Identification of stress-alleviating strains from the core drought-responsive microbiome of Arabidopsis ecotypes.

IF 10.8 1区 环境科学与生态学 Q1 ECOLOGY
Zewen Li, Zhenghong Wang, Yujie Zhang, Jianbo Yang, Kaixiang Guan, Yi Song
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引用次数: 0

Abstract

Plant genetic and metabolic cues are involved in assembling their "core microbiome" under normal growth conditions. However, whether there is a core "stress responsive microbiome" among natural plant ecotypes remains elusive. Drought is the most significant abiotic stress worldwide. Characterizing conserved core root microbiome changes upon drought stress has the potential to increase plant resistance and resilience in agriculture. We screened the drought tolerance of 130 worldwide Arabidopsis ecotypes and chose the extremely drought tolerant and sensitive ecotypes for comparative microbiome studies. We detected diverse shared differentially abundant ASVs, network driver taxa among ecotypes, suggesting the existence of core drought-responsive microbiome changes. We previously identified 1479 microorganisms through high-throughput culturing, and successfully matched diverse core drought responsive ASVs. Our phenotypic assays validated that only those core drought responsive ASVs with higher fold changes in drought tolerant ecotypes were more likely to protect plants from stress. Transcriptome analysis confirmed that a keystone strain, Massilia sp. 22G3, can broadly reshape osmotic stress responses in roots, such as enhancing the expression of water up-taking, ROS scavenging, and immune genes. Our work reveals the existence of a core drought-responsive microbiome and demonstrates its potential role in enhancing plant stress tolerance. This approach helps characterize keystone "core drought responsive" microbes, and we further provided potential mechanisms underlying Massilia sp. 22G3 mediated stress protection. This work also provided a research paradigm for guiding the discovery of core stress-alleviating microbiomes in crops using natural ecotypes (cultivars).

拟南芥生态型核心干旱响应微生物群的抗旱菌株鉴定。
在正常生长条件下,植物的遗传和代谢线索参与了其“核心微生物组”的组装。然而,在天然植物生态型中是否存在一个核心的“应激反应微生物组”仍然是难以捉摸的。干旱是世界范围内最严重的非生物胁迫。研究干旱胁迫下保守的核心根微生物组变化,有可能提高农业植物的抗逆性和抗逆性。我们筛选了全球130个拟南芥生态型的耐旱性,并选择了极耐旱和敏感的生态型进行微生物组比较研究。在不同生态型中,我们发现了不同的共享丰度差异的asv网络驱动类群,表明核心干旱响应微生物组的存在。我们之前通过高通量培养鉴定了1479种微生物,并成功匹配了多种核心干旱响应asv。我们的表型分析证实,只有那些核心干旱响应型asv具有较高的耐旱生态型倍数变化,更有可能保护植物免受胁迫。转录组分析证实,一个关键菌株Massilia sp. 22G3可以广泛重塑根系的渗透胁迫反应,如增强水分吸收、ROS清除和免疫基因的表达。我们的工作揭示了核心干旱响应微生物组的存在,并证明了其在增强植物抗逆性方面的潜在作用。该方法有助于表征关键的“核心干旱响应”微生物,并进一步提供了Massilia sp. 22G3介导的胁迫保护的潜在机制。该研究也为指导利用自然生态型(栽培品种)在作物中发现核心抗逆性微生物群提供了研究范式。
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来源期刊
ISME Journal
ISME Journal 环境科学-生态学
CiteScore
22.10
自引率
2.70%
发文量
171
审稿时长
2.6 months
期刊介绍: The ISME Journal covers the diverse and integrated areas of microbial ecology. We encourage contributions that represent major advances for the study of microbial ecosystems, communities, and interactions of microorganisms in the environment. Articles in The ISME Journal describe pioneering discoveries of wide appeal that enhance our understanding of functional and mechanistic relationships among microorganisms, their communities, and their habitats.
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