Lipidomic profiles reveal the membrane lipid phase transition pattern in chilling-shocked cotton seedlings
Li Yu, Xuan Long, Yubing Chen, Yue Shi, Zixuan Zhuge, Ke Nie, Ting Zhao, Zhihong Zheng, Nijiang Ai, Shiwei Geng, Luyao Wang, Xueying Guan
Journal:INDUSTRIAL CROPS AND PRODUCTS
IF:6.2
DOI:10.1016/j.indcrop.2026.122789
PMID:
Published:2026-02-09
research field:植物生理学分子生物学胁迫生物学作物科学脂质组学
Abstract
Cotton ( Gossypium spp ), originating from tropical and subtropical regions, is an important natural fiber crop and is currently cultivated across a wide range of latitudes. With the intensification of global climate change, cotton seedlings frequently suffer extreme low-temperature events in spring, often accompanied by delayed cold damage phenotypes. When exposed to chilling stress, membrane lipid phase transition is the fundamental causes of plant chilling damage. Through time-series relative electrolyte leakage (REL), subcellular ultrastructure, and lipidomic analysis, we find that at 6-hour time point under 4°C treatment, the membrane permeability of cotton leaves already undergoes significant changes, with key cell membrane components sphingolipids and phospholipids exhibiting opposite alteration patterns. Lipidomic analysis of chilling-tolerant seedlings generated by GIGANTEA ( GI ) silencing revealed dynamic changes in lipid profiles, particularly in medium- to long-chain free fatty acids (FFAs) and triacylglycerols (TGs). Notably, Arachidonic Acid (FFA, 20:4) exhibited a distinctive accumulation in chilling-shocked GI -silenced plants, suggesting its potential functional role in enhancing chilling tolerance. Understanding membrane lipid phase transitions and related lipid dynamics facilitates the selection of chilling-tolerant cotton varieties, which is beneficial for improving chilling tolerance and yield stability during the cotton seedling stage.
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