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多胺耗竭通过可能调节油体蛋白降解和膜上水通道蛋白丰度来增强油体动员。

Polyamine depletion enhances oil body mobilization through possible regulation of oleosin degradation and aquaporin abundance on its membrane.

机构信息

Department of Botany, University of Delhi, Delhi, India.

出版信息

Plant Signal Behav. 2023 Dec 31;18(1):2217027. doi: 10.1080/15592324.2023.2217027.

Abstract

Oil body (OB) mobilization, a crucial event associated with early seedling growth, is delayed in response to salt stress. Previous reports suggest that careful regulation of polyamine (PA) metabolism is essential for salt stress tolerance in plants. Many aspects of PA-mediated regulation of metabolism have been uncovered. However, their role in the process of OB mobilization remains unexplored. Interestingly, the present investigations reveal a possible influence of PA homeostasis on OB mobilization, while implicating complex regulation of oleosin degradation and aquaporin abundance in OB membranes in the process. Application of PA inhibitors resulted in the accumulation of smaller OBs when compared to control (-NaCl) and the salt-stressed counterparts, suggesting a faster rate of mobilization. PA deficit also resulted in reduced retention of some larger oleosins under controlled conditions but enhanced retention of all oleosins under salt stress. Additionally, with respect to aquaporins, a higher abundance of PIP2 under PA deficit both under control and saline conditions, is correlated with a faster mobilization of OBs. Contrarily, TIP1s, and TIP2s remained almost undetectable in response to PA depletion and were differentially regulated by salt stress. The present work, thus, provides novel insights into PA homeostasis-mediated regulation of OB mobilization, oleosin degradation, and aquaporin abundance on OB membranes.

摘要

油体(OB)动员是与早期幼苗生长相关的关键事件,它会对盐胁迫做出延迟响应。先前的报告表明,多胺(PA)代谢的精细调节对于植物的耐盐性至关重要。已经揭示了多胺介导的代谢调节的许多方面,但它们在 OB 动员过程中的作用仍未得到探索。有趣的是,目前的研究揭示了 PA 动态平衡对 OB 动员的可能影响,同时暗示了油体蛋白降解和质膜 aquaporin 丰度的复杂调控在这一过程中的作用。与对照(-NaCl)和盐胁迫条件相比,应用 PA 抑制剂会导致较小 OB 的积累,这表明动员速度更快。PA 缺乏也会导致在对照条件下一些较大油体蛋白的保留减少,但在盐胁迫下会增强所有油体蛋白的保留。此外,关于质膜 aquaporin,在 PA 缺乏条件下,PIP2 的丰度更高,这与 OB 动员速度更快有关。相反,TIP1s 和 TIP2s 对 PA 消耗的反应几乎检测不到,并且受到盐胁迫的差异调节。因此,本研究为 PA 动态平衡介导的 OB 动员、油体蛋白降解和质膜 aquaporin 丰度调节提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4388/10228391/29217783266e/KPSB_A_2217027_F0001_OC.jpg

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