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通过宏转录组学揭示红海海绵卡特氏硬海绵中的微生物功能活性。

Revealing microbial functional activities in the Red Sea sponge Stylissa carteri by metatranscriptomics.

作者信息

Moitinho-Silva Lucas, Seridi Loqmane, Ryu Taewoo, Voolstra Christian R, Ravasi Timothy, Hentschel Ute

机构信息

Department of Botany II, Julius-von-Sachs Institute for Biological Sciences, University of Wuerzburg, Julius-von-Sachs Platz 3, 97082, Wuerzburg, Germany.

出版信息

Environ Microbiol. 2014 Dec;16(12):3683-98. doi: 10.1111/1462-2920.12533. Epub 2014 Jul 9.

DOI:10.1111/1462-2920.12533
PMID:24920529
Abstract

Sponges are important components of marine benthic environments and are associated with microbial symbionts that carry out ecologically relevant functions. Stylissa carteri is an abundant, low-microbial abundance species in the Red Sea. We aimed to achieve the functional and taxonomic characterization of the most actively expressed prokaryotic genes in S. carteri. Prokaryotic mRNA was enriched from sponge total RNA, sequenced using Illumina HiSeq technology and annotated using the metagenomics Rapid Annotation using Subsystem Technology (MG-RAST) pipeline. We detected high expression of archaeal ammonia oxidation and photosynthetic carbon fixation by members of the genus Synechococcus. Functions related to stress response and membrane transporters were among the most highly expressed by S. carteri symbionts. Unexpectedly, gene functions related to methylotrophy were highly expressed by gammaproteobacterial symbionts. The presence of seawater-derived microbes is indicated by the phylogenetic proximity of organic carbon transporters to orthologues of members from the SAR11 clade. In summary, we revealed the most expressed functions of the S. carteri-associated microbial community and linked them to the dominant taxonomic members of the microbiome. This work demonstrates the applicability of metatranscriptomics to explore poorly characterized symbiotic consortia and expands our knowledge of the ecologically relevant functions carried out by coral reef sponge symbionts.

摘要

海绵是海洋底栖环境的重要组成部分,与具有生态相关功能的微生物共生体相关联。卡特氏硬海绵(Stylissa carteri)是红海一种数量丰富、微生物丰度较低的物种。我们旨在对卡特氏硬海绵中最活跃表达的原核基因进行功能和分类特征分析。从海绵总RNA中富集原核mRNA,使用Illumina HiSeq技术进行测序,并使用基于子系统技术的宏基因组快速注释(MG-RAST)管道进行注释。我们检测到了聚球藻属成员对古菌氨氧化和光合碳固定的高表达。与应激反应和膜转运蛋白相关的功能是卡特氏硬海绵共生体中表达最高的功能之一。出乎意料的是,γ-变形菌共生体中与甲基营养相关的基因功能高表达。有机碳转运蛋白与SAR11进化枝成员直系同源物的系统发育接近性表明存在源自海水的微生物。总之,我们揭示了卡特氏硬海绵相关微生物群落中最表达的功能,并将它们与微生物组的优势分类成员联系起来。这项工作证明了宏转录组学在探索特征不明的共生聚集体方面的适用性,并扩展了我们对珊瑚礁海绵共生体所执行的生态相关功能的认识。

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