{"id":167543,"date":"2023-11-02T11:54:14","date_gmt":"2023-11-02T15:54:14","guid":{"rendered":"https:\/\/www.immortalitymedicine.tv\/the-potential-of-co2-based-production-cycles-in-biotechnology-to-nature-com\/"},"modified":"2024-08-17T15:53:27","modified_gmt":"2024-08-17T19:53:27","slug":"the-potential-of-co2-based-production-cycles-in-biotechnology-to-nature-com","status":"publish","type":"post","link":"https:\/\/www.euvolution.com\/futurist-transhuman-news-blog\/human-genetic-engineering\/the-potential-of-co2-based-production-cycles-in-biotechnology-to-nature-com.php","title":{"rendered":"The potential of CO2-based production cycles in biotechnology to &#8230; &#8211; Nature.com"},"content":{"rendered":"<p><p>        Paraschiv, S. & Paraschiv, L. S. Trends of carbon dioxide        (CO2) emissions from fossil fuels combustion        (coal, gas and oil) in the EU member states from 1960 to        2018. Energy Rep. 6, 237242 (2020).      <\/p>\n<p>        Article                Google Scholar      <\/p>\n<p>        International Energy Agency (IEA). CO2 Emissions        in 2022. CO2 Emiss. 2022        (2023). <a href=\"https:\/\/doi.org\/10.1787\/12ad1e1a-en\" rel=\"nofollow\">https:\/\/doi.org\/10.1787\/12ad1e1a-en<\/a>.      <\/p>\n<p>        Vom Berg, C., Carus, M., Stratmann, M. & Dammer, L.        Renewable Carbon as a Guiding Principle for Sustainable        Carbon Cycles. Renew. Carbon Initiat. (2022).      <\/p>\n<p>        Wang, H., Peng, X., Zhang, H., Yang, S. & Li, H.        Microorganisms-promoted biodiesel production from biomass:        A review. Energy Convers. Manag. X 12, 100137        (2021).      <\/p>\n<p>        CAS         Google Scholar      <\/p>\n<p>        Shears, J. Is there a role for synthetic biology in        addressing the transition to a new lowcarbon energy        system? Microb. Biotechnol. 12, 824827        (2019).      <\/p>\n<p>        Article PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Srisawat, P., Higuchi-Takeuchi, M. & Numata, K. Microbial        autotrophic biorefineries: Perspectives for biopolymer        production. Polym. J. 54, 11391151 (2022).      <\/p>\n<p>        Article        CAS         Google Scholar      <\/p>\n<p>        Lee, R. A. & Lavoie, J.-M. From first- to third-generation        biofuels: Challenges of producing a commodity from a        biomass of increasing complexity. Anim. Front        3, 611 (2013).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Caltzontzin-Rabell, V. et al. Raw materials for a        biomass-based industry. in Biofuels and Biorefining        2552 (Elsevier, 2022). <a href=\"https:\/\/doi.org\/10.1016\/B978-0-12-824116-5.00010-6\" rel=\"nofollow\">https:\/\/doi.org\/10.1016\/B978-0-12-824116-5.00010-6<\/a>.      <\/p>\n<p>        Yang, F., Hanna, M. A. & Sun, R. Value-added uses for crude        glycerola byproduct of biodiesel production.        Biotechnol. Biofuels 5, 13 (2012).      <\/p>\n<p>        Article CAS PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Food and Agriculture Organization of the United Nations        (FAO). Sustainable Food and Agriculture. online at                <a href=\"https:\/\/www.fao.org\/sustainability\/news\/detail\/en\/c\/1274219\/\" rel=\"nofollow\">https:\/\/www.fao.org\/sustainability\/news\/detail\/en\/c\/1274219\/<\/a>        (2020).      <\/p>\n<p>        Gitz, V., Meybeck, A., Lipper, L., Young, C. & Braatz, S.        Climate change and food security: Risks and        responses. Food and Agriculture Organization of the        United Nations (2016).      <\/p>\n<p>        Cotton, C. A., Claassens, N. J., Benito-Vaquerizo, S. &        Bar-Even, A. Renewable methanol and formate as microbial        feedstocks. Curr. Opin. Biotechnol. 62,        168180 (2020).      <\/p>\n<p>        Article        CAS PubMed                Google Scholar      <\/p>\n<p>        Jiang, W. et al. Metabolic engineering strategies to enable        microbial utilization of C1 feedstocks. Nat. Chem.        Biol. 17, 845855 (2021).      <\/p>\n<p>        Article        CAS PubMed                Google Scholar      <\/p>\n<p>        Ewis, D. et al. Electrochemical reduction of CO2        into formate\/formic acid: A review of cell design and        operation. Sep. Purif. Technol. 316, 123811        (2023).      <\/p>\n<p>        Article        CAS         Google Scholar      <\/p>\n<p>        Li, P., Gong, S., Li, C. & Liu, Z. Analysis of routes for        electrochemical conversion of CO2 to methanol.        Clean. Energy 6, 967975 (2022).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Lee, M. Y. et al. Current achievements and the future        direction of electrochemical CO2 reduction: A        short review. Crit. Rev. Environ. Sci. Technol.        50, 769815 (2020).      <\/p>\n<p>        Article        CAS         Google Scholar      <\/p>\n<p>        Izadi, P. & Harnisch, F. Microbial | electrochemical        CO2 reduction: To integrate or not to integrate?        Joule 6, 935940 (2022).      <\/p>\n<p>        Article                Google Scholar      <\/p>\n<p>        Nitopi, S. et al. Progress and Perspectives of        Electrochemical CO2 Reduction on Copper in        Aqueous Electrolyte. Chem. Rev. 119,        76107672 (2019).      <\/p>\n<p>        Article        CAS PubMed                Google Scholar      <\/p>\n<p>        Santos Correa, S., Schultz, J., Lauersen, K. J. & Soares        Rosado, A. Natural carbon fixation and advances in        synthetic engineering for redesigning and creating new        fixation pathways. J. Adv. Res. 47, 7592        (2023).      <\/p>\n<p>        Article        CAS PubMed                Google Scholar      <\/p>\n<p>        Bar-Even, A., Noor, E. & Milo, R. A survey of carbon        fixation pathways through a quantitative lens. J. Exp.        Bot. 63, 23252342 (2012).      <\/p>\n<p>        Article CAS PubMed                Google Scholar      <\/p>\n<p>        Claassens, N. J. Reductive Glycine Pathway: A Versatile        Route for One-Carbon Biotech. Trends Biotechnol.        39, 327329 (2021).      <\/p>\n<p>        Article        CAS PubMed                Google Scholar      <\/p>\n<p>        Stephens, S., Mahadevan, R. & Allen, D. G. Engineering        Photosynthetic Bioprocesses for Sustainable Chemical        Production: A Review. Front. Bioeng. Biotechnol.        8, 610723 (2021).      <\/p>\n<p>        Article        PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Zhang, S. et al. Main components of free organic carbon        generated by obligate chemoautotrophic bacteria that        inhibit their CO2 fixation. iScience        25, 105553 (2022).      <\/p>\n<p>        Article        ADS CAS PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Sarma, S. et al. Valorization of microalgae biomass into        bioproducts promoting circular bioeconomy: a holistic        approach of bioremediation and biorefinery. 3        Biotech 11, 378 (2021).      <\/p>\n<p>        Article        PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Veaudor, T. et al. Recent Advances in the Photoautotrophic        Metabolism of Cyanobacteria: Biotechnological Implications.        Life 10, 71 (2020).      <\/p>\n<p>        Article ADS CAS PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Yoon, J. & Oh, M.-K. Strategies for Biosynthesis of C1        Gas-derived Polyhydroxyalkanoates: A review. Bioresour.        Technol. 344, 126307 (2022).      <\/p>\n<p>        Article        CAS PubMed                Google Scholar      <\/p>\n<p>        Bengelsdorf, F. R. et al. Industrial Acetogenic        Biocatalysts: A Comparative Metabolic and Genomic Analysis.        Front. Microbiol. 7, 115 (2016).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Bourgade, B., Minton, N. P. & Islam, M. A. Genetic and        metabolic engineering challenges of C1-gas fermenting        acetogenic chassis organisms. FEMS Microbiol. Rev.        45, 120 (2021).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Liew, F. E. et al. Carbon-negative production of acetone        and isopropanol by gas fermentation at industrial pilot        scale. Nat. Biotechnol. 40, 335344 (2022).      <\/p>\n<p>        Article        CAS PubMed                Google Scholar      <\/p>\n<p>        Yurimoto, H., Shiraishi, K. & Sakai, Y. Physiology of        Methylotrophs Living in the Phyllosphere.        Microorganisms 9, 809 (2021).      <\/p>\n<p>        Article        CAS PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Pea, D. A., Gasser, B., Zanghellini, J., Steiger, M. G. &        Mattanovich, D. Metabolic engineering of Pichia        pastoris. Metab. Eng. 50, 215 (2018).      <\/p>\n<p>        Article        PubMed                Google Scholar      <\/p>\n<p>        Zhang, W. et al. Current advance in bioconversion of        methanol to chemicals. Biotechnol. Biofuels        11, 111 (2018).      <\/p>\n<p>        Article                Google Scholar      <\/p>\n<p>        Nattermann, M. et al. Engineering a new-to-nature cascad<br \/>\ne        for phosphate-dependent formate to formaldehyde conversion        in vitro and in vivo. Nat. Commun. 14, 2682        (2023).      <\/p>\n<p>        Article        ADS CAS PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Collas, F. et al. Engineering the biological conversion        of formate into crotonate in Cupriavidus necator.        bioRxiv (2023). <a href=\"https:\/\/doi.org\/10.1101\/2023.03.14.532570\" rel=\"nofollow\">https:\/\/doi.org\/10.1101\/2023.03.14.532570<\/a>.      <\/p>\n<p>        Gregory, G. J., Bennett, R. K. & Papoutsakis, E. T. Recent        advances toward the bioconversion of methane and methanol        in synthetic methylotrophs. Metab. Eng. 71,        99116 (2022).      <\/p>\n<p>        Article        CAS PubMed                Google Scholar      <\/p>\n<p>        Guerrero-Cruz, S. et al. Methanotrophs: Discoveries,        Environmental Relevance, and a Perspective on Current and        Future Applications. Front. Microbiol. 12,        128 (2021).      <\/p>\n<p>        Article                Google Scholar      <\/p>\n<p>        Fei, Q. et al. Bioconversion of natural gas to liquid fuel:        Opportunities and challenges. Biotechnol. Adv.        32, 596614 (2014).      <\/p>\n<p>        Article        CAS PubMed                Google Scholar      <\/p>\n<p>        Kalyuzhnaya, M. G. et al. Highly efficient methane        biocatalysis revealed in a methanotrophic bacterium.        Nat. Commun. 4, 2785 (2013).      <\/p>\n<p>        Article ADS CAS PubMed                Google Scholar      <\/p>\n<p>        Kwon, M., Ho, A. & Yoon, S. Novel approaches and reasons to        isolate methanotrophic bacteria with biotechnological        potentials: recent achievements and perspectives. Appl.        Microbiol. Biotechnol. 103, 18 (2019).      <\/p>\n<p>        Article        CAS PubMed                Google Scholar      <\/p>\n<p>        Bar-Even, A., Noor, E., Lewis, N. E. & Milo, R. Design and        analysis of synthetic carbon fixation pathways. Proc.        Natl Acad. Sci. USA. 107, 88898894 (2010).      <\/p>\n<p>        Article ADS CAS PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Liang, B., Zhao, Y. & Yang, J. Recent Advances in        Developing Artificial Autotrophic Microorganism for        Reinforcing CO2 Fixation. Front.        Microbiol. 11, 592631 (2020).      <\/p>\n<p>        Article        PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Klein, V. J., Irla, M., Gil Lpez, M., Brautaset, T. &        Fernandes Brito, L. Unravelling Formaldehyde Metabolism in        Bacteria: Road towards Synthetic Methylotrophy.        Microorganisms 10, 220 (2022).      <\/p>\n<p>        Article        CAS PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Keller, P. et al. Generation of an Escherichia coli        strain growing on methanol via the ribulose monophosphate        cycle. Nat. Commun. 13, 113 (2022).      <\/p>\n<p>        Article                Google Scholar      <\/p>\n<p>        Zhan, C. et al. Reprogramming methanol utilization pathways        to convert Saccharomyces cerevisiae to a synthetic        methylotroph. Nat. Catal. 6, 435450 (2023).      <\/p>\n<p>        Article        ADS CAS         Google Scholar      <\/p>\n<p>        Tuyishime, P. et al. Engineering Corynebacterium        glutamicum for methanol-dependent growth and glutamate        production. Metab. Eng. 49, 220231 (2018).      <\/p>\n<p>        Article        CAS PubMed                Google Scholar      <\/p>\n<p>        Chen, F. Y. H., Jung, H. W., Tsuei, C. Y. & Liao, J. C.        Converting Escherichia coli to a Synthetic        Methylotroph Growing Solely on Methanol. Cell        182, 933946.e14 (2020).      <\/p>\n<p>        Article        CAS PubMed                Google Scholar      <\/p>\n<p>        Gassler, T. et al. The industrial yeast Pichia        pastoris is converted from a heterotroph into an        autotroph capable of growth on CO2. Nat.        Biotechnol. 38, 210216 (2020).      <\/p>\n<p>        Article        CAS PubMed                Google Scholar      <\/p>\n<p>        Gassler, T., Baumschabl, M., Sallaberger, J., Egermeier, M.        & Mattanovich, D. Adaptive laboratory evolution and reverse        engineering enhances autotrophic growth in Pichia        pastoris. Metab. Eng. 69, 112121 (2022).      <\/p>\n<p>        Article        CAS PubMed                Google Scholar      <\/p>\n<p>        Gleizer, S. et al. Conversion of Escherichia coli to        Generate All Biomass Carbon from CO2.        Cell 179, 12551263.e12 (2019).      <\/p>\n<p>        Article        CAS PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Baumschabl, M. et al. Conversion of CO2 into        organic acids by engineered autotrophic yeast. Proc.        Natl Acad. Sci. 119, 110 (2022).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Noor, E., Flamholz, A., Liebermeister, W., Bar-Even, A. &        Milo, R. A note on the kinetics of enzyme action: A        decomposition that highlights thermodynamic effects.        FEBS Lett. 587, 27722777 (2013).      <\/p>\n<p>        Article        CAS PubMed                Google Scholar      <\/p>\n<p>        Flamholz, A., Noor, E., Bar-Even, A. & Milo, R.        EQuilibrator - The biochemical thermodynamics calculator.        Nucl. Acids Res. 40, 770775 (2012).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Noor, E. et al. Pathway Thermodynamics Highlights Kinetic        Obstacles in Central Metabolism. PLoS Comput. Biol.        10, e1003483 (2014).      <\/p>\n<p>        Article        PubMed        PubMed        Central         Google Scholar      <\/p>\n<p><!-- Auto Generated --><\/p>\n<p>Read the original post:<br \/>\n<a target=\"_blank\" href=\"https:\/\/www.nature.com\/articles\/s41467-023-42790-6\" title=\"The potential of CO2-based production cycles in biotechnology to ... - Nature.com\" rel=\"noopener\">The potential of CO2-based production cycles in biotechnology to ... - Nature.com<\/a><\/p>\n","protected":false},"excerpt":{"rendered":"<p> Paraschiv, S. &#038; Paraschiv, L. 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