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实时定量细胞内 NMR:使用多变量曲线分辨监测人细胞中的配体结合和蛋白质氧化

Real-Time Quantitative In-Cell NMR: Ligand Binding and Protein Oxidation Monitored in Human Cells Using Multivariate Curve Resolution.

机构信息

Magnetic Resonance Center - CERM, University of Florence, Via Luigi Sacconi 6, 50019 Sesto Fiorentino, Florence Italy.

Center for Colloids and Surface Science - CSGI, Via della Lastruccia 3, 50019 Sesto Fiorentino, Florence Italy.

出版信息

Anal Chem. 2020 Jul 21;92(14):9997-10006. doi: 10.1021/acs.analchem.0c01677. Epub 2020 Jun 26.

Abstract

In-cell NMR can investigate protein conformational changes at atomic resolution, such as those changes induced by drug binding or chemical modifications, directly in living human cells, and therefore has great potential in the context of drug development as it can provide an early assessment of drug potency. NMR bioreactors can greatly improve the cell sample stability over time and, more importantly, allow for recording in-cell NMR data in real time to monitor the evolution of intracellular processes, thus providing unique insights into the kinetics of drug-target interactions. However, current implementations are limited by low cell viability at >24 h times, the reduced sensitivity compared to "static" experiments and the lack of protocols for automated and quantitative analysis of large amounts of data. Here, we report an improved bioreactor design which maintains human cells alive and metabolically active for up to 72 h, and a semiautomated workflow for quantitative analysis of real-time in-cell NMR data relying on Multivariate Curve Resolution. We apply this setup to monitor protein-ligand interactions and protein oxidation in real time. High-quality concentration profiles can be obtained from noisy 1D and 2D NMR data with high temporal resolution, allowing further analysis by fitting with kinetic models. This unique approach can therefore be applied to investigate complex kinetic behaviors of macromolecules in a cellular setting, and could be extended in principle to any real-time NMR application in live cells.

摘要

在细胞内 NMR 可以在原子分辨率下研究蛋白质构象变化,例如药物结合或化学修饰引起的变化,直接在活的人类细胞中进行,因此在药物开发方面具有很大的潜力,因为它可以提供对药物效力的早期评估。NMR 生物反应器可以大大提高细胞样品随时间的稳定性,更重要的是,可以实时记录在细胞内 NMR 数据,以监测细胞内过程的演变,从而提供对药物靶标相互作用动力学的独特见解。然而,目前的实现受到超过 24 小时时高细胞活力、与“静态”实验相比灵敏度降低以及缺乏用于自动和定量分析大量数据的协议的限制。在这里,我们报告了一种改进的生物反应器设计,该设计可将人类细胞维持长达 72 小时的存活和代谢活性,以及一种半自动化的工作流程,用于实时在细胞内 NMR 数据的定量分析,该工作流程依赖于多变量曲线分辨率。我们应用该设置实时监测蛋白质-配体相互作用和蛋白质氧化。可以从具有高时间分辨率的嘈杂 1D 和 2D NMR 数据中获得高质量的浓度分布,并且可以通过拟合动力学模型进行进一步分析。因此,这种独特的方法可用于研究细胞环境中大分子的复杂动力学行为,并且原则上可以扩展到任何实时 NMR 在活细胞中的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ac32/7735651/decc8fcf850b/ac0c01677_0001.jpg

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