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Article|04 Aug 2026|OPEN
Multiomics reveals postherbivory tea leaves restructure endophytic microbiota to resist disease and boost saccharide metabolism to promote growth 
Yishuai Yang1,2,3,4,5 ,† , Zihan Shi1,2,3,4,5 ,† , Yulian Deng1,3,4,5 , Chengwen Shen1,3,4,5 , Linghong Zhou6 , Ye Deng7 , Lin Tan2,3,4,5 , , Zhonghua Liu1,3,4,5 , Qiulong Hu,1,3,4,5 ,
1College of Horticulture, Hunan Agricultural University, Changsha, Hunan 410128, China
2College of Plant Protection, Hunan Agricultural University, Changsha, Hunan 410128, China
3National Research Center of Engineering and Technology for Utilization of Botanical Functional Ingredients & Co-Innovation Center of Education Ministry for Utilization of Botanical Functional Ingredients, Hunan Agricultural University, Changsha 410128, China
4Key Laboratory of Tea Science of Ministry of Education, Yuelushan Laboratory, Hunan Agricultural University, Changsha 410128, China
5State Key Laboratory of Tea Plant Germplasm Innovation and Resource Utilization, Hunan Agricultural University, Changsha 410128, China
6Technology Center, Chenzhou Agricultural Science Research Institute, Chenzhou 423001, China
7CAS Key Laboratory for Environmental Biotechnology, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences (CAS), Beijing, China
*Corresponding author. E-mail: hqltanlin@163.com,huqiulongnet@126.com
Both authors contributed equally to the study.

Horticulture Research 13,
Article number: uhag338 (2026)
doi: https://doi.org/10.1093/hr/uhag338
Views: 168

Received: 02 Mar 2026
Accepted: 21 Jul 2026
Published online: 04 Aug 2026

Abstract

The induced capacity of plant growth-defense trade-offs under biotic stress is increasingly recognized. While many studies focus primarily on plants’ defense activation stage during insect attacks, limited attention has been given to poststress recovery. Herein, leaves from normal and postherbivory tea plants were collected during the compensation stage, and their microbiomes, metabolomes, and transcriptomes were used to dissect the mechanisms underlying growth-defense trade-offs. The results revealed that apart from altering the microbial community diversity, insect herbivory significantly enriched leaf-associated pathogens, particularly Alternaria spp. Network analysis and in-situ separation jointly revealed the role of Sphingomonas aquatilis in resisting pathogen invasion. Meanwhile, the restructured microbiota exhibited stronger network stability, indicating the enhancement of pathogen resistance among the endophytic community. Moreover, integrated transcriptomic and metabolomic analysis revealed that genes such as GSGT1, GolS4, and α-gal may regulate synthesis and degradation of growth-promoting and defense metabolites. The downregulated flavonoids were defense compounds against pathogens and the upregulated saccharides were plant growth-promoting compounds, which were verified in subsequent tests. Overall, tea plants compensate for reduced defense through restructuring of the endophytic microbiota, and prioritize growth over defense through metabolic resetting after insect herbivory. This study also revealed new biocontrol and growth-promoting resources for tea plants.