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knotless 植光 Cph2 的超快光致转换动力学。

Ultrafast Photoconversion Dynamics of the Knotless Phytochrome Cph2.

机构信息

Institute of Physical and Theoretical Chemistry, Goethe University Frankfurt am Main, Max-von-Laue Straße 7, 60438 Frankfurt, Germany.

Institute of Biophysics, Goethe University Frankfurt am Main, Max-von-Laue Straße 1, 60438 Frankfurt, Germany.

出版信息

Int J Mol Sci. 2021 Oct 2;22(19):10690. doi: 10.3390/ijms221910690.

Abstract

The family of phytochrome photoreceptors contains proteins with different domain architectures and spectral properties. Knotless phytochromes are one of the three main subgroups classified by their distinct lack of the PAS domain in their photosensory core module, which is in contrast to the canonical PAS-GAF-PHY array. Despite intensive research on the ultrafast photodynamics of phytochromes, little is known about the primary kinetics in knotless phytochromes. Here, we present the ultrafast P ⇆ P photodynamics of Cph2, the best-known knotless phytochrome. Our results show that the excited state lifetime of P* (~200 ps) is similar to bacteriophytochromes, but much longer than in most canonical phytochromes. We assign the slow P* kinetics to relaxation processes of the chromophore-binding pocket that controls the bilin chromophore's isomerization step. The P photoconversion dynamics starts with a faster excited state relaxation than in canonical phytochromes, but, despite the differences in the respective domain architectures, proceeds via similar ground state intermediate steps up to Meta-F. Based on our observations, we propose that the kinetic features and overall dynamics of the ultrafast photoreaction are determined to a great extent by the geometrical context (i.e., available space and flexibility) within the binding pocket, while the general reaction steps following the photoexcitation are most likely conserved among the red/far-red phytochromes.

摘要

植物光敏色素家族包含具有不同结构域架构和光谱特性的蛋白质。无纽结光敏色素是根据其在光传感核心模块中明显缺乏 PAS 结构域而分类的三个主要亚组之一,与典型的 PAS-GAF-PHY 结构域相反。尽管对光敏色素的超快光动力学进行了深入研究,但对无纽结光敏色素的初始动力学知之甚少。在这里,我们展示了最著名的无纽结光敏色素 Cph2 的超快 P ⇆ P 光动力学。我们的结果表明,P的激发态寿命(~200 ps)与细菌光敏色素相似,但比大多数典型的光敏色素长得多。我们将缓慢的 P动力学归因于控制辅基异构化步骤的发色团结合口袋的弛豫过程。P 光转化动力学从比典型光敏色素更快的激发态弛豫开始,但尽管各自的结构域架构存在差异,但直到 Meta-F 为止,都通过类似的基态中间步骤进行。基于我们的观察,我们提出超快光反应的动力学特征和整体动力学在很大程度上取决于结合口袋内的几何环境(即可用空间和灵活性),而光激发后遵循的一般反应步骤很可能在红/远红光敏色素中得到保留。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9234/8508867/0bf61f36ef11/ijms-22-10690-g002.jpg

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