蛋白质水解
生物
降级(电信)
泛素
细胞生物学
级联
生物物理学
延伸率
纤维
机制(生物学)
蛋白酶体
蛋白质降解
生长素
泛素连接酶
生物化学
蛋白质稳定性
化学
作者
Liuqin Zhang,Yanling Zhou,Xingxian Fu,Changzheng Xu,Lina Liu,Xuedong Du,Yahong An,Mingxuan Xu,Lijie Mu,Qingqing Li,Jinyu Cui,Lei Hou,Yan Pei,Mi Zhang
出处
期刊:The Plant Cell
[Oxford University Press]
日期:2025-09-30
卷期号:37 (10)
被引量:1
标识
DOI:10.1093/plcell/koaf237
摘要
PIN-mediated auxin transport is crucial for light-regulated plant organogenesis; however, how light modulates PIN localization remains elusive. Cotton (Gossypium hirsutum), a key textile crop, requires ample sunlight for optimal growth and fiber development. Yet, the mechanism underlying light-regulated fiber development is obscure. Our research shows that light promotes fiber initiation and elongation through inhibiting ubiquitylation degradation of GhPIN3a and subsequently enhancing GhPIN3a plasma-membrane localization. In fiber cells, where GhPIN3a undergoes preferential ubiquitylation, GhCOP1 was identified to control ubiquitylation degradation of GhPIN3a in response to light. Dark-stabilized GhCOP1 targets GhUCH3, which interacts with GhPIN3a to balance its stability through deubiquitylation. This regulatory cascade converts light signals into developmental cues in cotton fibers. Intriguingly, while GhCOP1 promotes GhUCH3 degradation via the ubiquitin-proteasome system (UPS), GhUCH3 modulates GhPIN3a proteolysis through both the UPS and the vacuolar degradation pathway. Our findings reveal a light-regulated GhPIN3a stability mechanism through the GhCOP1-GhUCH3 module, consequently influencing cotton fiber development.
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