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宏转录组学揭示了热液喷口蜗牛共生体原位能量和氮代谢的差异。

Metatranscriptomics reveal differences in in situ energy and nitrogen metabolism among hydrothermal vent snail symbionts.

机构信息

Department of Organismic and Evolutionary Biology, Harvard University, Cambridge, MA 02138, USA.

出版信息

ISME J. 2013 Aug;7(8):1556-67. doi: 10.1038/ismej.2013.45. Epub 2013 Apr 25.

Abstract

Despite the ubiquity of chemoautotrophic symbioses at hydrothermal vents, our understanding of the influence of environmental chemistry on symbiont metabolism is limited. Transcriptomic analyses are useful for linking physiological poise to environmental conditions, but recovering samples from the deep sea is challenging, as the long recovery times can change expression profiles before preservation. Here, we present a novel, in situ RNA sampling and preservation device, which we used to compare the symbiont metatranscriptomes associated with Alviniconcha, a genus of vent snail, in which specific host-symbiont combinations are predictably distributed across a regional geochemical gradient. Metatranscriptomes of these symbionts reveal key differences in energy and nitrogen metabolism relating to both environmental chemistry (that is, the relative expression of genes) and symbiont phylogeny (that is, the specific pathways employed). Unexpectedly, dramatic differences in expression of transposases and flagellar genes suggest that different symbiont types may also have distinct life histories. These data further our understanding of these symbionts' metabolic capabilities and their expression in situ, and suggest an important role for symbionts in mediating their hosts' interaction with regional-scale differences in geochemistry.

摘要

尽管化能自养共生体在热液喷口无处不在,但我们对环境化学对共生体代谢影响的理解是有限的。转录组分析有助于将生理平衡与环境条件联系起来,但从深海中回收样本具有挑战性,因为长时间的恢复会在保存之前改变表达谱。在这里,我们提出了一种新颖的原位 RNA 采样和保存装置,我们使用该装置比较了与热液喷口蜗牛属(Alviniconcha)相关的共生体的宏转录组,在该属中,特定的宿主-共生体组合可预测地分布在区域地球化学梯度上。这些共生体的宏转录组揭示了与环境化学(即基因的相对表达)和共生体系统发育(即使用的特定途径)相关的能量和氮代谢的关键差异。出乎意料的是,转座酶和鞭毛基因表达的巨大差异表明,不同的共生体类型也可能具有不同的生活史。这些数据进一步加深了我们对这些共生体代谢能力及其原位表达的理解,并表明共生体在介导宿主与区域尺度地球化学差异相互作用方面发挥着重要作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/341b/3721115/53d62bee5154/ismej201345f1.jpg

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