HDT2-mediated lysine deacetylation promotes phytochrome A degradation during photomorphogenesis in Arabidopsis.

IF 24.1 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Molecular Plant Pub Date : 2025-09-01 Epub Date: 2025-08-06 DOI:10.1016/j.molp.2025.08.002
Feng Zheng, Wenli Ou, Ling Deng, Yahan Wang, Hangcong Chen, Yiting Chen, Tao Peng, Yongyi Yang, Jaime A Teixeira da Silva, Xuncheng Liu
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引用次数: 0

Abstract

The shift from skotomorphogenesis to photomorphogenesis, a developmental transition in seed plants, involves dramatic proteomic changes. Lysine acetylation (Lys-Ac) is an evolutionarily conserved and recognized post-translational modification that plays a crucial role in plant development. However, its role in seedling deetiolation remains unclear. In this study, we conducted a comparative lysine acetylomic analysis of etiolated Arabidopsis seedlings before and after red (R) light irradiation, uncovering that exposure to R light mainly led to protein lysine deacetylation during seedling deetiolation. Phytochrome A (phyA), a unique far-red (FR) light photoreceptor, was deacetylated at lysine 65 (K65) when etiolated seedlings were moved to light. This residue is a critical ubiquitination site that regulates phyA stability. Moreover, K65 deacetylation facilitates phyA ubiquitination and 26S proteasome-mediated degradation, and is required for the function of phyA in FR light signaling and seedling photomorphogenesis. Furthermore, we identified a plant-specific lysine deacetylase HDT2 that interacts with and deacetylates phyA in the nucleus to promote its ubiquitination and degradation during seedling deetiolation. Genetic analysis revealed that HDT2 is critical for phyA-mediated photomorphogenic growth. Taken together, these findings reveal that lysine deacetylation of phyA by HDT2 plays a crucial role in modulating phyA turnover in response to light, suggesting that Lys-Ac might be central to the reprogramming of plants for photomorphogenic growth.

hdt2介导的赖氨酸去乙酰化促进拟南芥光形态发生过程中光敏色素A的降解。
种子植物从形态发生到光形态发生的转变是种子植物生命周期中一个关键的发育转变,涉及剧烈的蛋白质组学变化。赖氨酸乙酰化(Lysine acetylation, Lys-Ac)是一种进化保守且被广泛认可的翻译后修饰,在植物发育中起着重要作用,但其在幼苗脱脱中的作用尚不清楚。在此,我们对黄化拟南芥幼苗进行了红光照射前后的赖氨酸乙酰化对比分析,发现红光照射主要导致幼苗去乙酰化过程中蛋白质赖氨酸的广泛去乙酰化。光敏色素A (Phytochrome A, phyA)是一种独特的远红光(FR)光感受器,在赖氨酸65 (K65)位点上被去乙酰化。该残基是调控phyA稳定性的关键泛素化位点。此外,K65去乙酰化促进了phyA泛素化和26S蛋白酶体介导的降解,对phyA在FR光信号传导和幼苗光形态发生中的功能至关重要。我们发现了一种植物特异性赖氨酸去乙酰化酶HDT2,它与细胞核中的phyA相互作用并使其去乙酰化,从而促进幼苗去乙酰化过程中phyA的泛素化和降解。遗传分析表明,HDT2在植物介导的光形态形成生长中起着至关重要的作用。这些发现表明,HDT2对phyA的赖氨酸去乙酰化在调节phyA响应于光的转换中起着重要作用,揭示了Lys-Ac对植物光形态形成生长的重新布线至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Molecular Plant
Molecular Plant 植物科学-生化与分子生物学
CiteScore
37.60
自引率
2.20%
发文量
1784
审稿时长
1 months
期刊介绍: Molecular Plant is dedicated to serving the plant science community by publishing novel and exciting findings with high significance in plant biology. The journal focuses broadly on cellular biology, physiology, biochemistry, molecular biology, genetics, development, plant-microbe interaction, genomics, bioinformatics, and molecular evolution. Molecular Plant publishes original research articles, reviews, Correspondence, and Spotlights on the most important developments in plant biology.
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