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Integration of Untargeted Metabolomics and Microbial Community Analyses to Characterize Distinct Deep-Sea Methane Seeps

FRONTIERS IN MARINE SCIENCE(2023)

Oregon State Univ

Cited 0|Views16
Abstract
Deep-sea methane seeps host highly diverse microbial communities whose biological diversity is distinct from other marine habitats. Coupled with microbial community analysis, untargeted metabolomics of environmental samples using high resolution tandem mass spectrometry provides unprecedented access to the unique specialized metabolisms of these chemosynthetic microorganisms. In addition, the diverse microbial natural products are of broad interest due to their potential applications for human and environmental health and well-being. In this exploratory study, sediment cores were collected from two methane seeps (-1000 m water depth) with very different gross geomorphologies, as well as a non-seep control site. Cores were subjected to parallel metabolomic and microbial community analyses to assess the feasibility of representative metabolite detection and identify congruent patterns between metabolites and microbes. Metabolomes generated using high resolution liquid chromatography tandem mass spectrometry were annotated with predicted structure classifications of the majority of mass features using SIRIUS and CANOPUS. The microbiome was characterized by analysis of 16S rRNA genes and analyzed both at the whole community level, as well as the small subgroup of Actinobacteria, which are known to produce societally useful compounds. Overall, the younger Dagorlad seep possessed a greater abundance of metabolites while there was more variation in abundance, number, and distribution of metabolites between samples at the older Emyn Muil seep. Lipid and lipid-like molecules displayed the greatest variation between sites and accounted for a larger proportion of metabolites found at the older seep. Overall, significant differences in composition of the microbial community mirrored the patterns of metabolite diversity within the samples; both varied greatly as a function of distance from methane seep, indicating a deterministic role of seepage. Interdisciplinary research to understand microbial and metabolic diversity is essential for understanding the processes and role of ubiquitous methane seeps in global systems and here we increase understanding of these systems by visualizing some of the chemical diversity that seeps add to marine systems.
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methane seep,deep-sea,untargeted metabolomics,microbial community,tandem mass spectrometry,environmental analysis
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要点】:本研究通过整合未目标代谢组学和微生物群落分析,探究了深海甲烷渗漏地区独特的微生物代谢特征,为理解全球深海系统中甲烷渗漏的作用提供了新的视角。

方法】:研究采用高分辨率串联质谱技术对环境样本进行未目标代谢组学分析,并结合微生物群落16S rRNA基因分析,对比了两个不同形态的深海甲烷渗漏区域以及一个非渗漏控制区域的样本。

实验】:研究采集了两个甲烷渗漏区域(水深-1000米)的沉积物核心样本,以及一个非渗漏控制点样本,通过平行进行代谢组和微生物群落分析,使用SIRIUS和CANOPUS对代谢组进行注释,并分析了微生物群落结构。结果显示,较年轻的Dagorlad渗漏区域代谢物丰富度更高,而较老的Emyn Muil渗漏区域样本间代谢物丰度、数量和分布则表现出更多差异。脂质和类脂分子在不同地点间变化最大,且在较老的渗漏区域所占比例更高。微生物群落的组成差异与样本中代谢物多样性模式一致,均随距离渗漏源的远近而有显著变化。