Nutrient and moisture limitations reveal keystone metabolites linking rhizosphere metabolomes and microbiomes.

IF 9.4 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Nameer R Baker, Kateryna Zhalnina, Mengting Yuan, Don Herman, Javier A Ceja-Navarro, Joelle Sasse, Jacob S Jordan, Benjamin P Bowen, Liyou Wu, Christina Fossum, Aaron Chew, Ying Fu, Malay Saha, Jizhong Zhou, Jennifer Pett-Ridge, Trent R Northen, Mary K Firestone
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Abstract

Plants release a wealth of metabolites into the rhizosphere that can shape the composition and activity of microbial communities in response to environmental stress. The connection between rhizodeposition and rhizosphere microbiome succession has been suggested, particularly under environmental stress conditions, yet definitive evidence is scarce. In this study, we investigated the relationship between rhizosphere chemistry, microbiome dynamics, and abiotic stress in the bioenergy crop switchgrass grown in a marginal soil under nutrient-limited, moisture-limited, and nitrogen (N)-replete, phosphorus (P)-replete, and NP-replete conditions. We combined 16S rRNA amplicon sequencing and LC-MS/MS-based metabolomics to link rhizosphere microbial communities and metabolites. We identified significant changes in rhizosphere metabolite profiles in response to abiotic stress and linked them to changes in microbial communities using network analysis. N-limitation amplified the abundance of aromatic acids, pentoses, and their derivatives in the rhizosphere, and their enhanced availability was linked to the abundance of bacterial lineages from Acidobacteria, Verrucomicrobia, Planctomycetes, and Alphaproteobacteria. Conversely, N-amended conditions increased the availability of N-rich rhizosphere compounds, which coincided with proliferation of Actinobacteria. Treatments with contrasting N availability differed greatly in the abundance of potential keystone metabolites; serotonin and ectoine were particularly abundant in N-replete soils, while chlorogenic, cinnamic, and glucuronic acids were enriched in N-limited soils. Serotonin, the keystone metabolite we identified with the largest number of links to microbial taxa, significantly affected root architecture and growth of rhizosphere microorganisms, highlighting its potential to shape microbial community and mediate rhizosphere plant-microbe interactions.

养分和水分限制揭示了连接根瘤代谢组和微生物组的关键代谢物。
植物会向根圈释放大量代谢物,这些代谢物会影响微生物群落的组成和活动,从而对环境压力做出反应。有人认为,根瘤沉积与根瘤微生物群落演替之间存在联系,尤其是在环境胁迫条件下,但确切的证据还很少。在本研究中,我们研究了在养分有限、水分有限以及氮(N)富集、磷(P)富集和氮磷(P)富集条件下,生长在边缘土壤中的生物能源作物开关草的根瘤化学、微生物群动态和非生物胁迫之间的关系。我们结合了 16S rRNA 扩增子测序和基于 LC-MS/MS 的代谢组学,将根瘤微生物群落和代谢物联系起来。我们确定了非生物胁迫下根瘤菌代谢物图谱的重大变化,并通过网络分析将其与微生物群落的变化联系起来。氮限制提高了根瘤菌层中芳香酸、戊糖及其衍生物的丰度,它们的可用性提高与酸细菌、蛭弧菌、扁孢霉菌和兼性蛋白细菌的丰度有关。相反,氮添加条件增加了富含氮的根瘤化合物的可用性,这与放线菌的增殖相吻合。在氮供应量不同的处理中,潜在的关键代谢物的丰度差别很大;血清素和外藤素在氮充足的土壤中特别丰富,而绿原酸、肉桂酸和葡萄糖醛酸则在氮有限的土壤中富集。羟色胺是我们发现的与微生物类群有最多联系的关键代谢物,它对根系结构和根圈微生物的生长有显著影响,突显了其塑造微生物群落和介导根圈植物-微生物相互作用的潜力。
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来源期刊
CiteScore
19.00
自引率
0.90%
发文量
3575
审稿时长
2.5 months
期刊介绍: The Proceedings of the National Academy of Sciences (PNAS), a peer-reviewed journal of the National Academy of Sciences (NAS), serves as an authoritative source for high-impact, original research across the biological, physical, and social sciences. With a global scope, the journal welcomes submissions from researchers worldwide, making it an inclusive platform for advancing scientific knowledge.
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