CmMYC2CmMYBML1 module orchestrates the resistance to herbivory by synchronously regulating the trichome development and constitutive terpene biosynthesis in Chrysanthemum

Author:

Guan Yaqin1,Jiang Li1,Wang You1,Liu Guanhua1,Wu Jiayi1,Luo Hong1,Chen Sumei1ORCID,Chen Fadi1ORCID,Niinemets Ülo2ORCID,Chen Feng3ORCID,Jiang Yifan1ORCID

Affiliation:

1. Key Laboratory of Landscaping, Ministry of Agriculture and Rural Affairs, Key Laboratory of Biology of Ornamental Plants in East China, National Forestry and Grassland Administration, College of Horticulture Nanjing Agricultural University Nanjing 210095 China

2. Institute of Agricultural and Environmental Sciences Estonian University of Life Sciences Kreutzwaldi 1 Tartu 51006 Estonia

3. Department of Plant Sciences University of Tennessee Knoxville TN 37996 USA

Abstract

Summary Trichomes are specialized epidermal outgrowths covering the aerial parts of most terrestrial plants. There is a large species variability in occurrence of different types of trichomes such that the molecular regulatory mechanism underlying the formation and the biological function of trichomes in most plant species remain unexplored. Here, we used Chrysanthemum morifolium as a model plant to explore the regulatory network in trichome formation and terpenoid synthesis and unravel the physical and chemical roles of trichomes in constitutive defense against herbivore feeding. By analyzing the trichome‐related genes from transcriptome database of the trichomes‐removed leaves and intact leaves, we identified CmMYC2 to positively regulate both development of T‐shaped and glandular trichomes as well as the content of terpenoids stored in glandular trichomes. Furthermore, we found that the role of CmMYC2 in trichome formation and terpene synthesis was mediated by interaction with CmMYBML1. Our results reveal a sophisticated molecular mechanism wherein the CmMYC2–CmMYBML1 feedback inhibition loop regulates the formation of trichomes (non‐glandular and glandular) and terpene biosynthesis, collectively contributing to the enhanced resistance to Spodoptera litura larvae feeding. Our findings provide new insights into the novel regulatory network by which the plant synchronously regulates trichome density for the physical and chemical defense against herbivory.

Funder

Nanjing Agricultural University

Priority Academic Program Development of Jiangsu higher education institutions

National Natural Science Foundation of China

Eesti Teadusagentuur

Publisher

Wiley

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