{"id":1125817,"date":"2024-06-06T08:51:01","date_gmt":"2024-06-06T12:51:01","guid":{"rendered":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/uncategorized\/evolutionary-radiation-strategy-revealed-in-the-scarabaeidae-with-evidence-of-continuous-spatiotemporal-morphology-nature-com\/"},"modified":"2024-06-06T08:51:01","modified_gmt":"2024-06-06T12:51:01","slug":"evolutionary-radiation-strategy-revealed-in-the-scarabaeidae-with-evidence-of-continuous-spatiotemporal-morphology-nature-com","status":"publish","type":"post","link":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/evolution\/evolutionary-radiation-strategy-revealed-in-the-scarabaeidae-with-evidence-of-continuous-spatiotemporal-morphology-nature-com\/","title":{"rendered":"Evolutionary radiation strategy revealed in the Scarabaeidae with evidence of continuous spatiotemporal morphology &#8230; &#8211; Nature.com"},"content":{"rendered":"<p><p>        Harmon, L. J., Schulte, J. A., Larson, A. & Losos, J. B.        Tempo and mode of evolutionary radiation in iguanian        lizards. Science 301, 961964 (2003).      <\/p>\n<p>        Article CAS PubMed                Google Scholar      <\/p>\n<p>        Wirta, H., Orsini, L. & Hanski, I. An old adaptive        radiation of forest dung beetles in Madagascar. Mol.        Phylogenet. Evol. 47, 10761089 (2008).      <\/p>\n<p>        Article        PubMed                Google Scholar      <\/p>\n<p>        Benton, M. J. The Red Queen and the Court Jester: species        diversity and the role of biotic and abiotic factors        through time. Science 323, 728732 (2009).      <\/p>\n<p>        Article CAS PubMed                Google Scholar      <\/p>\n<p>        Magalln, S. & Castillo, A. Angiosperm diversification        through time. Am. J. Bot. 96, 349365 (2009).      <\/p>\n<p>        Article PubMed                Google Scholar      <\/p>\n<p>        Bai, M. et al. Mandible evolution in the Scarabaeinae        (Coleoptera: Scarabaeidae) and adaptations to coprophagous        habits. Front. Zool. 12, 110 (2015).      <\/p>\n<p>        Article                Google Scholar      <\/p>\n<p>        Joseph, S. J., Marti, H., Didelot, X., Read, T. D. & Dean,        D. Tetracycline selective pressure and homologous        recombination shape the evolution of Chlamydia suis: a        recently identified zoonotic pathogen. Genome Biol.        Evol. 8, 26132623 (2016).      <\/p>\n<p>        Article CAS PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Hu, Y., Linz, D. M. & Moczek, A. P. Beetle horns evolved        from wing serial homologs. Science 366,        10041007 (2019).      <\/p>\n<p>        Article CAS PubMed                Google Scholar      <\/p>\n<p>        Chander, Y. et al. Resistance evolution against        host-directed antiviral agents: Buffalopox virus switches        to use p38- under long-term selective pressure of an        inhibitor targeting p38-. Mol. Biol. Evol.        39, msac177 (2022).      <\/p>\n<p>        Article CAS PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Feng, S. et al. Incomplete lineage sorting and phenotypic        evolution in marsupials. Cell 185, 115        (2022).      <\/p>\n<p>        Article                Google Scholar      <\/p>\n<p>        Rudman, S. M. et al. Direct observation of adaptive        tracking on ecological time scales in Drosophila.        Science 375, eabj7484 (2022).      <\/p>\n<p>        Article CAS PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Guo, X. et al. Chloranthus genome provides insights into        the early diversification of angiosperms. Nat.        Commun. 12, 6930 (2021).      <\/p>\n<p>        Article        CAS PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Benton, M. J., Wilf, P. & Sauquet, H. The angiosperm        terrestrial revolution and the origins of modern        biodiversity. N. Phytol. 233, 20172035        (2022).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Bian, X., Garner, B. H., Liu, H. & Vogler, A. P. The        SITE-100 project: site-based biodiversity genomics for        species discovery, community ecology, and a global        tree-of-life. Front. Ecol. Evol. 10 (2022).      <\/p>\n<p>        Li, H. T. et al. Origin of angiosperms and the puzzle of        the Jurassic gap. Nat. Plants 5, 461470        (2019).      <\/p>\n<p>        Article        PubMed                Google Scholar      <\/p>\n<p>        Lu, Y. et al. The evolution of conglobation in        Ceratocanthinae. Commun. Biol. 5, 777 (2022).      <\/p>\n<p>        Article        PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        liobait, I., Fortelius, M. & Stenseth, N. C. Reconciling        taxon senescence with the Red Queens hypothesis.        Nature 552, 9295 (2017).      <\/p>\n<p>        Article PubMed                Google Scholar      <\/p>\n<p>        Becker, D. et al. Adaptive phenotypic plasticity is under        stabilizing selection in Daphnia. Nat. Ecol. Evol.        6, 14491457 (2022).      <\/p>\n<p>        Article        PubMed                Google Scholar      <\/p>\n<p>        Vamosi, J. C., Magallon, S., Mayrose, I., Otto, S. P. &        Sauquet, H. Macroevolutionary patterns of flowering plant        speciation and extinction. Annu. Rev. Plant Biol.        69, 685706 (2018).      <\/p>\n<p>        Article        CAS PubMed                Google Scholar      <\/p>\n<p>        Ramirez-Barahona, S., Sauquet, H. & Magallon, S. The        delayed and geographically heterogeneous diversification of        flowering plant families. Nat. Ecol. Evol. 4,        12321238 (2020).      <\/p>\n<p>        Article        PubMed                Google Scholar      <\/p>\n<p>        Beutel, R. G. & Leschen, R. A. Coleoptera, beetles.        Morphology and systematics (Walter de Gruyter GmbH & Co        KG, 2016).      <\/p>\n<p>        Scholtz, C. H., Davis, A. L. V. & Kryger, U.        Evolutionary biology and conservation of dung        beetles (Pensoft Sofia-Moscow, 2009).      <\/p>\n<p>        Ahrens, D., Schwarzer, J. & Vogler, A. P. The evolution of        scarab beetles tracks the sequential rise of angiosperms        and mammals. P. Roy. Soc. B-Biol. Sci. 281,        20141470 (2014).      <\/p>\n<p>                Google Scholar      <\/p>\n<p>        Frings, J., Lago, P. K. & Ahrens, D. Morphology of        mouthparts poorly resolves the phylogeny of Sericini        chafers (Coleoptera: Scarabaeidae). Zool. Anz.        284, 5365 (2020).      <\/p>\n<p>        Article                Google Scholar      <\/p>\n<p>        Browne, J. & Scholtz, C. H. Evolution of the scarab        hindwing articulation and wing base: a contribution toward        the phylogeny of the Scarabaeidae (Scarabaeoidea:        Coleoptera). Syst. Entomol. 23, 307326        (1998).      <\/p>\n<p>        Article                Google Scholar      <\/p>\n<p>        Tarasov, S., Vaz-de-Mello, F. Z., Krell, F.-T. & Dimitrov,        D. A review and phylogeny of Scarabaeine dung beetle        fossils (Coleoptera: Scarabaeidae: Scarabaeinae), with the        description of two Canthochilum species from Dominican        amber. PeerJ 4, e1988 (2016).      <\/p>\n<p>        Article PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Hunt, T. et al. A comprehensive phylogeny of beetles        reveals the evolutionary origins of a superradiation.        Science 318, 19131916 (2007).      <\/p>\n<p>        Article CAS PubMed                Google Scholar      <\/p>\n<p>        NeitaMoreno, J. C., Agrain, F. A., Eberle, J., Ahrens, D.        & Pereyra, V. On the phylogenetic position and systematics        of extant and fossil Aclopinae (Coleoptera: Scarabaeidae).        Syst. Entomol. 44, 709727 (2019).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Ahrens, D., Liu, W. G., Fabrizi, S., Bai, M. & Yang, X. K.        A taxonomic review of the Neoserica (sensu lato)        septemlamellata group (Coleoptera, Scarabaeidae, Sericini).        Zookeys 402, 67102 (2014).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Monaghan, M. T., Inward, D. J., Hunt, T. & Vogler, A. P. A        molecular phylogenetic analysis of the Scarabaeinae (dung        beetles). Mol. Phylogenet. Evol. 45, 674692        (2007).      <\/p>\n<p>        Article        CAS PubMed                Google Scholar      <\/p>\n<p>        Howden, H. New Rhyparini from Fiji and the Philippines        (Coleoptera: Scarabaeidae: Aphodiinae). Coleopts.        Bull. 49, 2327 (1995).      <\/p>\n<p>                Google Scholar      <\/p>\n<p>        Mora-Aguilar, E. F. & Delgado, L. A new Mexican species of        Rhyparus Westwood (Coleoptera: Scarabaeidae: Aphodiinae),        with new records and a key to the Mexican and Guatemalan        species. Zootaxa 4609, 196200 (2019).      <\/p>\n<p>        Article                Google Scholar      <\/p>\n<p>        Skelley, P. E., Smith, A. B. T. & Mora-Aguilar, E. F. A        review of the flightless genus Nanotermitodius Howden, 2003        (Coleoptera: Scarabaeidae: Aphodiinae: Rhyparini).        Zootaxa 5200, 355364 (2022).      <\/p>\n<p>        Article        PubMed                Google Scholar      <\/p>\n<p>        Skelley, P., Clavijo-Bustos, J. & Keller, O. Extinct or        extant? A new species of Termitodius Wasmann, 1894,        (Coleoptera: Scarabaeidae: Aphodiinae: Rhyparini) with a        short review of the genus. Insecta Mundi        0915, 114 (2022).      <\/p>\n<p>                Google Scholar      <\/p>\n<p>        Foster, C. S. et al. Evaluating the impact of genomic data        and priors on Bayesian estimates of the angiosperm        evolutionary timescale. Syst. Biol. 66,        338351 (2017).      <\/p>\n<p>        PubMed                Google Scholar      <\/p>\n<p>        Condamine, F. L., Silvestro, D., Koppelhus, E. B. &        Antonelli, A. The rise of angiosperms pushed conifers to        decline during global cooling. Proc. Natl. Acad.        Sci. 117, 2886728875 (2020).      <\/p>\n<p>        Article CAS PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Krell, F. T. The fossil record of Mesozoic and Tertiary        Scarabaeoidea (Coleoptera: Polyphaga). Invertebr.        Syst. 14, 871905 (2000).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Lawrence, J., Hastings, A., Dallwitz, M., Paine, T. &        Zurcher, E. Beetles of the world: a key and information        system for families and subfamilies (CSIRO Publishing,        2000).      <\/p>\n<p>        Lawrence, J. & Laporte, P. Handbook of zoology. Arthropoda:        Insecta. In: Coleoptera, Beetles. Morphology and        Systematics. Archostemata, Adephaga, Myxophaga, and        Polyphaga partim, Volume 1, 2nd Edition (Walter de        Gruyter, 1836).      <\/p>\n<p>        Berendse, F. & Scheffer, M. The angiosperm radiation        revisited, an ecological explanation for Darwins        abominable mystery. Ecol. Lett. 12, 865872        (2009).      <\/p>\n<p>        Article        PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        De Boer, H. J., Eppinga, M. B., Wassen, M. J. & Dekker, S.        C. A critical transition in leaf evolution facilitated the        Cretaceous angiosperm revolution. Nat. Commun.        3, 1221 (2012).      <\/p>\n<p>        Article PubMed                Google Scholar      <\/p>\n<p>        Alroy, J. New methods for quantifying macroevolutionary        patterns and processes. Paleobiology 26,        707733 (2000).      <\/p>\n<p>        Article                Google Scholar      <\/p>\n<p>        Bininda-Emonds, O. R. P. et al. The delayed rise of        present-day mammals. Nature 446, 507512        (2007).      <\/p>\n<p>        Article CAS PubMed                Google Scholar      <\/p>\n<p>        Jacobs, B. F. Palaeobotanical studies from tropical Africa:        relevance to the evolution of forest, woodland and savannah        biomes. Philos. Trans. R. Soc. Lond. B. Biol. Sci.        359, 15731583 (2004).      <\/p>\n<p>        Article PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Beerling, D. J. & Osborne, C. P. The origin of the savanna        biome. Glob. Change Biol. 12, 20232031        (2006).      <\/p>\n<p>        Article                Google Scholar      <\/p>\n<p>        Sinclair, A. Adaptations of African ungulates and their        effects on community function. In: Ecosystems of the        World (1983).      <\/p>\n<p>        Cambefort, Y. From saprophagy to coprophagy. In: Dung        Beetle ecology 2235 (1991).      <\/p>\n<p>        Browne, J. & Scholtz, C. H. Evolution of the scarab        hindwing articulation and wing base: a contribution toward        the phylogeny of the Scarabaeidae (Scarabaeoidea :        Coleoptera). Syst. Entomol. 23, 307326        (1998).      <\/p>\n<p>        Article                Google Scholar      <\/p>\n<p>        Philips, T. K., Pretorius, E. & Scholtz, C. H. A        phylogenetic analysis of dung beetles (Scarabaeinae :        Scarabaeidae): unrolling an evolutionary history.        Invertebr. Syst. 18, 5388 (2004).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Scholtz, C. Phylogenetic trends in the Scarabaeoidea        (Coleoptera). J. Nat. Hist. 24, 10271066        (1990).      <\/p>\n<p>        Article                Google Scholar      <\/p>\n<p>        Martnez, M. & Cruz, R. Comparative morphological analysis        of testis follicles in dung beetles (Coleoptera:        Scarabaeidae: Scarabaeinae, Aphodiinae, Geotrupinae). P.        Entomol. Soc. Wash. 101, 804815 (1999).      <\/p>\n<p>                Google Scholar      <\/p>\n<p>        Smith, A. B., Hawks, D. C. & Heraty, J. M. An overview of        the classification and evolution of the major scarab beetle        clades (Coleoptera: Scarabaeoidea) based on preliminary        molecular analyses. Coleopts. Bull. 60, 3546        (2006).      <\/p>\n<p>        Article                Google Scholar      <\/p>\n<p>        Foster, G. L., Royer, D. L. & Lunt, D. J. Future climate        forcing potentially without precedent in the last 420        million years. Nat. Commun. 8, 14845 (2017).      <\/p>\n<p>        Article CAS PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Condamine, F. L., Rolland, J. & Morlon, H. Assessing the        causes of diversification slowdowns: temperaturedependent        and diversitydependent models receive equivalent support.        Ecol. Lett. 22, 19001912 (2019).      <\/p>\n<p>        Article PubMed                Google Scholar      <\/p>\n<p>        Davis, A. L., Scholtz, C. H. & Philips, T. K. Historical        biogeography of scarabaeine dung beetles. J.        Biogeogr. 29, 12171256 (2002).      <\/p>\n<p><!-- Auto Generated --><\/p>\n<p>Read more from the original source:<\/p>\n<p><a target=\"_blank\" rel=\"nofollow noopener\" href=\"https:\/\/www.nature.com\/articles\/s42003-024-06250-1\" title=\"Evolutionary radiation strategy revealed in the Scarabaeidae with evidence of continuous spatiotemporal morphology ... - Nature.com\">Evolutionary radiation strategy revealed in the Scarabaeidae with evidence of continuous spatiotemporal morphology ... - Nature.com<\/a><\/p>\n","protected":false},"excerpt":{"rendered":"<p> Harmon, L.  <a href=\"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/evolution\/evolutionary-radiation-strategy-revealed-in-the-scarabaeidae-with-evidence-of-continuous-spatiotemporal-morphology-nature-com\/\">Continue reading <span class=\"meta-nav\">&rarr;<\/span><\/a><\/p>\n","protected":false},"author":1,"featured_media":0,"comment_status":"closed","ping_status":"closed","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[187748],"tags":[],"class_list":["post-1125817","post","type-post","status-publish","format-standard","hentry","category-evolution"],"_links":{"self":[{"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/posts\/1125817"}],"collection":[{"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/users\/1"}],"replies":[{"embeddable":true,"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/comments?post=1125817"}],"version-history":[{"count":0,"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/posts\/1125817\/revisions"}],"wp:attachment":[{"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/media?parent=1125817"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/categories?post=1125817"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/tags?post=1125817"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}