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四吡咯与工程化细菌光敏色素结合的实时观察

Real-time observation of tetrapyrrole binding to an engineered bacterial phytochrome.

作者信息

Hontani Yusaku, Baloban Mikhail, Escobar Francisco Velazquez, Jansen Swetta A, Shcherbakova Daria M, Weißenborn Jörn, Kloz Miroslav, Mroginski Maria Andrea, Verkhusha Vladislav V, Kennis John T M

机构信息

Department of Physics and Astronomy, Vrije Universiteit Amsterdam, Amsterdam 1081 HV, The Netherlands.

Present address: School of Applied and Engineering Physics, Cornell University, Ithaca, NY 14853, USA.

出版信息

Commun Chem. 2021;4. doi: 10.1038/s42004-020-00437-3. Epub 2021 Jan 4.

Abstract

Near-infrared fluorescent proteins (NIR FPs) engineered from bacterial phytochromes are widely used for structural and functional deep-tissue imaging in vivo. To fluoresce, NIR FPs covalently bind a chromophore, such as biliverdin IXa tetrapyrrole. The efficiency of biliverdin binding directly affects the fluorescence properties, rendering understanding of its molecular mechanism of major importance. miRFP proteins constitute a family of bright monomeric NIR FPs that comprise a Per-ARNT-Sim (PAS) and cGMP-specific phosphodiesterases - Adenylyl cyclases - FhlA (GAF) domain. Here, we structurally analyze biliverdin binding to miRFPs in real time using time-resolved stimulated Raman spectroscopy and quantum mechanics/molecular mechanics (QM/MM) calculations. Biliverdin undergoes isomerization, localization to its binding pocket, and pyrrolenine nitrogen protonation in <1 min, followed by hydrogen bond rearrangement in ~2 min. The covalent attachment to a cysteine in the GAF domain was detected in 4.3 min and 19 min in miRFP670 and its C20A mutant, respectively. In miRFP670, a second C-S covalent bond formation to a cysteine in the PAS domain occurred in 14 min, providing a rigid tetrapyrrole structure with high brightness. Our findings provide insights for the rational design of NIR FPs and a novel method to assess cofactor binding to light-sensitive proteins.

摘要

由细菌光敏色素改造而来的近红外荧光蛋白(NIR FP)被广泛应用于体内深部组织的结构和功能成像。为了发出荧光,NIR FP会与一种发色团共价结合,比如胆绿素IXa四吡咯。胆绿素的结合效率直接影响荧光特性,因此了解其分子机制至关重要。miRFP蛋白构成了一类明亮的单体NIR FP家族,包含一个Per-ARNT-Sim(PAS)结构域和cGMP特异性磷酸二酯酶-腺苷酸环化酶-FhlA(GAF)结构域。在此,我们利用时间分辨受激拉曼光谱和量子力学/分子力学(QM/MM)计算,实时对胆绿素与miRFP的结合进行结构分析。胆绿素在不到1分钟的时间内发生异构化、定位到其结合口袋,并使吡咯啉氮质子化,随后在约2分钟内发生氢键重排。在miRFP670及其C20A突变体中,分别在4.3分钟和19分钟时检测到与GAF结构域中的半胱氨酸形成共价连接。在miRFP670中,与PAS结构域中的半胱氨酸形成第二个C-S共价键发生在14分钟时,从而提供了一种具有高亮度的刚性四吡咯结构。我们的研究结果为NIR FP的合理设计提供了见解,并提供了一种评估辅因子与光敏感蛋白结合的新方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0446/9814930/45d32760fdd5/42004_2020_437_Fig1_HTML.jpg

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