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“氮营养型迪亚氏菌”,一种新型的γ-变形菌属,在受原油污染的沿海沉积物中占优势。

"Candidatus Macondimonas diazotrophica", a novel gammaproteobacterial genus dominating crude-oil-contaminated coastal sediments.

机构信息

School of Civil and Environmental Engineering, Georgia Institute of Technology, Atlanta, GA, USA.

School of Biological Sciences, Georgia Institute of Technology, Atlanta, GA, USA.

出版信息

ISME J. 2019 Aug;13(8):2129-2134. doi: 10.1038/s41396-019-0400-5. Epub 2019 Apr 5.

Abstract

Modeling crude-oil biodegradation in sediments remains a challenge due in part to the lack of appropriate model organisms. Here we report the metagenome-guided isolation of a novel organism that represents a phylogenetically narrow (>97% 16S rRNA gene identity) group of previously uncharacterized, crude-oil degraders. Analysis of available sequence data showed that these organisms are highly abundant in oiled sediments of coastal marine ecosystems across the world, often comprising ~30% of the total community, and virtually absent in pristine sediments or seawater. The isolate genome encodes functional nitrogen fixation and hydrocarbon degradation genes together with putative genes for biosurfactant production that apparently facilitate growth in the typically nitrogen-limited, oiled environment. Comparisons to available genomes revealed that this isolate represents a novel genus within the Gammaproteobacteria, for which we propose the provisional name "Candidatus Macondimonas diazotrophica" gen. nov., sp. nov. "Ca. M. diazotrophica" appears to play a key ecological role in the response to oil spills around the globe and could be a promising model organism for studying ecophysiological responses to oil spills.

摘要

由于缺乏合适的模式生物,建模原油在沉积物中的生物降解仍然是一个挑战。在这里,我们报告了一种新的微生物的宏基因组指导分离,该微生物代表了一个以前未被描述的、亲缘关系狭窄(16S rRNA 基因同一性>97%)的原油降解菌群。对现有序列数据的分析表明,这些微生物在世界各地沿海海洋生态系统的污染沉积物中高度丰富,通常占总群落的~30%,而在原始沉积物或海水中几乎不存在。该分离株的基因组编码功能固氮和烃类降解基因,以及可能用于生物表面活性剂生产的基因,这些显然有助于在典型的氮限制、污染环境中生长。与现有基因组的比较表明,该分离株代表了γ变形菌门中的一个新属,我们提议暂定名为“Candidatus Macondimonas diazotrophica”属。新种。“Ca. M. diazotrophica”似乎在全球范围内应对溢油事件中发挥着关键的生态作用,并且可能是研究对溢油事件的生态生理响应的有前途的模式生物。

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