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Phytochrome B 磷酸化扩展:鉴定到了具有特异性的激酶。

Phytochrome B phosphorylation expanded: site-specific kinases are identified.

机构信息

Laboratory of Photo- and Chronobiology, Institute of Plant Biology, Biological Research Centre, Hungarian Research Network (HUN-REN), Szeged, H-6726, Hungary.

出版信息

New Phytol. 2024 Jan;241(1):65-72. doi: 10.1111/nph.19314. Epub 2023 Oct 9.

Abstract

The phytochrome B (phyB) photoreceptor is a key participant in red and far-red light sensing, playing a dominant role in many developmental and growth responses throughout the whole life of plants. Accordingly, phyB governs diverse signaling pathways, and although our knowledge about these pathways is constantly expanding, our view about their fine-tuning is still rudimentary. Phosphorylation of phyB is one of the relevant regulatory mechanisms, and - despite the expansion of the available methodology - it is still not easy to examine. Phosphorylated phytochromes have been detected using various techniques for decades, but the first phosphorylated phyB residues were only identified in 2013. Since then, concentrated attention has been turned toward the functional role of post-translational modifications in phyB signaling. Very recently in 2023, the first kinases that phosphorylate phyB were identified. These discoveries opened up new research avenues, especially by connecting diverse environmental impacts to light signaling and helping to explain some long-term unsolved problems such as the co-action of Ca and phyB signaling. This review summarizes our recent views about the roles of the identified phosphorylated phyB residues, what we know about the enzymes that modulate the phospho-state of phyB, and how these recent discoveries impact future investigations.

摘要

光敏色素 B(phyB)光受体是红光和远红光感测的关键参与者,在植物整个生命周期的许多发育和生长反应中发挥主导作用。因此,phyB 控制着多种信号通路,尽管我们对这些通路的了解在不断扩展,但我们对其精细调控的认识仍然很初级。phyB 的磷酸化是相关的调节机制之一,尽管可用方法不断扩展,但检测它仍然不容易。几十年来,人们一直使用各种技术来检测磷酸化的phyB,但直到 2013 年才首次鉴定出磷酸化的 phyB 残基。自那时以来,人们一直高度关注翻译后修饰在 phyB 信号转导中的功能作用。直到 2023 年,才首次鉴定出磷酸化 phyB 的激酶。这些发现开辟了新的研究途径,特别是将各种环境影响与光信号联系起来,并有助于解释一些长期未解决的问题,如 Ca 和 phyB 信号的共同作用。这篇综述总结了我们最近对鉴定出的磷酸化 phyB 残基的作用、调节 phyB 磷酸化状态的酶的了解,以及这些新发现对未来研究的影响。

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