets through partnerships that provide access to the best science-driven therapeutic discoveries. LianBio collaborates with world-class partners across a diverse array of therapeutic and geographic areas to build out a pipeline based on disease relevance and the ability to impact patients with transformative mechanisms and precision-based therapeutics. For more information, please visit http://www.lianbio.com.

About Perceptive Advisors

Founded in 1999, Perceptive Advisors is a leading life sciences focused investment firm with over $7billion of regulatory assets under management as of June 30, 2020. Since inception, Perceptive Advisors has focused on supporting progress in the life sciences industry by identifying opportunities and directing financial resources toward the most promising technologies in modern healthcare. For more information, please visitwww.perceptivelife.com.

About QED Therapeutics

QED Therapeutics, an affiliate of BridgeBio Pharma, is a biotechnology company focused on precision medicine for FGFR-driven diseases. Its lead investigational candidate is infigratinib (BGJ398), an orally administered, FGFR1-3 selective tyrosine kinase inhibitor that has shown activity that it believes to be meaningful in clinical measures, such as overall response rate, in patients with chemotherapy-refractory cholangiocarcinoma with FGFR2 fusions and advanced urothelial carcinoma with FGFR3 genomic alterations. QED intends to submit a New Drug Application (NDA) with the United States Food and Drug Administration for second and later-line cholangiocarcinoma in 2020. QED Therapeutics is also evaluating infigratinib in clinical studies for the treatment of achondroplasia. QED plans to conduct further clinical trials to evaluate the potential for infigratinib to treat patients with other FGFR-driven tumor types and rare disorders. For more information, please visit http://www.qedtx.com.

About Navire Pharma

Navire Pharma, an affiliate of BridgeBio Pharma, and in collaboration with the Institute for Applied Cancer Science at MD Anderson, is developing inhibitors of SHP2 as targeted therapeutics for the treatment of multiple cancers. Together with patients and physicians, the company aims to bring safe, effective treatments to market as quickly as possible. For more information, please visit http://www.navirepharma.com.

BridgeBio Pharma Forward-Looking Statements

This press release contains forward-looking statements. Statements we make in this press release may include statements that are not historical facts and are considered forward-looking within the meaning of Section 27A of the Securities Act of 1933, as amended (the Securities Act), and Section 21E of the Securities Exchange Act of 1934, as amended (the Exchange Act), which are usually identified by the use of words such as anticipates, believes, estimates, expects, intends, may, plans, projects, seeks, should, will, and variations of such words or similar expressions. We intend these forward-looking statements to be covered by the safe harbor provisions for forward-looking statements contained in Section 27A of the Securities Act and Section 21E of the Exchange Act and are making this statement for purposes of complying with those safe harbor provisions. These forward-looking statements, including statements relating to BridgeBios anticipated receipt of future milestone and/or royalty payments from LianBio, reflect our current views about our plans, intentions, expectations, strategies and prospects, which are based on the information currently available to us and on assumptions we have made. Although we believe that our plans, intentions, expectations, strategies and prospects as reflected in or suggested by those forward-looking statements are reasonable, we can give no assurance that the plans, intentions, expectations or strategies will be attained or achieved. Furthermore, actual results may differ materially from those described in the forward-looking statements and will be affected by a number of risks, uncertainties and assumptions, including, but not limited to, the success of clinical trials, regulatory filings, approvals and/or sales of infigratinib and BBP-398 in China and other major Asian markets, as well as those risks set forth in the Risk Factors section of BridgeBio Pharmas most recent Annual Report on Form 10-K, Quarterly Report on Form 10-Q and BridgeBio Pharmas other SEC filings. Moreover, BridgeBio Pharma operates in a very competitive and rapidly changing environment in which new risks emerge from time to time. Except as required by applicable law, we assume no obligation to update publicly any forward-looking statements, whether as a result of new information, future events or otherwise.

Contact:Grace RauhBridgeBio Pharma, Inc.Grace.rauh@bridgebio.com(917) 232-5478

Source: BridgeBio Pharma, Inc.

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BridgeBio Pharma Expands Reach Into China and Other Major Asian Markets Through Strategic Collaboration With Perceptive Advisors-Founded Company,...

Implementation of Pharmacogenetics to Individualize Treatment Regimens | PGPM – Dove Medical Press

Dimitri Maamari1 ,* Habib El-Khoury1 ,* Omran Saifi,1 Samar A Muwakkit,2 Nathalie K Zgheib3

1Faculty of Medicine, American University of Beirut, Beirut, Lebanon; 2Department of Pediatrics and Adolescent Medicine, American University of Beirut Medical Center, Beirut, Lebanon; 3Department of Pharmacology and Toxicology, American University of Beirut, Faculty of Medicine, Beirut, Lebanon

*These authors contributed equally to this work

Correspondence: Samar A Muwakkit; Nathalie K Zgheib Email sm03@aub.edu.lb; nk16@aub.edu.lb

Abstract: Despite major advances in the management and high cure rates of childhood acute lymphoblastic leukemia (ALL), patients still suffer from many drug-induced toxicities, sometimes necessitating dose reduction, or halting of cytotoxic drugs with a secondary risk of disease relapse. In addition, investigators have noted significant inter-individual variability in drug toxicities and disease outcomes, hence the role of pharmacogenetics (PGx) in elucidating genetic polymorphisms in candidate genes for the optimization of disease management. In this review, we present the PGx data in association with main toxicities seen in children treated for ALL in addition to efficacy, with a focus on the most plausible germline PGx variants. We then follow with a summary of the highest evidence drug-gene annotations with suggestions to move forward in implementing preemptive PGx for the individualization of treatment regimens for children with ALL.

Keywords: pharmacogenetics, childhood ALL, implementation

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Implementation of Pharmacogenetics to Individualize Treatment Regimens | PGPM - Dove Medical Press

Omega Therapeutics Strengthens Leadership Team with Appointment of Roger Sawhney, MD as Chief Financial Officer – BioSpace

Aug. 12, 2020 12:00 UTC

CAMBRIDGE, Mass.--(BUSINESS WIRE)-- Omega Therapeutics, a company pioneering a new category of genomic medicine through epigenomic programming, today announced the appointment of Dr. Roger Sawhney as Chief Financial Officer. Dr. Sawhney brings 25 years of financial and strategic expertise to Omega, with vast experience ranging from global investments in healthcare sectors to business and strategy development in the biopharma industry.

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Omega Therapeutics strengthens leadership team with appointment of Roger Sawhney, M.D. as Chief Financial Officer. (Photo: Business Wire)

Mahesh Karande, President and Chief Executive Officer of Omega Therapeutics remarked, The addition of Roger as Chief Financial Officer strengthens our leadership team and positions Omega for continued success in 2020 and beyond, particularly as we look to further developing our epigenomic programming platform, exploring partnerships, and readying our lead indications for clinical development in 2021. Rogers stellar background, and breadth and depth of industry expertise, combined with his strategic and transactional experience are invaluable attributes, and I am proud to welcome him to the team.

Most recently, Dr. Sawhney served at KKR & Co. as Director of its healthcare investment platform in the Americas, where his work focused on investments across private and growth equity in the healthcare sector. While at KKR & Co., he was responsible for deal sourcing, diligence, investing, corporate governance and portfolio value realization, and he ultimately helped lead and manage investments in over five portfolio companies across KKRs healthcare platform.

Earlier, he held the role of Senior Vice President and Head of Corporate Strategy for Novartis AG, as well as Senior Vice President of Corporate Strategy and Business Development for Outcome Health, a privately-funded leader in the digital health space. In these roles, Roger was progressively responsible for growth initiatives, M&A, business development and global strategic planning.

Dr. Sawhney commented, "Omega has a compelling story, breakthrough science and an ambitious mission, so I am excited to join Mahesh and the team in their efforts to deliver transformative genomic medicine to patients, forging a new future of disease management. Through pursuing strategic financial and operational initiatives, I aim to assist Omega in successfully capitalizing on opportunities and achieving its clinical, regulatory, and financial milestones."

We are thrilled to announce that Roger has joined the Omega leadership team as CFO, said Noubar Afeyan, Ph.D., Chief Executive Officer of Flagship Pioneering and Co-founder and Chairman of the Board for Omega Therapeutics. His impressive background bolsters Omegas strategic position, which is especially relevant during these uncertain times in the global markets. I look forward to his contributions in helping Omega capitalize on opportunities in what is certain to be an impactful year for the company.

Dr. Sawhney has also served as Partner with both Bain and Company and the Boston Consulting Group, where he led and managed numerous investments across the life sciences, med-tech and digital health sectors, as well as transformation engagements for the worlds leading global biopharma companies. He has particular depth in M&A, BD&L, portfolio strategy and growth strategy. He earned his M.D. degree from Harvard Medical School and also holds a BA in Economics from Stanford University.

About Omega Therapeutics

Omega Therapeutics is a genomic medicine company advancing novel engineered therapeutics, Omegas Epigenomic Controllers, enabling controllable epigenomic programming into clinical development for a broad range of indications. These therapeutics deliver Precision Genomic Control by controlling Insulated Genomic Domains (IGDs), the fundamental structural and functional units of genomic regulation, by modulating single and multiple gene expression through epigenomic programming. IGDs encompass single or multiple genes and their associated regulatory elements, and are correlated with diverse diseases, including cancer, autoimmune, inflammatory, regenerative, metabolic, neurological conditions and rare diseases. Omegas Epigenomic Controllers deliver the required potent and durable therapeutic effect by precisely modulating or tuning single or multiple genes, up or down, with high specificity to unleash the human genomes innate capacity to cure disease without altering native genomic nucleic acid codes. Omegas Epigenomic Controllers also allow repeat dosing with controllable durability.

Founded by Flagship Pioneering in 2017, with a long-term vision to create a programmable, epigenetic-based genomic medicine platform that would identify novel targets, as well as medicines, Omegas epigenomic programming platform has identified and mapped IGDs and their structure and function in both healthy and diseased states across cell types. This scientific insight drives the discovery and development of Omegas novel Epigenomic Controllers, intended for clinical development across a range of therapeutic indications. To learn more please visit http://www.omegatherapeutics.com.

View source version on businesswire.com: https://www.businesswire.com/news/home/20200812005086/en/

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Omega Therapeutics Strengthens Leadership Team with Appointment of Roger Sawhney, MD as Chief Financial Officer - BioSpace

Founding fathers ‘cut from similar cloth’ | Opinion | ehextra.com – EH Extra

Dear Editor,

After reading Flawed men, perhaps, but great deeds in the Aug. 8 EagleHerald, I got to wondering who would write such an editorial in defense of Columbus, an entrepreneur seeking great wealth and high office who would enslave, torture and murder the indigenous population to obtain his goals? And it struck me that it must be someone who makes a very large salary supporting the rich and powerful and making them look as good as possible when theyve done serious wrong. Columbus did more than just mistreat the indigenous population. He committed a crime against humanity and not a great deed.

And our founding fathers were cut from a very similar cloth as Columbus. They also aspired to high office and stockpiled fortunes through both chattel and wage slavery. They designed a government that would protect the rich and powerful and would pacify and hold down the working class, poor, and slaves who they considered to be beneath them. These were not great deeds, but great evils.

The founding fathers were the role models for governance that holds back real progress towards true democracy and continues to haunt us to this very day. President James Madison, considered to be one of the most important founding fathers, said that democracy needed to be limited and government designed to protect the minority of the opulent against the majority and that unchecked, democratic communities were subject to the turbulency and weakness of unruly passions See https://en.wikipedia.org/wiki/Federalist_No._10#Background.

Professor Noam Chomsky, who many consider to be this countrys greatest intellectual, described very accurately the thinking and behavior of the founding fathers in this regard in a YouTube video entitled Noam Chomsky - Madison vs. Aristotle.

The Bible also speaks against the great sins of the rich and powerful in no uncertain terms. Our founding fathers were much like the Pharisees that Jesus denounced and promised would never enter His Kingdom because of their material wealth. Luke 6:24; Matthew 19:23-24; 23:1-39. James warns us how these big-money types exploit the poor, slander the name of Jesus, and are destined for horrible destruction in the end times. James 2:5-7; 5:1-6.

The author of the Detroit News editorial should have dug deeper into the Scriptures and considered the Commandment against making and worshipping idols as applied to statues of rich and powerful men. Exodus 20:4.

William Swenson

Menominee

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Founding fathers 'cut from similar cloth' | Opinion | ehextra.com - EH Extra

It’s Time the Restaurant Industry Shed This Legacy of Slavery – Triple Pundit

No one questions the fact that restaurant employees, and owners as well, are suffering greatly due to the chaos COVID-19 has wrought over the past several months. But lost in the backbiting on Capitol Hill over whether we should pay a premium on unemployment benefits, or restore the three-martini-lunch deduction, is the fact that the restaurant industry could benefit from structural, financial and legal help during this crisis.

Meanwhile, essential workers including restaurant employees are facing threats of evictions and hunger.

To that end, last week a coalition of dozens of restaurant workers and leading restaurateurs in New York asked the states governor, Andrew Cuomo, to deploy his executive authority to push for changes thatboth benefit and reform the states restaurant industry.

The Safe and Just Reopening Plan looks out for restaurant owners and workers alike. For restaurateurs, the plan advocates for both tax relief for restaurants and the ability to charge a safe reopening fee if restaurants agree to certain health and safety protocols in the era of COVID-19.

For workers, such a plan would allow wait staff to tip out kitchen and other back-end staffand, most importantly, it eliminates the subminimum hourly wage that has long been the norm in most U.S. states.

The federal minimum wage for tipped workers is $2.13 per hour. While actual wages vary from state to state, all workers who receive tips are paid less than the state's minimum wage for otherworkers.Thissubminimum wage is a holdover from a long begone era,and its critics say that the federally mandated low hourly wage is part and parcel of the systemic racism endemic across the U.S.

According to historians who focus on the post-Civil War era, the subminimum wage has its origins in slavery. After Emancipation, there was plenty of low-wage labor available to businesses such as restaurants. The hospitality sector was quickto catch onto the idea that hiring Black people to work for tips would be a way to keep labor costs down. At the same time, growing trends in transatlantic travel introduced American travelers to a European custom that appeared sophisticated once U.S. citizens returned to their side of the pond. The problem with the sophisticated veneer of tipping was that whats nowconsidered etiquette has its origins in racism.

One company notorious for this practice during the later 19th century was the Pullman Company, which hired Black porters to cater to its well-heeled white customers who traveled by train across the U.S.

Fast forward decades later, and coalitions including One Fair Wage insist its time to rethink the way in which the restaurant industry pays employees.

The subminimum wage in New York State is higher than the U.S. federal rate ($11.80 versus $2.13), but in this day in age anyone knows the math doesnt add up to allow for a minimal standard of living. In New York, tipped workers, still subject to a subminimum wage by law, are more than twice as likely to live in poverty and rely on Medicaid compared to the rest of the state workforce, says the authors of the groups most recent report.

One Fair Wage also says its data show that, nationally, white male tipped workers make about $5 an hour more than their Black women counterparts; in New York City, the discrepancy is $8 an hour. And the gaps arent just in wages: The group's research shows that restaurants were twice as likely to hire white workers over people of color. Further, 40 percent of white managers in the restaurant industry demonstrated a clear preference to hire white people over Black peopleand other people of color.

To date, 50 restaurant owners and at least 200 workers have joined One Fair Wage to support the Safe and Just Reopening plan. Joining them are celebrity chefs David Chang of Momofuku fame, as well as Tom Colicchio and Danny Meyer.

Chang in particular has been vocal about the ravages COVID-19 has heaped on restaurant workers, and emerged as a leader when it comes to showing how restaurants can operate safely during this era. Forced to close some of his restaurants, he co-launched a fund to help employees make ends meet, and he directed his human resources staff to pay healthcare premiums for laid-off employees as long as it was financially possible.

As of press time, the One Fair Wage-led directive is focused on New York, but it offers a template of how all U.S.restaurants and their employees can survive during a pandemic that so far appears to have no end in sight.

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It's Time the Restaurant Industry Shed This Legacy of Slavery - Triple Pundit