微生物组稳定性与菲律宾西北部Acropora珊瑚的耐热性有关。

IF 4.3 2区 生物学 Q2 MICROBIOLOGY
Jake Ivan P. Baquiran, John Bennedick Quijano, Madeleine J. H. van Oppen, Patrick C. Cabaitan, Peter L. Harrison, Cecilia Conaco
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引用次数: 0

摘要

珊瑚与各种各样的原核共生体联系在一起,为它们的宿主提供营养、抗氧化剂和其他保护性化合物。然而,微生物对珊瑚耐热性的影响仍未得到充分研究。在这里,我们研究了与Acropora cft . tenuis菌落相关的原核微生物群落,这些菌落在33°C(加热)下相对于29°C(对照)表现出较高或较低的耐热性。16S rRNA测序结果表明,在控制温度下,各菌落的微生物群落结构相似。然而,耐热菌落的内生单胞菌、Arcobacter、双歧杆菌和乳杆菌的丰度相对较高。在高温下,只有热敏菌落的微生物群发生了明显的变化,黄杆菌科、红杆菌科和弧菌的数量增加,并伴有明显的漂白反应。功能预测表明,与耐热珊瑚相关的原核群落富集了与代谢相关的基因,而与热敏菌落相关的微生物群落富集了与细胞运动和抗生素化合物合成相关的基因。这些差异可能会导致耐热珊瑚和热敏珊瑚在热应力下的不同表现。鉴定与耐热性相关的微生物分类群提供了对有益细菌群的见解,这些有益细菌群可用于微生物组工程,以支持气候变化中的珊瑚礁健康。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Microbiome Stability Is Linked to Acropora Coral Thermotolerance in Northwestern Philippines

Microbiome Stability Is Linked to Acropora Coral Thermotolerance in Northwestern Philippines

Microbiome Stability Is Linked to Acropora Coral Thermotolerance in Northwestern Philippines

Corals associate with a diverse community of prokaryotic symbionts that provide nutrition, antioxidants and other protective compounds to their host. However, the influence of microbes on coral thermotolerance remains understudied. Here, we examined the prokaryotic microbial communities associated with colonies of Acropora cf. tenuis that exhibit high or low thermotolerance upon exposure to 33°C (heated) relative to 29°C (control). Using 16S rRNA sequencing, we show that the microbial community structure of all A. cf. tenuis colonies was similar to each other at control temperature. Thermotolerant colonies, however, had relatively greater abundance of Endozoicomonas, Arcobacter, Bifidobacterium and Lactobacillus. At elevated temperature, only thermosensitive colonies showed a distinct shift in their microbiome, with an increase in Flavobacteriales, Rhodobacteraceae and Vibrio, accompanying a marked bleaching response. Functional prediction indicated that prokaryotic communities associated with thermotolerant corals were enriched for genes related to metabolism, while microbiomes of thermosensitive colonies were enriched for cell motility and antibiotic compound synthesis. These differences may contribute to the variable performance of thermotolerant and thermosensitive corals under thermal stress. Identification of microbial taxa correlated with thermotolerance provides insights into beneficial bacterial groups that could be used for microbiome engineering to support reef health in a changing climate.

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来源期刊
Environmental microbiology
Environmental microbiology 环境科学-微生物学
CiteScore
9.90
自引率
3.90%
发文量
427
审稿时长
2.3 months
期刊介绍: Environmental Microbiology provides a high profile vehicle for publication of the most innovative, original and rigorous research in the field. The scope of the Journal encompasses the diversity of current research on microbial processes in the environment, microbial communities, interactions and evolution and includes, but is not limited to, the following: the structure, activities and communal behaviour of microbial communities microbial community genetics and evolutionary processes microbial symbioses, microbial interactions and interactions with plants, animals and abiotic factors microbes in the tree of life, microbial diversification and evolution population biology and clonal structure microbial metabolic and structural diversity microbial physiology, growth and survival microbes and surfaces, adhesion and biofouling responses to environmental signals and stress factors modelling and theory development pollution microbiology extremophiles and life in extreme and unusual little-explored habitats element cycles and biogeochemical processes, primary and secondary production microbes in a changing world, microbially-influenced global changes evolution and diversity of archaeal and bacterial viruses new technological developments in microbial ecology and evolution, in particular for the study of activities of microbial communities, non-culturable microorganisms and emerging pathogens
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