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ITS扩增子测序表明,茶树根际真菌的稀有分类群与环境密切相关,并对茶树病害产生反馈。

ITS amplicon sequencing revealed that rare taxa of tea rhizosphere fungi are closely related to the environment and provide feedback on tea tree diseases.

作者信息

Zhao Yuanqi, Ran Weiwei, Xu Wenming, Song Yuehua

机构信息

School of Karst Science, Guizhou Normal University, Guiyang, China.

State Engineering Technology Institute for Karst Desertification Control, Guiyang, China.

出版信息

Microbiol Spectr. 2025 Jan 7;13(1):e0188924. doi: 10.1128/spectrum.01889-24. Epub 2024 Nov 29.

DOI:10.1128/spectrum.01889-24
PMID:39612478
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11705919/
Abstract

The rhizospheres of plants and soil microorganisms are intricately interconnected. Tea trees are cultivated extensively on the karst plateau of Guizhou Province, China; however, the understanding of the interactions among fungal communities, community taxa, and diseases impacting tea tree in the soil rhizosphere is limited. Our aim is to offer insights for the advancement of modern agriculture in ecologically fragile karst tea gardens, as well as microbiomics concepts for green and sustainable environmental development. This study utilized the internal transcribed spacer high-throughput sequencing technology to explore the symbiotic relationship between rhizosphere fungi and plant disease feedback in multiple tea estates across the Guizhou Plateau. The ecological preferences and environmental thresholds of fungi were investigated via environmental variables. Furthermore, a correlation was established between different taxa and individual soil functions. Research has indicated that tea leaf blight disrupts symbiotic connections among fungal groups. For various taxa, we found that numerous taxa consistently maintained core positions within the community, whereas rare taxa were able to stabilize due to a high proportion of positive effects. Additionally, abundant taxa presented a wider range of environmental feedback, whereas the rare taxon diversity presented a stronger positive association with the soil Z score. This study contributes to our understanding of the importance of rare taxa in plant rhizosphere soil processes. Emphasis should be placed on the role of rare taxa in pest and disease control within green agriculture while also strengthening systematic development and biogeographical research related to rare taxa in this region.IMPORTANCEIn this study, based on internal transcribed spacer high-throughput sequencing, fungal communities in the rhizosphere soil of tea trees and their interactions with the environment in karst areas were reported, and the symbiotic relationships of different fungal taxa and their feedback to the environment were described in detail by using the knowledge of microbial ecology. On this basis, it was found that tea tree diseases affect the symbiotic relationships of fungal taxa. At the same time, we found that rare taxa have stronger cooperative relationships in response to environmental changes and explored their participation in soil processes based on fungal trait sets. This study will provide basic data for the development of modern agriculture in tea gardens and theoretical basis for the sustainable prevention and control of tea tree diseases.

摘要

植物的根际与土壤微生物相互之间有着复杂的联系。茶树在中国贵州省的喀斯特高原广泛种植;然而,对于土壤根际中影响茶树的真菌群落、群落分类群和疾病之间相互作用的理解还很有限。我们的目标是为生态脆弱的喀斯特茶园现代农业发展提供见解,以及为绿色和可持续环境发展提供微生物组学概念。本研究利用内转录间隔区高通量测序技术,探索贵州高原多个茶园根际真菌与植物病害反馈之间的共生关系。通过环境变量研究真菌的生态偏好和环境阈值。此外,还建立了不同分类群与个体土壤功能之间的相关性。研究表明,茶树叶枯病会破坏真菌群体之间的共生联系。对于不同的分类群,我们发现许多分类群在群落中始终保持核心地位,而稀有分类群由于高比例的正向效应而能够稳定下来。此外,丰富分类群呈现出更广泛的环境反馈,而稀有分类群多样性与土壤Z值呈现出更强的正相关。本研究有助于我们理解稀有分类群在植物根际土壤过程中的重要性。在绿色农业中,应重视稀有分类群在病虫害控制中的作用,同时加强该地区与稀有分类群相关的系统发育和生物地理学研究。

重要性

在本研究中,基于内转录间隔区高通量测序,报道了喀斯特地区茶树根际土壤中的真菌群落及其与环境的相互作用,并利用微生物生态学知识详细描述了不同真菌分类群的共生关系及其对环境的反馈。在此基础上,发现茶树病害影响真菌分类群的共生关系。同时,我们发现稀有分类群在应对环境变化时具有更强的合作关系,并基于真菌特征集探索了它们对土壤过程的参与。本研究将为茶园现代农业发展提供基础数据,为茶树病害的可持续防控提供理论依据。

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