Laboratorio de Bioquímica y Resonancia Magnética Nuclear, Centro de Investigaciones Químicas, Instituto de Investigación en Ciencias Básicas y Aplicadas, Universidad Autónoma del Estado de Morelos, Cuernavaca, Morelos 62209, Mexico.
Molecules. 2020 Oct 18;25(20):4783. doi: 10.3390/molecules25204783.
Experimental methods are indispensable for the study of the function of biological macromolecules, not just as static structures, but as dynamic systems that change conformation, bind partners, perform reactions, and respond to different stimulus. However, providing a detailed structural interpretation of the results is often a very challenging task. While experimental and computational methods are often considered as two different and separate approaches, the power and utility of combining both is undeniable. The integration of the experimental data with computational techniques can assist and enrich the interpretation, providing new detailed molecular understanding of the systems. Here, we briefly describe the basic principles of how experimental data can be combined with computational methods to obtain insights into the molecular mechanism and expand the interpretation through the generation of detailed models.
实验方法对于研究生物大分子的功能是不可或缺的,不仅是作为静态结构,而且是作为动态系统,这些系统会改变构象、结合伴侣、进行反应,并对不同的刺激做出反应。然而,提供对结果的详细结构解释通常是一项非常具有挑战性的任务。虽然实验和计算方法通常被认为是两种不同且独立的方法,但结合两者的力量和效用是不可否认的。将实验数据与计算技术相结合可以辅助并丰富解释,提供对系统的新的详细分子理解。在这里,我们简要描述了如何将实验数据与计算方法相结合以深入了解分子机制并通过生成详细模型来扩展解释的基本原理。