反斯托克斯荧光激发揭示了c -藻蓝蛋白发色团的构象迁移率。

IF 2.3 2区 物理与天体物理 Q3 CHEMISTRY, PHYSICAL Structural Dynamics-Us Pub Date : 2022-09-02 eCollection Date: 2022-09-01 DOI:10.1063/4.0000164
Georgy V Tsoraev, Elena A Protasova, Elizaveta A Klimanova, Yury L Ryzhykau, Alexander I Kuklin, Yury S Semenov, Baosheng Ge, Wenjun Li, Song Qin, Thomas Friedrich, Nikolai N Sluchanko, Eugene G Maksimov
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引用次数: 8

摘要

天然色素蛋白复合物的结构组织为发色团提供了特定的环境。然而,蛋白质本质上是动态的和构象移动的。在这项工作中,我们证明了平节螺旋藻c -藻蓝蛋白(C-PC)的发色团的异质性。三聚体C-PC的部分种群受到蛋白质相互作用的自发干扰,导致发色团的构象流动性增加。当荧光在可见光范围内激发时,这些稀疏态的光谱特征被大块发色团态所掩盖,但当荧光被近红外量子激发时,前者可以被清楚地区分出来。这种选择性激发构象移动的C-PC发色团是由于其S1能级的结构,其特征是谱线明显变宽。我们证明了反stokes C-PC荧光是单光子吸收的结果。通过结合光谱和结构方法,我们表征了C-PC发色团在620、650、665和720 nm发射的四种不同状态,并将690-750 nm范围内的反斯托克斯荧光衰减动力学中的快速组分分配给构象迁移率增加的发色团。我们的数据表明,抗stokes荧光的光谱和时间特征可用于研究蛋白质动力学,并开发可视化局部环境参数(如温度)的方法。
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Anti-Stokes fluorescence excitation reveals conformational mobility of the C-phycocyanin chromophores.

The structural organization of natural pigment-protein complexes provides a specific environment for the chromophore groups. Yet, proteins are inherently dynamic and conformationally mobile. In this work, we demonstrate the heterogeneity of chromophores of C-phycocyanin (C-PC) from Arthrospira platensis. Part of the population of trimeric C-PC is subject to spontaneous disturbances of protein-protein interactions resulting in increased conformational mobility of the chromophores. Upon fluorescence excitation in the visible range, the spectral signatures of these poorly populated states are masked by bulk chromophore states, but the former could be clearly discriminated when the fluorescence is excited by near-infrared quanta. Such selective excitation of conformationally mobile C-PC chromophores is due to the structure of their S1 level, which is characterized by a significantly broadened spectral line. We demonstrate that the anti-Stokes C-PC fluorescence is the result of single-photon absorption. By combining spectral and structural methods, we characterize four distinct states of C-PC chromophores emitting at 620, 650, 665, and 720 nm and assigned the fast component in the anti-Stokes fluorescence decay kinetics in the range of 690-750 nm to the chromophores with increased conformational mobility. Our data suggest that the spectral and temporal characteristics of the anti-Stokes fluorescence can be used to study protein dynamics and develop methods to visualize local environment parameters such as temperature.

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来源期刊
Structural Dynamics-Us
Structural Dynamics-Us CHEMISTRY, PHYSICALPHYSICS, ATOMIC, MOLECU-PHYSICS, ATOMIC, MOLECULAR & CHEMICAL
CiteScore
5.50
自引率
3.60%
发文量
24
审稿时长
16 weeks
期刊介绍: Structural Dynamics focuses on the recent developments in experimental and theoretical methods and techniques that allow a visualization of the electronic and geometric structural changes in real time of chemical, biological, and condensed-matter systems. The community of scientists and engineers working on structural dynamics in such diverse systems often use similar instrumentation and methods. The journal welcomes articles dealing with fundamental problems of electronic and structural dynamics that are tackled by new methods, such as: Time-resolved X-ray and electron diffraction and scattering, Coherent diffractive imaging, Time-resolved X-ray spectroscopies (absorption, emission, resonant inelastic scattering, etc.), Time-resolved electron energy loss spectroscopy (EELS) and electron microscopy, Time-resolved photoelectron spectroscopies (UPS, XPS, ARPES, etc.), Multidimensional spectroscopies in the infrared, the visible and the ultraviolet, Nonlinear spectroscopies in the VUV, the soft and the hard X-ray domains, Theory and computational methods and algorithms for the analysis and description of structuraldynamics and their associated experimental signals. These new methods are enabled by new instrumentation, such as: X-ray free electron lasers, which provide flux, coherence, and time resolution, New sources of ultrashort electron pulses, New sources of ultrashort vacuum ultraviolet (VUV) to hard X-ray pulses, such as high-harmonic generation (HHG) sources or plasma-based sources, New sources of ultrashort infrared and terahertz (THz) radiation, New detectors for X-rays and electrons, New sample handling and delivery schemes, New computational capabilities.
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