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Salicylic acid remodeling of the rhizosphere microbiome induces watermelon root resistance against Fusarium oxysporum f. sp. niveum infection

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成果类型:
期刊论文
作者:
Zhu, Feiying;Fang, Yong;Wang, Zhiwei;Wang, Pei;Yang, Kankan;...
通讯作者:
Wang, R.
作者机构:
[Yang, Kankan; Zhu, Feiying; Wang, Pei; Fang, Yong; Wang, Zhiwei] Hunan Acad Agr Sci, Changsha, Peoples R China.
[Wang, Ruozhong; Zhu, Feiying; Xiao, Langtao] Hunan Agr Univ, Coll Biosci & Biotechnol, Hunan Prov Key Lab Phytohormones, Changsha, Peoples R China.
通讯机构:
[Wang, R.] H
Hunan Provincial Key Laboratory of Phytohormones, China
语种:
英文
关键词:
Fusarium wilt;microbiome;rhizosphere;salicylic acid;watermelon
期刊:
Frontiers in Microbiology
ISSN:
1664-302X
年:
2022
卷:
13
页码:
1015038
基金类别:
This study was financially supported by the National Natural Science Foundation of China (nos. 31671777 and 31871714) to RW, the Natural Science Foundation of Hunan Province, China (no. 2022JJ40213), and the Natural Science Foundation of Changsha City, China (no. kq2202335) to FZ.
机构署名:
本校为其他机构
院系归属:
生物科学技术学院
摘要:
Fusarium wilt disease poses a severe threat to watermelon cultivation by affecting the yield and quality of the fruit. We had previously found that the rhizosphere microbiome has a significant impact on the ability of watermelon plants to resist Fusarium wilt development and that salicylic acid (SA) is closely related to this phenomenon. Therefore, in this study, the role of SA as a mediator between plants and microbes in activating resistance against Fusarium oxysporum f. sp. niveum (FON) infection was explored through physiological, biochemical, and metagenomic sequencing experiments. We dem...

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