Non-active site mutants of HIV-1 protease influence resistance and sensitisation towards protease inhibitors

被引:17
作者
Bastys, Tomas [1 ,2 ]
Gapsys, Vytautas [3 ]
Walter, Hauke [4 ]
Heger, Eva [5 ]
Doncheva, Nadezhda T. [1 ,6 ]
Kaiser, Rolf [5 ]
de Groot, Bert L. [3 ]
Kalinina, Olga, V [1 ,7 ,8 ]
机构
[1] Max Planck Inst Informat, Dept Computat Biol & Appl Algorithm, D-66123 Saarbrucken, Germany
[2] Univ Saarland, Saarbrucken Grad Sch Comp Sci, D-66123 Saarbrucken, Germany
[3] Max Planck Inst Biophys Chem, Dept Theoret & Computat Biophys, Computat Biomol Dynam Grp, D-37077 Gottingen, Germany
[4] Med Lab Stendal, D-39576 Stendal, Germany
[5] Univ Cologne, Inst Virol, D-50935 Cologne, Germany
[6] Univ Copenhagen, Fac Hlth & Med Sci, DK-2200 Copenhagen, Denmark
[7] Helmholtz Ctr Infect Res HZI, Helmholtz Inst Pharmaceut Res Saarland HIPS, D-66123 Saarbrucken, Germany
[8] Saarland Univ, Fac Med, D-66421 Homburg, Germany
基金
欧盟地平线“2020”;
关键词
Alchemical binding free energy change calculation; Distant site mutations; HIV-1 protease inhibitors; Hydrogen bond network perturbation; Resistance-associated mutations; VIRUS TYPE-1 PROTEASE; MOLECULAR-DYNAMICS SIMULATIONS; DRUG-RESISTANCE; REVERSE-TRANSCRIPTASE; FREE-ENERGY; CROSS-RESISTANCE; INCREASED SUSCEPTIBILITY; ATAZANAVIR RESISTANCE; NELFINAVIR-RESISTANT; CRYSTAL-STRUCTURES;
D O I
10.1186/s12977-020-00520-6
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Background HIV-1 can develop resistance to antiretroviral drugs, mainly through mutations within the target regions of the drugs. In HIV-1 protease, a majority of resistance-associated mutations that develop in response to therapy with protease inhibitors are found in the protease's active site that serves also as a binding pocket for the protease inhibitors, thus directly impacting the protease-inhibitor interactions. Some resistance-associated mutations, however, are found in more distant regions, and the exact mechanisms how these mutations affect protease-inhibitor interactions are unclear. Furthermore, some of these mutations, e.g. N88S and L76V, do not only induce resistance to the currently administered drugs, but contrarily induce sensitivity towards other drugs. In this study, mutations N88S and L76V, along with three other resistance-associated mutations, M46I, I50L, and I84V, are analysed by means of molecular dynamics simulations to investigate their role in complexes of the protease with different inhibitors and in different background sequence contexts. Results Using these simulations for alchemical calculations to estimate the effects of mutations M46I, I50L, I84V, N88S, and L76V on binding free energies shows they are in general in line with the mutations' effect on IC50 values. For the primary mutation L76V, however, the presence of a background mutation M46I in our analysis influences whether the unfavourable effect of L76V on inhibitor binding is sufficient to outweigh the accompanying reduction in catalytic activity of the protease. Finally, we show that L76V and N88S changes the hydrogen bond stability of these residues with residues D30/K45 and D30/T31/T74, respectively. Conclusions We demonstrate that estimating the effect of both binding pocket and distant mutations on inhibitor binding free energy using alchemical calculations can reproduce their effect on the experimentally measured IC50 values. We show that distant site mutations L76V and N88S affect the hydrogen bond network in the protease's active site, which offers an explanation for the indirect effect of these mutations on inhibitor binding. This work thus provides valuable insights on interplay between primary and background mutations and mechanisms how they affect inhibitor binding.
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页数:14
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