根瘤菌的多样性和相互作用决定了氮和水干扰下番茄寄主植物的多营养性状

IF 8.7 1区 农林科学 Q1 Agricultural and Biological Sciences
Wenxuan Shi, Junjie Guo, Xinxuan Yu, Zhixing Li, Boyang Weng, Danxia Wang, Shihao Su, Yufei Sun, Jinfang Tan, Ruohan Xie
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引用次数: 0

摘要

植物全生物体内的共同进化提高了宿主植物获取养分和抗逆的能力。然而,根瘤微生物群在维持宿主多养分利用(即多养分性状)方面的作用仍有待阐明。多养分循环指数(MNC)类似于广泛使用的多功能指数,它提供了一种直接且可解释的宿主植物多养分性状测量方法。我们以番茄为模式植物,描述了不同氮和水供应制度下寄主植物的多营养元素循环指数(基于多种地上营养元素含量),并探讨了根瘤菌群落组合与寄主植物多营养元素特征之间的关系。根圈细菌群落的多样性、定量丰度、预测功能以及共生网络的关键拓扑特征对供水的敏感性高于对供氮量的敏感性。由 61 个菌属组成的核心细菌群(如 Candidatus Koribacter 和 Streptomyces)在不同生境中持续存在,是预测寄主植物养分吸收的关键因素。MNC指数随着根瘤菌群落多样性和核心类群丰度的提高而增加,同时随着根瘤菌共生网络平均程度和图密度的提高而降低。在氮和水的相互作用下,寄主植物对多种营养元素的吸收主要受群落多样性和根瘤菌网络复杂性的调控。根瘤菌群的高度生物多样性和复杂的物种相互作用对寄主植物的表现起着至关重要的作用。这项研究支持了根圈微生物组工程学的发展,有助于有效操纵微生物组以提高植物效益,从而支持可持续农业实践和植物健康。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Diversity and interactions of rhizobacteria determine multinutrient traits in tomato host plants under nitrogen and water disturbances
Coevolution within the plant holobiont extends the capacity of host plants for nutrient acquisition and stress resistance. However, the role of the rhizospheric microbiota in maintaining multinutrient utilization (i.e., multinutrient traits) in the host remains to be elucidated. Multinutrient cycling index (MNC), analogous to the widely used multifunctionality index, provides a straightforward and interpretable measure of the multinutrient traits in host plants. Using tomato as a model plant, we characterized MNC (based on multiple aboveground nutrient contents) in host plants under different nitrogen and water supply regimes and explored the associations between rhizospheric bacterial community assemblages and host-plant multinutrient profiles. Rhizosphere bacterial community diversity, quantitative abundance, predicted function, and key topological features of the co-occurrence network were more sensitive to water supply than to nitrogen supply. A core bacteriome comprising 61 genera, such as Candidatus Koribacter and Streptomyces, persisted across different habitats and served as a key predictor of host-plant nutrient uptake. The MNC index increased with greater diversity and higher core taxon abundance in the rhizobacterial community, while decreasing with higher average degree and graph density of rhizobacterial co-occurrence network. Multinutrient absorption by host plants was primarily regulated by community diversity and rhizobacterial network complexity under the interaction of nitrogen and water. The high biodiversity and complex species interactions of the rhizospheric bacteriome play crucial roles in host-plant performance. This study supports the development of rhizosphere microbiome engineering, facilitating effective manipulation of the microbiome for enhanced plant benefits, which supports sustainable agricultural practices and plant health.
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来源期刊
Horticulture Research
Horticulture Research Biochemistry, Genetics and Molecular Biology-Biochemistry
CiteScore
11.20
自引率
6.90%
发文量
367
审稿时长
20 weeks
期刊介绍: Horticulture Research, an open access journal affiliated with Nanjing Agricultural University, has achieved the prestigious ranking of number one in the Horticulture category of the Journal Citation Reports ™ from Clarivate, 2022. As a leading publication in the field, the journal is dedicated to disseminating original research articles, comprehensive reviews, insightful perspectives, thought-provoking comments, and valuable correspondence articles and letters to the editor. Its scope encompasses all vital aspects of horticultural plants and disciplines, such as biotechnology, breeding, cellular and molecular biology, evolution, genetics, inter-species interactions, physiology, and the origination and domestication of crops.
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