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N 端延伸区的差异磷酸化调节光敏色素 B 的信号转导。

Differential phosphorylation of the N-terminal extension regulates phytochrome B signaling.

机构信息

Institute of Plant Biology, Biological Research Centre, Temesvári krt. 62, H-6726, Szeged, Hungary.

Research Institute of Translational Biomedicine, Department of Dermatology and Allergology, University of Szeged, H-6726, Szeged, Hungary.

出版信息

New Phytol. 2020 Feb;225(4):1635-1650. doi: 10.1111/nph.16243. Epub 2019 Nov 7.

DOI:10.1111/nph.16243
PMID:31596952
Abstract

Phytochrome B (phyB) is an excellent light quality and quantity sensor that can detect subtle changes in the light environment. The relative amounts of the biologically active photoreceptor (phyB Pfr) are determined by the light conditions and light independent thermal relaxation of Pfr into the inactive phyB Pr, termed thermal reversion. Little is known about the regulation of thermal reversion and how it affects plants' light sensitivity. In this study we identified several serine/threonine residues on the N-terminal extension (NTE) of Arabidopsis thaliana phyB that are differentially phosphorylated in response to light and temperature, and examined transgenic plants expressing nonphosphorylatable and phosphomimic phyB mutants. The NTE of phyB is essential for thermal stability of the Pfr form, and phosphorylation of S86 particularly enhances the thermal reversion rate of the phyB Pfr-Pr heterodimer in vivo. We demonstrate that S86 phosphorylation is especially critical for phyB signaling compared with phosphorylation of the more N-terminal residues. Interestingly, S86 phosphorylation is reduced in light, paralleled by a progressive Pfr stabilization under prolonged irradiation. By investigating other phytochromes (phyD and phyE) we provide evidence that acceleration of thermal reversion by phosphorylation represents a general mechanism for attenuating phytochrome signaling.

摘要

光敏色素 B(phyB)是一种出色的光质量和光数量传感器,能够检测到光环境中的细微变化。生物活性光受体(phyB Pfr)的相对含量取决于光条件和 Pfr 向非活性 phyB Pr 的光独立热弛豫,称为热反转。关于热反转的调节及其如何影响植物的光敏感性知之甚少。在这项研究中,我们鉴定了拟南芥 phyB 的 N 端延伸(NTE)上的几个丝氨酸/苏氨酸残基,这些残基在光和温度的响应下会发生不同的磷酸化,并研究了表达非磷酸化和磷酸模拟 phyB 突变体的转基因植物。phyB 的 NTE 对于 Pfr 形式的热稳定性至关重要,并且 S86 的磷酸化特别增强了体内 phyB Pfr-Pr 异源二聚体的热反转速率。我们证明与更 N 端残基的磷酸化相比,S86 磷酸化对于 phyB 信号传导更为关键。有趣的是,S86 磷酸化在光照下减少,伴随着长时间照射下 Pfr 的稳定逐渐增加。通过研究其他光敏色素(phyD 和 phyE),我们提供了证据表明,磷酸化加速热反转代表了一种减弱光敏色素信号传导的通用机制。

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Photobody formation spatially segregates two opposing phytochrome B signaling actions of PIF5 degradation and stabilization.光体的形成在空间上分离了PIF5降解和稳定这两种相反的光敏色素B信号传导作用。
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