磷饥饿条件下甘蓝侧根与内生菌相互作用的多组学分析

IF 3.784 3区 化学 Q1 Chemistry
Can Liu, Zhen Bai, Yu Luo, Yanfeng Zhang, Yongfeng Wang, Hexin Liu, Meng Luo, Xiaofang Huang, Anle Chen, Lige Ma, Chen Chen, Jinwei Yuan, Ying Xu, Yantao Zhu, Jianxin Mu, Ran An, Cuiling Yang, Hao Chen, Jiajie Chen, Zaifang Li, Xiaodan Li, Yachen Dong, Jianhua Zhao, Xingxing Shen, Lixi Jiang, Xianzhong Feng, Peng Yu, Daojie Wang, Xinping Chen, Nannan Li
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引用次数: 0

摘要

许多植物都与内生微生物有联系,这些微生物能提高根部对磷(P)的吸收。了解根与内生微生物之间的相互作用有助于提高磷的利用率。在这里,我们描述了对低磷条件敏感性不同的 50 种油菜(Brassica napus L.)核心基因型的侧根与内生菌之间的相互作用。根据细菌丰度与油菜籽植物生理指标之间的相关性分析结果,以及平板和土壤接种实验,我们确定了一种黄杆菌菌株(C2),它能显著缓解油菜籽的缺钾表型。通过加权基因共表达网络分析(WGCNA)和以黄杆菌丰度为数量性状的全基因组关联研究(GWAS),探索了其潜在机制。在 P 有限条件下,C2 可调节脂肪酸和脂质代谢途径。例如,C2 可改善亚油酸的代谢(亚油酸介导根部单宁的生物合成),并提高 P 吸收效率。此外,C2 还能抑制依赖于α-亚麻酸代谢的根部茉莉酸的生物合成,从而改善 C2 的定殖并激活钾吸收。这项研究表明,调整内生菌的组成可以调节油菜植物对钾的吸收,为开发农用微生物制剂提供了依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Multiomics dissection of Brassica napus L. lateral roots and endophytes interactions under phosphorus starvation

Multiomics dissection of Brassica napus L. lateral roots and endophytes interactions under phosphorus starvation

Many plants associate with endophytic microbes that improve root phosphorus (P) uptake. Understanding the interactions between roots and endophytes can enable efforts to improve P utilization. Here, we characterize the interactions between lateral roots of endophytes in a core collection of 50 rapeseed (Brassica napus L.) genotypes with differing sensitivities to low P conditions. With the correlation analysis result between bacterial abundance and plant physiological indices of rapeseeds, and inoculation experiments on plates and soil, we identify one Flavobacterium strain (C2) that significantly alleviates the P deficiency phenotype of rapeseeds. The underlying mechanisms are explored by performing the weighted gene coexpression network analysis (WGCNA), and conducting genome-wide association studies (GWAS) using Flavobacterium abundance as a quantitative trait. Under P-limited conditions, C2 regulates fatty acid and lipid metabolic pathways. For example, C2 improves metabolism of linoleic acid, which mediates root suberin biosynthesis, and enhances P uptake efficiency. In addition, C2 suppresses root jasmonic acid biosynthesis, which depends on α-linolenic acid metabolism, improving C2 colonization and activating P uptake. This study demonstrates that adjusting the endophyte composition can modulate P uptake in B. napus plants, providing a basis for developing agricultural microbial agents.

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来源期刊
ACS Combinatorial Science
ACS Combinatorial Science CHEMISTRY, APPLIED-CHEMISTRY, MEDICINAL
自引率
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0
审稿时长
1 months
期刊介绍: The Journal of Combinatorial Chemistry has been relaunched as ACS Combinatorial Science under the leadership of new Editor-in-Chief M.G. Finn of The Scripps Research Institute. The journal features an expanded scope and will build upon the legacy of the Journal of Combinatorial Chemistry, a highly cited leader in the field.
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