温度驱动的膜流动性变化对成丝温度敏感的h2介导的光系统II修复有不同的影响。

IF 10 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Plant Cell Pub Date : 2024-12-23 DOI:10.1093/plcell/koae323
Jingzhi Zhang, Keun Pyo Lee, Yanling Liu, Chanhong Kim
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引用次数: 0

摘要

拟南芥(Arabidopsis thaliana)黄色杂化2 (var2)突变体缺乏功能性丝状温度敏感H2 (FtsH2),一种atp依赖性锌金属蛋白酶,是研究植物光系统II (PSII)修复过程的有力工具。FtsH2与FtsH1、FtsH5和FtsH8形成异质六聚体,在PSII蛋白抑制中起着不可或缺的作用。虽然冷热等非生物胁迫会增加叶绿体活性氧(ROS)和PSII损伤,但var2突变体在热胁迫下表现与野生型植物相似,而在冷胁迫下则会崩溃。我们对表达FtsH2变体的转基因var2系的研究表明,冷胁迫导致膜粘度增加,需要比FtsH2蛋白水解更大的底物提取功率。缺乏底物提取活性的FtsH2过表达不能挽救冷敏感表型,而缺乏蛋白酶活性的FtsH2过表达在var2中可以,存在其他FtsH异构体。这表明当膜变得更粘稠时,FtsH2的底物萃取活性在冷应力下是不可或缺的。随着温度的升高和膜流动性的增加,从其他异构体中提取底物的活性就足够了,这解释了var2突变体的热应激恢复能力。这些发现强调了膜流动性对应激条件下类囊体FtsH复合物功能的直接影响。未来的研究应该探索膜流动性如何影响蛋白质稳态,潜在地发现调节热敏性的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Temperature-driven changes in membrane fluidity differentially impact FILAMENTATION TEMPERATURE-SENSITIVE H2-mediated photosystem II repair.

The Arabidopsis (Arabidopsis thaliana) yellow variegated2 (var2) mutant, lacking functional FILAMENTATION TEMPERATURE-SENSITIVE H2 (FtsH2), an ATP-dependent zinc metalloprotease, is a powerful tool for studying the photosystem II (PSII) repair process in plants. FtsH2, forming hetero-hexamers with FtsH1, FtsH5, and FtsH8, plays an indispensable role in PSII proteostasis. Although abiotic stresses like cold and heat increase chloroplast reactive oxygen species (ROS) and PSII damage, var2 mutants behave like wild-type plants under heat stress but collapse under cold stress. Our study on transgenic var2 lines expressing FtsH2 variants, defective in either substrate extraction or proteolysis, reveals that cold stress causes an increase in membrane viscosity, demanding more substrate extraction power than proteolysis by FtsH2. Overexpression of FtsH2 lacking substrate extraction activity does not rescue the cold-sensitive phenotype, while overexpression of FtsH2 lacking protease activity does in var2, with other FtsH isomers present. This indicates that FtsH2's substrate extraction activity is indispensable under cold stress when membranes become more viscous. As temperatures rise and membrane fluidity increases, substrate extraction activity from other isomers suffices, explaining the var2 mutant's heat stress resilience. These findings underscore the direct effect of membrane fluidity on the functionality of the thylakoid FtsH complex under stress. Future research should explore how membrane fluidity impacts proteostasis, potentially uncovering strategies to modulate thermosensitivity.

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来源期刊
Plant Cell
Plant Cell 生物-生化与分子生物学
CiteScore
16.90
自引率
5.20%
发文量
337
审稿时长
2.4 months
期刊介绍: Title: Plant Cell Publisher: Published monthly by the American Society of Plant Biologists (ASPB) Produced by Sheridan Journal Services, Waterbury, VT History and Impact: Established in 1989 Within three years of publication, ranked first in impact among journals in plant sciences Maintains high standard of excellence Scope: Publishes novel research of special significance in plant biology Focus areas include cellular biology, molecular biology, biochemistry, genetics, development, and evolution Primary criteria: articles provide new insight of broad interest to plant biologists and are suitable for a wide audience Tenets: Publish the most exciting, cutting-edge research in plant cellular and molecular biology Provide rapid turnaround time for reviewing and publishing research papers Ensure highest quality reproduction of data Feature interactive format for commentaries, opinion pieces, and exchange of information in review articles, meeting reports, and insightful overviews.
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