通过定点诱变、动力学研究和分子动力学模拟探究新德里金属β-内酰胺酶-1中无活性位点突变Y229W的作用。
Probing the effect of the non-active-site mutation Y229W in New Delhi metallo-β-lactamase-1 by site-directed mutagenesis, kinetic studies, and molecular dynamics simulations.
作者信息
Chen Jiao, Chen Hui, Shi Yun, Hu Feng, Lao Xingzhen, Gao Xiangdong, Zheng Heng, Yao Wenbing
机构信息
School of Life Science and Technology, China Pharmaceutical University, Nanjing, Jiangsu, China.
出版信息
PLoS One. 2013 Dec 10;8(12):e82080. doi: 10.1371/journal.pone.0082080. eCollection 2013.
New Delhi metallo-β-lactamase-1 (NDM-1) has attracted extensive attention for its high catalytic activities of hydrolyzing almost all β-lactam antibiotics. NDM-1 shows relatively higher similarity to subclass B1 metallo-β-lactamases (MβLs), but its residue at position 229 is identical to that of B2/B3 MβLs, which is a Tyr instead of a B1-MβL-conserved Trp. To elucidate the possible role of Y229 in the bioactivity of NDM-1, we performed mutagenesis study and molecular dynamics (MD) simulations. Although residue Y229 is spatially distant from the active site and not contacting directly with the substrate or zinc ions, the Y229W mutant was found to have higher kcat and Km values than those of wild-type NDM-1, resulting in 1 ∼ 7 fold increases in k(cat) /K(m) values against tested antibiotics. In addition, our MD simulations illustrated the enhanced flexibility of Loop 2 upon Y229W mutation, which could increase the kinetics of both substrate entrance (kon) and product egress (koff). The enhanced flexibility of Loop 2 might allow the enzyme to adjust the geometry of its active site to accommodate substrates with different structures, broadening its substrate spectrum. This study indicated the possible role of the residue at position 229 in the evolution of NDM-1.
新德里金属β-内酰胺酶-1(NDM-1)因其对几乎所有β-内酰胺类抗生素具有高水解催化活性而备受关注。NDM-1与B1亚类金属β-内酰胺酶(MβLs)具有相对较高的相似性,但其229位残基与B2/B3 MβLs相同,为酪氨酸(Tyr)而非B1-MβL保守的色氨酸(Trp)。为阐明Y229在NDM-1生物活性中的可能作用,我们进行了诱变研究和分子动力学(MD)模拟。尽管残基Y229在空间上远离活性位点,且不直接与底物或锌离子接触,但发现Y229W突变体的kcat和Km值高于野生型NDM-1,导致其对测试抗生素的k(cat)/K(m)值增加了1至7倍。此外,我们的MD模拟表明,Y229W突变后Loop 2的灵活性增强,这可能会增加底物进入(kon)和产物流出(koff)的动力学。Loop 2灵活性的增强可能使酶能够调整其活性位点的几何形状以容纳不同结构的底物,从而拓宽其底物谱。本研究表明了229位残基在NDM-1进化中的可能作用。