Multi-Site Red-Edge Excitation Shift Reveals the Residue-Specific Solvation Dynamics during the Native to Amyloid-like Transition of an Amyloidogenic Protein.

IF 2.9 2区 化学 Q3 CHEMISTRY, PHYSICAL The Journal of Physical Chemistry B Pub Date : 2025-01-09 Epub Date: 2024-12-16 DOI:10.1021/acs.jpcb.4c07067
Sonal R More, Santosh Kumar Jha
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Abstract

Changes in water-protein interactions are crucial for proteins to achieve functional and nonfunctional conformations during structural transitions by modulating local stability. Amyloid-like protein aggregates in deteriorating neurons are hallmarks of neurodegenerative disorders. These aggregates form through significant structural changes, transitioning from functional native conformations to supramolecular cross-β-sheet structures via misfolded and oligomeric intermediates in a multistep process. However, the site-specific dynamics of water molecules from the native to misfolded conformations and further to oligomeric and compact amyloid structures remain poorly understood. In this study, we used the fluorescence method known as red-edge excitation shift (REES) to investigate the solvation dynamics at specific sites in various equilibrium conformations en route to the misfolding and aggregation of the functional domain of the TDP-43 protein (TDP-43tRRM). We generated three single tryptophan-single cysteine mutants of TDP-43tRRM, with the cysteines at different positions and tryptophan at a fixed position. Each sole cysteine was fluorescently labeled and used as a site-specific fluorophore along with the single tryptophan, creating four monitorable sites for REES studies. By investigating the site-specific extent of REES, we developed a residue-specific solvation dynamics map of TDP-43tRRM during its misfolding and aggregation. Our observations revealed that solvation dynamics progressively became more rigid and heterogeneous to varying extents at different sites during the transition from native to amyloid-like conformations.

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多位点红边激发位移揭示了淀粉样蛋白从原生到类淀粉样转变过程中的残基特异性溶剂化动力学。
水蛋白相互作用的改变是蛋白质在结构转变过程中通过调节局部稳定性来实现功能和非功能构象的关键。淀粉样蛋白聚集在退化的神经元是神经退行性疾病的标志。这些聚集体是通过显著的结构变化形成的,在一个多步骤的过程中,通过错误折叠和低聚中间体,从功能性的天然构象过渡到超分子的交叉β-片结构。然而,水分子从天然构象到错误折叠构象,再到低聚和致密淀粉样结构的位点特异性动力学仍然知之甚少。在这项研究中,我们使用了称为红边激发位移(REES)的荧光方法来研究TDP-43蛋白(TDP-43tRRM)功能域的错误折叠和聚集过程中不同平衡构象中特定位点的溶剂化动力学。我们产生了三个TDP-43tRRM的单色氨酸-单半胱氨酸突变体,其中半胱氨酸在不同的位置,色氨酸在固定的位置。每个单独的半胱氨酸都被荧光标记,并与单个色氨酸一起用作位点特异性荧光团,为REES研究创建了四个可监测的位点。通过研究REES的位点特异性程度,我们开发了TDP-43tRRM在其错误折叠和聚集过程中的残基特异性溶剂化动力学图。我们的观察表明,在从天然到淀粉样构象的转变过程中,溶剂化动力学在不同的位点上逐渐变得更加刚性和异构。
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来源期刊
CiteScore
5.80
自引率
9.10%
发文量
965
审稿时长
1.6 months
期刊介绍: An essential criterion for acceptance of research articles in the journal is that they provide new physical insight. Please refer to the New Physical Insights virtual issue on what constitutes new physical insight. Manuscripts that are essentially reporting data or applications of data are, in general, not suitable for publication in JPC B.
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