School of Pharmacy, Nanjing Medical University, Nanjing, 211166, P. R. China.
State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing, 210023, P. R. China.
Small. 2022 Jul;18(29):e2202622. doi: 10.1002/smll.202202622. Epub 2022 Jun 20.
Quantifying the binding kinetics and affinities of protein-small molecule interactions is critical for biomarker validation, drug discovery, and deep understanding of various biological processes at the molecular-scale. Novel approaches are demanded as most common label-free techniques are mass-sensitive, which are not suitable for the detection of small molecule interactions. Here, an optical imaging platform is developed to measure the binding kinetics of both protein-small molecules and protein-ions based on monolayer MoS , an ultra-thin 2D material whose optical absorption is extremely sensitive to charge. A model is established to calibrate the optical response due to the charged analyte binding and it is applied to quantify the interactions between abl1 kinase and different small-molecule inhibitors. Such a presented method is capable of distinguishing different inhibitors binding to a wild or mutated kinase, which provides guidance for drug evaluation and drug mechanism exploration. The binding kinetics of calcium ions to calmodulin is also measured, further broadening the application field of the method. In addition, the imaging capability allows mapping the local binding kinetics of the molecular interactions with a high resolution, which reveals visible spatial variability and offers a promising tool for studying heterogeneous local interfacial interactions.
定量蛋白质-小分子相互作用的结合动力学和亲和力对于生物标志物验证、药物发现以及在分子尺度上深入理解各种生物学过程至关重要。由于大多数常见的无标记技术都是质量敏感的,不适合检测小分子相互作用,因此需要新的方法。在这里,我们开发了一种基于单层 MoS 的光学成像平台来测量蛋白质-小分子和蛋白质-离子的结合动力学,MoS 是一种超薄的二维材料,其光学吸收对电荷极其敏感。建立了一个模型来校准由于带电分析物结合引起的光学响应,并将其应用于量化 abl1 激酶与不同小分子抑制剂之间的相互作用。该方法能够区分野生或突变激酶与不同抑制剂的结合,为药物评价和药物机制探索提供了指导。还测量了钙离子与钙调蛋白的结合动力学,进一步拓宽了该方法的应用领域。此外,该成像能力允许以高分辨率绘制分子相互作用的局部结合动力学图,揭示出可见的空间变异性,并为研究异质局部界面相互作用提供了有前途的工具。