首页> 外文期刊>Philosophical Transactions of the Royal Society of London, Series B. Biological Sciences >Experimental manipulation of selfish genetic elements links genes to microbial community function
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Experimental manipulation of selfish genetic elements links genes to microbial community function

机译:自私遗传元素的实验性操纵将基因与微生物群落功能联系起来

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摘要

Microbial communities underpin the Earth's biological and geochemical processes, but their complexity hampers understanding. Motivated by the challenge of diversity and the need to forge ways of capturing dynamical behaviour connecting genes to function, biologically independent experimental communities comprising hundreds of microbial genera were established from garden compost and propagated on nitrogen-limited minimal medium with cellulose (paper) as sole carbon source. After 1 year of bi-weekly transfer, communities retained hundreds of genera. To connect genes to function, we used a simple experimental manipulation that involved the periodic collection of selfish genetic elements (SGEs) from separate communities, followed by pooling and redistribution across communities. The treatment was predicted to promote amplification and dissemination of SGEs and thus horizontal gene transfer. Confirmation came from comparative metagenomics, which showed the substantive movement of ecologically significant genes whose dynamic across space and time could be followed. Enrichment of genes implicated in nitrogen metabolism, and particularly ammonification, prompted biochemical assays that revealed a measurable impact on community function. Our simple experimental strategy offers a conceptually new approach for unravelling dynamical processes affecting microbial community function. This article is part of the theme issue 'Conceptual challenges in microbial community ecology'.
机译:微生物社区支持地球的生物和地球化学过程,但它们的复杂性妨碍了解。通过多样性的挑战和促进连接基因的动态行为的方法的挑战,从花园堆肥中建立了包含数百微生物属的生物独立的实验社区,并在含氮限制的最小培养基上与纤维素(纸)作为唯一的培养基碳源。经过1年的双周转移,社区保留了数百个属。为了将基因连接到功能,我们使用了一个简单的实验操作,涉及来自单独的社区的自私遗传元素(鼠标)的周期性收集,然后汇集和再分配。预测治疗促进鼠标的扩增和传播,从而横向基因转移。确认来自比较偏心组合,表明,可以遵循跨空间和时间的动态的生态显着基因的实质性运动。富集含氮代谢的基因,特别是氨化,促使生化测定揭示了对社区功能的可测量影响。我们简单的实验战略提供了一种概念上的新方法,用于解开影响微生物群落功能的动态过程。本文是主题问题的一部分问题在微生物群落生态学中的概念挑战的一部分。

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