Integrated physiological, metabolomic, and transcriptomic analyses elucidate the regulation mechanisms of lignin synthesis under osmotic stress in alfalfa leaf (Medicago sativa L.)

Author:

Yang Jing,Yi Jiangnan,Ma Shihai,Wang Yafang,Song Jiaxing,Li Shuo,Feng Yueyan,Sun Haoyang,Gao Cai,Yang Rongchen,Li Zhongxing,Cao Yuman,Yang Peizhi

Abstract

AbstractAlfalfa, an essential forage crop known for its high yield, nutritional value, and strong adaptability, has been widely cultivated worldwide. The yield and quality of alfalfa are frequently jeopardized due to environmental degradation. Lignin, a constituent of the cell wall, enhances plant resistance to abiotic stress, which often causes osmotic stress in plant cells. However, how lignin responds to osmotic stress in leaves remains unclear. This study explored the effects of osmotic stress on lignin accumulation and the contents of intermediate metabolites involved in lignin synthesis in alfalfa leaves. Osmotic stress caused an increase in lignin accumulation and the alteration of core enzyme activities and gene expression in the phenylpropanoid pathway. We identified five hub genes (CSE, CCR, CADa, CADb, and POD) and thirty edge genes (including WRKYs, MYBs, and UBPs) by integrating transcriptome and metabolome analyses. In addition, ABA and ethylene signaling induced by osmotic stress regulated lignin biosynthesis in a contradictory way. These findings contribute to a new theoretical foundation for the breeding of high-quality and resistant alfalfa varieties.

Funder

Project of Science and Technology Innovation 2030

China Agriculture Research System of MOF and MARA

Key Research and Development Program of Tibet Autonomous Region

Shaanxi Postdoctoral Research Project

Publisher

Springer Science and Business Media LLC

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1. Biological potential of alkaline lignins: A brief review;Scientific Electronic Archives;2024-06-28

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