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2
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本文引用的文献

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Triggered Functional Dynamics of AsLOV2 by Time-Resolved Electron Paramagnetic Resonance at High Magnetic Fields.高磁场下时间分辨电子顺磁共振触发的AsLOV2功能动力学
Angew Chem Int Ed Engl. 2023 Mar 20;62(13):e202212832. doi: 10.1002/anie.202212832. Epub 2023 Feb 14.
2
Signal transduction in light-oxygen-voltage receptors lacking the active-site glutamine.光氧电压感受器中缺乏活性位点谷氨酰胺的信号转导。
Nat Commun. 2022 May 12;13(1):2618. doi: 10.1038/s41467-022-30252-4.
3
Dynamics of hydrogen bonds in the secondary structures of allosteric protein phototropin 1.变构蛋白向光素1二级结构中氢键的动力学
Comput Struct Biotechnol J. 2021 Dec 7;20:50-64. doi: 10.1016/j.csbj.2021.11.038. eCollection 2022.
4
Engineering a Blue Light Inducible SpyTag System (BLISS).工程化蓝光诱导SpyTag 系统(BLISS)。
J Am Chem Soc. 2021 Jun 16;143(23):8572-8577. doi: 10.1021/jacs.1c03198. Epub 2021 Jun 2.
5
Unraveling the Mechanism of a LOV Domain Optogenetic Sensor: A Glutamine Lever Induces Unfolding of the Jα Helix.解析 LOV 结构域光遗传学传感器的作用机制:谷氨酰胺杠杆诱导 Jα 螺旋展开。
ACS Chem Biol. 2020 Oct 16;15(10):2752-2765. doi: 10.1021/acschembio.0c00543. Epub 2020 Sep 18.
6
Optogenetic control of protein binding using light-switchable nanobodies.利用光控纳米抗体对蛋白质结合进行光遗传学控制。
Nat Commun. 2020 Aug 13;11(1):4044. doi: 10.1038/s41467-020-17836-8.
7
New Light on the Mechanism of Phototransduction in Phototropin.光转导在向光素中的作用机制的新认识。
Biochemistry. 2020 Sep 8;59(35):3206-3215. doi: 10.1021/acs.biochem.0c00324. Epub 2020 Aug 25.
8
Blue-Light Receptors for Optogenetics.光遗传学用蓝光受体
Chem Rev. 2018 Nov 14;118(21):10659-10709. doi: 10.1021/acs.chemrev.8b00163. Epub 2018 Jul 9.
9
Dual Photochemical Reaction Pathway in Flavin-Based Photoreceptor LOV Domain: A Combined Quantum-Mechanics/Molecular-Mechanics Investigation.基于黄素的光感受器 LOV 结构域中的双光化学反应途径:量子力学/分子力学的联合研究。
J Phys Chem B. 2017 Oct 19;121(41):9583-9596. doi: 10.1021/acs.jpcb.7b09207. Epub 2017 Oct 4.
10
Femtosecond to Millisecond Dynamics of Light Induced Allostery in the Avena sativa LOV Domain.燕麦 LOV 结构域中光诱导别构作用的飞秒至毫秒动态变化。
J Phys Chem B. 2017 Feb 9;121(5):1010-1019. doi: 10.1021/acs.jpcb.7b00088. Epub 2017 Jan 25.

FMN-A524 相互作用级联的破坏和 Glu513 诱导的疏水性屏障坍塌促进了 AsLOV2 中光诱导 Jα-螺旋展开。

Disruption of the FMN-A524 interaction cascade and Glu513-induced collapse of the hydrophobic barrier promotes light-induced Jα-helix unfolding in AsLOV2.

机构信息

Multidisciplinary Centre for Advance Research and Studies, Jamia Millia Islamia, New Delhi, India.

Multidisciplinary Centre for Advance Research and Studies, Jamia Millia Islamia, New Delhi, India.

出版信息

Biophys J. 2023 Dec 19;122(24):4670-4685. doi: 10.1016/j.bpj.2023.11.011. Epub 2023 Nov 17.

DOI:10.1016/j.bpj.2023.11.011
PMID:37978801
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10754690/
Abstract

The C-terminal Jα-helix of the Avena sativa's Light Oxygen and Voltage (AsLOV2) protein, unfolds on exposure to blue light. This characteristic seeks relevance in applications related to engineering novel biological photoswitches. Using molecular dynamics simulations and the Markov state modeling (MSM) approach we provide the mechanism that explains the stepwise unfolding of the Jα-helix. The unfolding was resolved into seven steps represented by the structurally distinguishable states distributed over the initiation and the post initiation phases. Whereas, the initiation phase occurs due to the collapse of the interaction cascade FMN-Q513-N492-L480-W491-Q479-V520-A524, the onset of the post initiation phase is marked by breaking of the hydrophobic interactions between the Jα-helix and the Iβ-strand. This study indicates that the displacement of N492 out of the FMN binding pocket, not necessarily requiring Q513, is essential for the initiation of the Jα-helix unfolding. Rather, the structural reorientation of Q513 activates the protein to cross the hydrophobic barrier and enter the post initiation phase. Similarly, the structural deviations in N482, rather than its integral role in unfolding, could enhance the unfolding rates. Furthermore, the MSM studies on the wild-type and the Q513 mutant, provide the spatiotemporal roadmap that lay out the possible pathways of structural transition between the dark and the light states of the protein. Overall, the study provides insights useful to enhance the performance of AsLOV2-based photoswitches.

摘要

苜蓿光解激活蛋白(AsLOV2)的 C 端 Jα 螺旋在暴露于蓝光时会展开。这一特性在与工程新型生物光开关相关的应用中具有重要意义。我们使用分子动力学模拟和马科夫状态模型(MSM)方法提供了一种机制,解释了 Jα 螺旋的逐步展开过程。该展开过程分为七个步骤,由结构上可区分的状态表示,分布在起始和起始后阶段。而起始阶段是由于 FMN-Q513-N492-L480-W491-Q479-V520-A524 相互作用级联的崩溃导致的,起始后阶段的开始则标志着 Jα 螺旋和 Iβ 链之间的疏水相互作用的断裂。本研究表明,N492 离开 FMN 结合口袋的位移,不一定需要 Q513,对于 Jα 螺旋展开的起始是必要的。相反,Q513 的结构重定向使蛋白激活,越过疏水障碍并进入起始后阶段。同样,N482 的结构偏差,而不是其在展开中的整体作用,可能会提高展开速率。此外,对野生型和 Q513 突变体的 MSM 研究提供了时空路线图,阐明了蛋白在黑暗和光照状态之间结构转变的可能途径。总的来说,该研究为提高基于 AsLOV2 的光开关的性能提供了有用的见解。