Negri Ana, Marco Esther, Damborsky Jiri, Gago Federico
Department of Pharmacology, University of Alcalá, E-28871 Alcalá de Henares, Madrid, Spain.
J Mol Graph Model. 2007 Oct;26(3):643-51. doi: 10.1016/j.jmgm.2007.03.010. Epub 2007 Mar 24.
The different steps of the dehalogenation reaction carried out by LinB on three different substrates have been characterized using a combination of quantum mechanical calculations and molecular dynamics simulations. This has allowed us to obtain information in atomic detail about each step of the reaction mechanism, that is, substrate entrance and achievement of the near-attack conformation, transition state stabilization within the active site, halide stabilization, water molecule activation and subsequent hydrolytic attack on the ester intermediate with formation of alcohol, and finally product release. Importantly, no bias or external forces were applied during the whole procedure so that both intermediates and products were completely free to sample configuration space in order to adapt to the plasticity of the active site and/or search for an exit. Differences in substrate reactivity were found to be correlated with the ease of adopting the near-attack conformation and two different exit pathways were found for product release that do not interfere with substrate entrance. Additional support for the different entry and exit pathways was independently obtained from an examination of the enzyme's normal modes.
通过量子力学计算和分子动力学模拟相结合的方法,对LinB在三种不同底物上进行的脱卤反应的不同步骤进行了表征。这使我们能够获得反应机制每个步骤的原子细节信息,即底物进入和接近攻击构象的实现、活性位点内过渡态的稳定、卤化物的稳定、水分子的活化以及随后对酯中间体的水解攻击并形成醇,最后是产物释放。重要的是,在整个过程中没有施加任何偏差或外力,因此中间体和产物都完全可以自由地在构型空间中取样,以适应活性位点的可塑性和/或寻找出口。发现底物反应性的差异与采用接近攻击构象的难易程度相关,并且发现了两种不同的产物释放途径,它们不会干扰底物进入。通过对酶的正常模式的研究,独立获得了对不同进出途径的额外支持。