Institute of Plant and Microbial Biology, Academia Sinica, Taipei, Taiwan.
Plant Cell Environ. 2024 Jan;47(1):24-37. doi: 10.1111/pce.14725. Epub 2023 Sep 20.
Phosphorylation of AT Hook-Like 10 (AHL10), one of the AT-hook family of plant-specific DNA binding proteins, is critical for growth suppression during moderate severity drought (low water potential, ψ ) stress. To understand how AHL10 phosphorylation determines drought response, we identified putative AHL10 interacting proteins and further characterized interaction with RRP6L1, a protein involved in epigenetic regulation. RRP6L1 and AHL10 mutants, as well as ahl10-1rrp6l1-2, had similar phenotypes of increased growth maintenance during low ψ . Chromatin precipitation demonstrated that RRP6L1 chromatin association increased during low ψ stress and was dependent upon AHL10 phosphorylation. Transcriptome analyses showed that AHL10 and RRP6L1 have concordant effects on expression of stress- and development-related genes. Together these results indicate that stress signalling can act via AHL10 phosphorylation to control the chromatin association of the key regulatory protein RRP6L1. AHL10 and RRP6L1 interaction in meristem cells is part of a mechanism to downregulate growth during low ψ stress. Interestingly, the loss of AHL13, which is homologous to AHL10 and phosphorylated at a similar C-terminal site, blocked the enhanced growth maintenance of ahl10-1. Thus, AHL10 and AHL13, despite their close homology, are not redundant but rather have distinct roles, likely related to the formation of AHL hetero-complexes.
AT 钩状结构域 10(AHL10)的磷酸化,作为植物特异性 DNA 结合蛋白 AT 钩家族的一员,在中度干旱胁迫(低水势,ψ)下的生长抑制中至关重要。为了了解 AHL10 磷酸化如何决定干旱响应,我们鉴定了假定的 AHL10 相互作用蛋白,并进一步表征了与 RRP6L1 的相互作用,RRP6L1 是一种参与表观遗传调控的蛋白质。AHL10 和 RRP6L1 突变体以及 ahl10-1rrp6l1-2 具有类似的表型,即在低 ψ 下维持生长的能力增强。染色质沉淀表明,RRP6L1 在低 ψ 胁迫期间与染色质的关联增加,并且依赖于 AHL10 的磷酸化。转录组分析表明,AHL10 和 RRP6L1 对与应激和发育相关基因的表达具有一致的影响。这些结果表明,应激信号可以通过 AHL10 磷酸化来控制关键调节蛋白 RRP6L1 的染色质结合。在分生组织细胞中,AHL10 和 RRP6L1 的相互作用是下调生长的机制的一部分,在低 ψ 胁迫下。有趣的是,与 AHL10 同源且在类似的 C 末端位点磷酸化的 AHL13 的缺失阻止了 ahl10-1 的生长维持能力增强。因此,尽管 AHL10 和 AHL13 具有密切的同源性,但它们并非冗余,而是具有不同的作用,可能与 AHL 异源复合物的形成有关。