Experimental temperatures shape host microbiome diversity and composition

微生物群 生物 生态学 寄主(生物学) 栖息地 基因组 生物群落 系统发育多样性 气候变化 β多样性 微生物种群生物学 物种丰富度 全球变暖 生态系统 系统发育学 细菌 生物信息学 生物化学 基因 遗传学
作者
Jingdi Li,Kieran A. Bates,Kim L. Hoang,Tobias E. Hector,Sarah Knowles,Kayla C. King
出处
期刊:Global Change Biology [Wiley]
卷期号:29 (1): 41-56 被引量:8
标识
DOI:10.1111/gcb.16429
摘要

Global climate change has led to more extreme thermal events. Plants and animals harbour diverse microbial communities, which may be vital for their physiological performance and help them survive stressful climatic conditions. The extent to which microbiome communities change in response to warming or cooling may be important for predicting host performance under global change. Using a meta-analysis of 1377 microbiomes from 43 terrestrial and aquatic species, we found a decrease in the amplicon sequence variant-level microbiome phylogenetic diversity and alteration of microbiome composition under both experimental warming and cooling. Microbiome beta dispersion was not affected by temperature changes. We showed that the host habitat and experimental factors affected microbiome diversity and composition more than host biological traits. In particular, aquatic organisms-especially in marine habitats-experienced a greater depletion in microbiome diversity under cold conditions, compared to terrestrial hosts. Exposure involving a sudden long and static temperature shift was associated with microbiome diversity loss, but this reduction was attenuated by prior-experimental lab acclimation or when a ramped regime (i.e., warming) was used. Microbial differential abundance and co-occurrence network analyses revealed several potential indicator bacterial classes for hosts in heated environments and on different biome levels. Overall, our findings improve our understanding on the impact of global temperature changes on animal and plant microbiome structures across a diverse range of habitats. The next step is to link these changes to measures of host fitness, as well as microbial community functions, to determine whether microbiomes can buffer some species against a more thermally variable and extreme world.
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