a Bioinformatics Institute , Agency for Science, Technology, and Research (A*STAR) , Singapore 138671 , Singapore.
b School of Computer Science and Engineering , Nanyang Technological University , Singapore 639798 , Singapore.
J Biomol Struct Dyn. 2018 Dec;36(16):4366-4377. doi: 10.1080/07391102.2017.1417160. Epub 2017 Dec 27.
HIV polyprotein Gag is increasingly found to contribute to protease inhibitor resistance. Despite its role in viral maturation and in developing drug resistance, there remain gaps in the knowledge of the role of certain Gag subunits (e.g. p6), and that of non-cleavage mutations in drug resistance. As p6 is flexible, it poses a problem for structural experiments, and is hence often omitted in experimental Gag structural studies. Nonetheless, as p6 is an indispensable component for viral assembly and maturation, we have modeled the full length Gag structure based on several experimentally determined constraints and studied its structural dynamics. Our findings suggest that p6 can mechanistically modulate Gag conformations. In addition, the full length Gag model reveals that allosteric communication between the non-cleavage site mutations and the first Gag cleavage site could possibly result in protease drug resistance, particularly in the absence of mutations in Gag cleavage sites. Our study provides a mechanistic understanding to the structural dynamics of HIV-1 Gag, and also proposes p6 as a possible drug target in anti-HIV therapy.
HIV 多蛋白 Gag 越来越多地被发现有助于蛋白酶抑制剂耐药。尽管它在病毒成熟和耐药性发展中具有重要作用,但人们对某些 Gag 亚基(如 p6)的作用以及耐药性中非切割突变的作用仍存在知识空白。由于 p6 具有柔韧性,因此对结构实验构成了问题,因此在实验性 Gag 结构研究中经常省略 p6。尽管如此,由于 p6 是病毒组装和成熟所必需的组成部分,我们已经根据几个实验确定的约束条件对全长 Gag 结构进行了建模,并研究了其结构动力学。我们的发现表明,p6 可以从机械上调节 Gag 构象。此外,全长 Gag 模型表明,非切割位点突变与第一个 Gag 切割位点之间的变构通讯可能导致蛋白酶药物耐药性,特别是在 Gag 切割位点没有突变的情况下。我们的研究为 HIV-1 Gag 的结构动力学提供了机制理解,并且还提出 p6 作为抗 HIV 治疗中的潜在药物靶标。