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活体中测定光敏色素 B 的热回复速率。

Measurement of Phytochrome B Thermal Reversion Rates In Vivo.

机构信息

Institute of Biology II, Faculty of Biology, University of Freiburg, Freiburg, Germany.

Signaling Research Centers BIOSS and CIBSS, University of Freiburg, Freiburg, Germany.

出版信息

Methods Mol Biol. 2024;2795:85-93. doi: 10.1007/978-1-0716-3814-9_9.

DOI:10.1007/978-1-0716-3814-9_9
PMID:38594530
Abstract

Thermal reversion of phytochromes is the light-independent but strongly temperature-dependent relaxation of the light-activated Pfr form of phytochromes back into the inactive Pr ground state. The thermal reversion rates of different phytochromes vary considerably. For phytochrome B (phyB), thermal reversion represents a critical parameter affecting phyB activity as it reduces the active phyB Pfr pool, accelerated by increasing temperatures. Phytochromes are dimers existing in three different states: Pfr-Pfr homodimer, Pfr-Pr heterodimer, and Pr-Pr homodimer. Consequently, thermal reversion occurs in two steps, with Pfr-Pfr to Pfr-Pr reversion being much slower than reversion from Pfr-Pr to Pr-Pr. To measure thermal reversion in vivo, the relative proportion of Pfr in relation to the total amount of phytochrome (Ptot) must be determined in living samples. This is accomplished by in vivo spectroscopy utilizing dual wavelength ratiospectrophotometers, optimized for assaying phytochromes in highly scattering plant material. The method is depending on the photoreversibility of phytochromes displaying light-induced absorbance changes in response to actinic irradiation. In this chapter, we describe the experimental design and explain step-by-step the calculations necessary to determine the thermal reversion rates of phyB in vivo, taking into account phytochrome dimerization.

摘要

光形态建成中的光依赖型反应是指依赖于光的反应,而光形态建成中的热逆光是指光激活的 Pfr 形式的光形态建成物返回不活跃的 Pr 基态的非光依赖型但强烈依赖于温度的松弛。不同的光形态建成物的热逆速率变化很大。对于光形态建成物 B(phyB),热逆是影响 phyB 活性的关键参数,因为它会降低活性 phyB Pfr 池,而温度的升高会加速其降低。光形态建成物是存在于三种不同状态下的二聚体:Pfr-Pfr 同二聚体、Pfr-Pr 异二聚体和 Pr-Pr 同二聚体。因此,热逆发生在两个步骤中,Pfr-Pfr 到 Pfr-Pr 的逆转变慢于 Pfr-Pr 到 Pr-Pr 的逆转变。为了在体内测量热逆,必须在活体样品中确定 Pfr 与光形态建成物总量(Ptot)的相对比例。这可以通过利用双波长分光光度计的体内光谱学来实现,该分光光度计针对高度散射的植物材料中的光形态建成物进行了优化。该方法依赖于光形态建成物的光可逆性,其显示出光诱导的吸光度变化,以响应光照射。在本章中,我们描述了实验设计,并逐步解释了必要的计算,以确定体内 phyB 的热逆速率,同时考虑光形态建成物的二聚化。

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Plant Cell Environ. 2025 Apr 17. doi: 10.1111/pce.15562.

本文引用的文献

1
Thermal Reversion of Plant Phytochromes.植物光敏色素的热逆转。
Mol Plant. 2020 Mar 2;13(3):386-397. doi: 10.1016/j.molp.2019.12.004. Epub 2019 Dec 6.
2
In Vivo Spectroscopy.体内光谱学
Methods Mol Biol. 2019;2026:113-120. doi: 10.1007/978-1-4939-9612-4_8.
3
New insights of red light-induced development.红光诱导发育的新见解。
Plant Cell Environ. 2017 Nov;40(11):2457-2468. doi: 10.1111/pce.12880. Epub 2017 Feb 18.
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Phytochrome B integrates light and temperature signals in Arabidopsis.光敏色素 B 在拟南芥中整合光和温度信号。
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Phytochromes function as thermosensors in Arabidopsis.光敏色素在拟南芥中作为热传感器发挥作用。
Science. 2016 Nov 18;354(6314):886-889. doi: 10.1126/science.aaf6005. Epub 2016 Oct 27.
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Systematic analysis of how phytochrome B dimerization determines its specificity.系统分析光敏色素 B 二聚化如何决定其特异性。
Nat Plants. 2015 Jul 6;1:15090. doi: 10.1038/nplants.2015.90.
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