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在盐胁迫下缓解碳限制的生态进化策略因微生物类群而异。

Eco-evolutionary strategies for relieving carbon limitation under salt stress differ across microbial clades.

作者信息

Dong Yang, Chen Ruirui, Graham Emily B, Yu Bingqian, Bao Yuanyuan, Li Xin, You Xiangwei, Feng Youzhi

机构信息

College of Chemical Engineering, Nanjing Forestry University, Nanjing, 210037, China.

Marine Agriculture Research Center, Tobacco Research Institute, Chinese Academy of Agricultural Sciences, Qingdao, 266101, China.

出版信息

Nat Commun. 2024 Jul 17;15(1):6013. doi: 10.1038/s41467-024-50368-z.

Abstract

With the continuous expansion of saline soils under climate change, understanding the eco-evolutionary tradeoff between the microbial mitigation of carbon limitation and the maintenance of functional traits in saline soils represents a significant knowledge gap in predicting future soil health and ecological function. Through shotgun metagenomic sequencing of coastal soils along a salinity gradient, we show contrasting eco-evolutionary directions of soil bacteria and archaea that manifest in changes to genome size and the functional potential of the soil microbiome. In salt environments with high carbon requirements, bacteria exhibit reduced genome sizes associated with a depletion of metabolic genes, while archaea display larger genomes and enrichment of salt-resistance, metabolic, and carbon-acquisition genes. This suggests that bacteria conserve energy through genome streamlining when facing salt stress, while archaea invest in carbon-acquisition pathways to broaden their resource usage. These findings suggest divergent directions in eco-evolutionary adaptations to soil saline stress amongst microbial clades and serve as a foundation for understanding the response of soil microbiomes to escalating climate change.

摘要

随着气候变化下盐渍土的不断扩张,了解微生物缓解碳限制与盐渍土功能性状维持之间的生态进化权衡,是预测未来土壤健康和生态功能方面的一个重大知识空白。通过对沿盐度梯度的沿海土壤进行鸟枪法宏基因组测序,我们展示了土壤细菌和古菌形成对比的生态进化方向,这体现在基因组大小和土壤微生物组功能潜力的变化上。在对碳需求较高的盐环境中,细菌表现出基因组大小减小,与代谢基因的减少有关,而古菌则显示出更大的基因组以及抗盐、代谢和碳获取基因的富集。这表明细菌在面对盐胁迫时通过基因组精简来保存能量,而古菌则投资于碳获取途径以拓宽其资源利用范围。这些发现表明微生物类群在对土壤盐胁迫的生态进化适应中存在不同方向,并为理解土壤微生物组对不断升级的气候变化的响应奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b505/11255312/25d1f99917ee/41467_2024_50368_Fig1_HTML.jpg

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