以微尺度热泳(MST)为工具研究氧敏感生物杂交的结合相互作用。

IF 1 Q3 BIOLOGY
Bhanu P Jagilinki, Mark A Willis, Florence Mus, Ritika Sharma, Lauren M Pellows, David W Mulder, Zhi-Yong Yang, Lance C Seefeldt, Paul W King, Gordana Dukovic, John W Peters
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引用次数: 0

摘要

微尺度热泳(MST)是一种用于测量分子相互作用强度的技术。MST 是一种基于热泳的技术,可监测荧光标记分子在红外激光器触发的温度梯度作用下运动时产生的荧光变化。与等温滴定量热法、核磁共振法、生物层干涉测量法和表面等离子体共振法等其他检测分子相互作用的方法相比,MST 具有以下优势:样品量小,无需固定,荧光检测灵敏度高。此外,由于该方法需要将样品装入易于密封的毛细管中,因此可用于分析对氧气敏感的样品。在本生物协议中,我们介绍了为使 MST 能够用于检测蛋白质-蛋白质相互作用、蛋白质-配体相互作用以及蛋白质-纳米晶相互作用而进行的故障排除和优化工作。所开发程序的主要内容包括:1)在厌氧室中使用 NanoTemper MST 进行分析时的装载和密封能力;2)确定与数据采集兼容的最佳还原剂,有效防止痕量氧;3)优化数据采集和分析程序。这些程序为确定这些技术要求极高的系统中分子相互作用的决定因素奠定了基础。主要特点 - 在厌氧室中装载和密封试管以进行后续分析的既定程序。- 用一个电子还原的 1,1'-双(3-磺酸丙基)-4,4'-联吡啶鎓[(SPr)2V-]轻松取代二亚硫酸钠(NaDT),对 MoFe 蛋白等氧敏感蛋白进行灵敏的生物物理检测。- 将 MST 确立为一种实验工具,用于量化对氧极为敏感的新型酶-量子点生物杂交复合物的结合亲和力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microscale Thermophoresis (MST) as a Tool to Study Binding Interactions of Oxygen-Sensitive Biohybrids.

Microscale thermophoresis (MST) is a technique used to measure the strength of molecular interactions. MST is a thermophoretic-based technique that monitors the change in fluorescence associated with the movement of fluorescent-labeled molecules in response to a temperature gradient triggered by an IR LASER. MST has advantages over other approaches for examining molecular interactions, such as isothermal titration calorimetry, nuclear magnetic resonance, biolayer interferometry, and surface plasmon resonance, requiring a small sample size that does not need to be immobilized and a high-sensitivity fluorescence detection. In addition, since the approach involves the loading of samples into capillaries that can be easily sealed, it can be adapted to analyze oxygen-sensitive samples. In this Bio-protocol, we describe the troubleshooting and optimization we have done to enable the use of MST to examine protein-protein interactions, protein-ligand interactions, and protein-nanocrystal interactions. The salient elements in the developed procedures include 1) loading and sealing capabilities in an anaerobic chamber for analysis using a NanoTemper MST located on the benchtop in air, 2) identification of the optimal reducing agents compatible with data acquisition with effective protection against trace oxygen, and 3) the optimization of data acquisition and analysis procedures. The procedures lay the groundwork to define the determinants of molecular interactions in these technically demanding systems. Key features • Established procedures for loading and sealing tubes in an anaerobic chamber for subsequent analysis. • Sodium dithionite (NaDT) could easily be substituted with one electron-reduced 1,1'-bis(3-sulfonatopropyl)-4,4'-bipyridinium [(SPr)2V•] to perform sensitive biophysical assays on oxygen-sensitive proteins like the MoFe protein. • Established MST as an experimental tool to quantify binding affinities in novel enzyme-quantum dot biohybrid complexes that are extremely oxygen-sensitive.

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