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利用时间分辨光谱法解析淀粉样纳米纤维中的结合位点

Deconvoluting binding sites in amyloid nanofibrils using time-resolved spectroscopy.

作者信息

Jiang Bo, Umezaki Utana, Augustine Andrea, Jayasinghe-Arachchige Vindi M, Serafim Leonardo F, He Zhi Mei Sonia, Wyss Kevin M, Prabhakar Rajeev, Martí Angel A

机构信息

Department of Chemistry, Rice University Houston TX USA

Department of Chemistry, University of Miami Coral Gables FL USA

出版信息

Chem Sci. 2023 Jan 19;14(5):1072-1081. doi: 10.1039/d2sc05418c. eCollection 2023 Feb 1.

Abstract

Steady-state fluorescence spectroscopy has a central role not only for sensing applications, but also in biophysics and imaging. Light switching probes, such as ruthenium dipyridophenazine complexes, have been used to study complex systems such as DNA, RNA, and amyloid fibrils. Nonetheless, steady-state spectroscopy is limited in the kind of information it can provide. In this paper, we use time-resolved spectroscopy for studying binding interactions between amyloid-β fibrillar structures and photoluminescent ligands. Using time-resolved spectroscopy, we demonstrate that ruthenium complexes with a pyrazino phenanthroline derivative can bind to two distinct binding sites on the surface of fibrillar amyloid-β, in contrast with previous studies using steady-state photoluminescence spectroscopy, which only identified one binding site for similar compounds. The second elusive binding site is revealed when deconvoluting the signals from the time-resolved decay traces, allowing the determination of dissociation constants of 3 and 2.2 μM. Molecular dynamic simulations agree with two binding sites on the surface of amyloid-β fibrils. Time-resolved spectroscopy was also used to monitor the aggregation of amyloid-β in real-time. In addition, we show that common polypyridine complexes can bind to amyloid-β also at two different binding sites. Information on how molecules bind to amyloid proteins is important to understand their toxicity and to design potential drugs that bind and quench their deleterious effects. The additional information contained in time-resolved spectroscopy provides a powerful tool not only for studying excited state dynamics but also for sensing and revealing important information about the system including hidden binding sites.

摘要

稳态荧光光谱不仅在传感应用中发挥着核心作用,在生物物理学和成像领域也同样如此。光开关探针,如钌二吡啶菲咯嗪配合物,已被用于研究诸如DNA、RNA和淀粉样纤维等复杂系统。然而,稳态光谱在其所能提供的信息种类方面存在局限性。在本文中,我们使用时间分辨光谱来研究淀粉样β纤维结构与光致发光配体之间的结合相互作用。通过时间分辨光谱,我们证明了含有吡嗪菲咯啉衍生物的钌配合物可以与纤维状淀粉样β表面的两个不同结合位点结合,这与之前使用稳态光致发光光谱的研究不同,后者仅确定了类似化合物的一个结合位点。当对时间分辨衰减曲线的信号进行去卷积时,第二个难以捉摸的结合位点得以揭示,从而确定了解离常数分别为3和2.2 μM。分子动力学模拟与淀粉样β纤维表面的两个结合位点相符。时间分辨光谱还被用于实时监测淀粉样β的聚集。此外,我们表明常见的聚吡啶配合物也可以在两个不同的结合位点与淀粉样β结合。了解分子如何与淀粉样蛋白结合的信息对于理解它们的毒性以及设计能够结合并消除其有害影响的潜在药物非常重要。时间分辨光谱中包含的额外信息不仅为研究激发态动力学提供了一个强大的工具,也为传感和揭示有关该系统的重要信息(包括隐藏的结合位点)提供了有力手段。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ab6a/9891369/6c400b5be312/d2sc05418c-f1.jpg

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