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Distinct influence of trimethylamine N-oxide and high hydrostatic pressure on community structure and culturable deep-sea bacteria

机译:三甲胺N-氧化物和高静压压力对群落结构和培养深海细菌的不同影响

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Trimethylamine N-oxide (TMAO) is one of the most important nutrients for bacteria in the deep-sea environment and is capable of improving pressure tolerance of certain bacterial strains. To assess the impact of TMAO on marine microorganisms, especially those dwelling in the deep-sea environment, we analyzed the bacterial community structure of deep-sea sediments after incubated under different conditions. Enrichments at 50 MPa and 0.1 MPa revealed that TMAO imposed a greater influence on bacterial diversity and community composition at atmospheric pressure condition than that under high hydrostatic pressure (HHP). We found that pressure was the primary factor that determines the bacterial community. Meanwhile, in total, 238 bacterial strains were isolated from the enrichments, including 112 strains affiliated to 16 genera of 4 phyla from the Yap Trench and 126 strains affiliated to 11 genera of 2 phyla from the Mariana Trench. Treatment of HHP reduced both abundance and diversity of isolates, while the presence of TMAO mainly affected the diversity of isolates obtained. In addition, certain genera were isolated only when TMAO was supplemented. Taken together, we demonstrated that pressure primarily defines the bacterial community and culturable bacterial isolates. Furthermore, we showed for the first time that TMAO had distinct influences on bacterial community depending on the pressure condition. The results enriched the understanding of the significance of TMAO in bacterial adaptation to the deep-sea environment.
机译:三甲胺N-氧化物(TMAO)是深海环境中细菌最重要的营养素之一,并且能够改善某些细菌菌株的耐腐蚀性。为了评估TMAO对海洋微生物的影响,特别是那些居住在深海环境中,我们分析了在不同条件下孵育后深海沉积物的细菌群落结构。 50 MPa和0.1MPa的富集显示,TMAO对大气压条件的细菌多样性和群落组成施加了更大的影响,而不是在高静水压力(HHP)下。我们发现压力是决定细菌群落的主要因素。同时,总共分离了238个细菌菌株,其中来自富集的112个菌株,其中来自yap沟槽的16个属的4μA,来自Mariana沟槽的11个属的2个植物的126株。 HHP的治疗减少了分离株的丰度和多样性,而TMAO的存在主要影响所获得的分离物的多样性。此外,仅在补充TMAO时才分离某些属。一起占据,我们证明了压力主要定义细菌群落和培养的细菌分离株。此外,我们首次显示TMAO对细菌群体的不同影响,这取决于压力条件。结果富集了了解TMAO在细菌适应对深海环境中的重要性。

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