可转让性
基质(水族馆)
酶催化
酶
化学
计算机科学
过程(计算)
组合化学
反应性(心理学)
计算生物学
生物系统
生化工程
计算化学
机器学习
生物化学
生物
工程类
医学
操作系统
罗伊特
病理
替代医学
生态学
作者
Sudip Das,Umberto Raucci,Rui P. P. Neves,Maria J. Ramos,Michele Parrinello
标识
DOI:10.1073/pnas.2416621121
摘要
Machine learning (ML) is transforming the investigation of complex biological processes. In enzymatic catalysis, one significant challenge is identifying the reactive conformations (RC) of the enzyme:substrate complex where the substrate assumes a precise arrangement in the active site necessary to initiate a reaction. Traditional methods are hindered by the complexity of the multidimensional free energy landscape involved in the transition from nonreactive to reactive conformations. Here, we applied ML techniques to address this challenge, focusing on human pancreatic α-amylase, a crucial enzyme in type-II diabetes treatment. Using ML-based collective variables (CVs), we correlated the probability of being in a RC with the experimental catalytic activity of several malto-oligosaccharide substrates. Our findings demonstrate a remarkable transferability of these CVs across various compounds, significantly streamlining the modeling process and reducing both computational demand and manual intervention in setting up simulations for new substrates. This approach not only advances our understanding of enzymatic processes but also holds substantial potential for accelerating drug discovery by enabling rapid and accurate evaluation of drug efficacy across different generations of inhibitors.
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