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稀有生物土壤硅藻中的全球辐射

Global radiation in a rare biosphere soil diatom.

机构信息

Laboratory of Protistology & Aquatic Ecology, Ghent University, Krijgslaan 281-S8, 9000 Gent, Belgium.

Meise Botanic Garden, Nieuwelaan 38, 1860, Meise, Belgium.

出版信息

Nat Commun. 2020 May 13;11(1):2382. doi: 10.1038/s41467-020-16181-0.

Abstract

Soil micro-organisms drive the global carbon and nutrient cycles that underlie essential ecosystem functions. Yet, we are only beginning to grasp the drivers of terrestrial microbial diversity and biogeography, which presents a substantial barrier to understanding community dynamics and ecosystem functioning. This is especially true for soil protists, which despite their functional significance have received comparatively less interest than their bacterial counterparts. Here, we investigate the diversification of Pinnularia borealis, a rare biosphere soil diatom species complex, using a global sampling of >800 strains. We document unprecedented high levels of species-diversity, reflecting a global radiation since the Eocene/Oligocene global cooling. Our analyses suggest diversification was largely driven by colonization of novel geographic areas and subsequent evolution in isolation. These results illuminate our understanding of how protist diversity, biogeographical patterns, and members of the rare biosphere are generated, and suggest allopatric speciation to be a powerful mechanism for diversification of micro-organisms.

摘要

土壤微生物驱动着全球碳氮循环,这些循环是基本生态系统功能的基础。然而,我们才刚刚开始了解陆地微生物多样性和生物地理学的驱动因素,这对理解群落动态和生态系统功能构成了重大障碍。对于土壤原生动物来说尤其如此,尽管它们具有重要的功能,但与细菌相比,它们受到的关注相对较少。在这里,我们利用对 >800 株菌株的全球采样,研究了北极鞭毛藻(Pinnularia borealis)这一稀有生物土壤硅藻种复合体的多样化情况。我们记录了前所未有的高物种多样性,反映了自始新世/渐新世全球变冷以来的全球辐射。我们的分析表明,多样化主要是由新地理区域的殖民化以及随后的隔离进化驱动的。这些结果阐明了我们对原生动物多样性、生物地理模式和稀有生物成员是如何产生的理解,并表明异域物种形成是微生物多样化的一种强大机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4ec5/7221085/8f5344227bea/41467_2020_16181_Fig1_HTML.jpg

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