Mechanism of Darunavir (DRV)'s High Genetic Barrier to HIV-1 Resistance: A Key V32I Substitution in Protease Rarely Occurs, but Once It Occurs, It Predisposes HIV-1 To Develop DRV Resistance.

Manabu Aoki, Debananda Das, Hironori Hayashi, Hiromi Aoki-Ogata, Yuki Takamatsu, Arun K Ghosh, Hiroaki Mitsuya

Journal: mBio 2019;9(2):e02425-17

PMID: 29511083

Abstract

Darunavir (DRV) has bimodal activity against HIV-1 protease, enzymatic inhibition and protease dimerization inhibition, and has an extremely high genetic barrier against development of drug resistance. We previously generated a highly DRV-resistant HIV-1 variant (HIV). We also reported that four amino acid substitutions (V32I, L33F, I54M, and I84V) identified in the protease of HIV are largely responsible for its high-level resistance to DRV. Here, we attempted to elucidate the role of each of the four amino acid substitutions in the development of DRV resistance. We found that V32I is a key substitution, which rarely occurs, but once it occurs, it predisposes HIV-1 to develop high-level DRV resistance. When two infectious recombinant HIV-1 clones carrying I54M and I84V (rHIV and rHIV, respectively) were selected in the presence of DRV, V32I emerged, and the virus rapidly developed high-level DRV resistance. rHIV also developed high-level DRV resistance. However, wild-type HIV (rHIV) failed to acquire V32I and did not develop DRV resistance. Compared to rHIV, rHIV was highly susceptible to DRV and had significantly reduced fitness, explaining why V32I did not emerge upon selection of rHIV with DRV. When the only substitution is at residue 32, structural analysis revealed much stronger van der Waals interactions between DRV and I-32 than between DRV and V-32. These results suggest that V32I is a critical amino acid substitution in multiple pathways toward HIV-1's DRV resistance development and elucidate, at least in part, a mechanism of DRV's high genetic barrier to development of drug resistance. The results also show that attention should be paid to the initiation or continuation of DRV-containing regimens in people with HIV-1 containing the V32I substitution. Darunavir (DRV) is the only protease inhibitor (PI) recommended as a first-line therapeutic and represents the most widely used PI for treating HIV-1-infected individuals. DRV possesses a high genetic barrier to development of HIV-1's drug resistance. However, the mechanism(s) of the DRV's high genetic barrier remains unclear. Here, we show that the preexistence of certain single amino acid substitutions such as V32I, I54M, A71V, and I84V in HIV-1 protease facilitates the development of high-level DRV resistance. Interestingly, all -selected highly DRV-resistant HIV-1 variants acquired V32I but never emerged in wild-type HIV (HIV), and V32I itself rendered HIV-1 more sensitive to DRV and reduced viral fitness compared to HIV, strongly suggesting that the emergence of V32I plays a critical role in the development of HIV-1's resistance to DRV. Our results would be of benefit in the treatment of HIV-1-infected patients receiving DRV-containing regimens.

Address: Experimental Retrovirology Section, HIV and AIDS Malignancy Branch, National Cancer Institute, National Institutes of Health, Bethesda, Maryland, USA.; Department of Infectious Diseases, Kumamoto University Graduate School of Medical Sciences, Kumamoto, Japan.; Department of Hematology, Kumamoto University Graduate School of Medical Sciences, Kumamoto, Japan.; Division of Refractory Infectious Diseases, National Center for Global Health and Medicine Research Institute, Tokyo, Japan.; Experimental Retrovirology Section, HIV and AIDS Malignancy Branch, National Cancer Institute, National Institutes of Health, Bethesda, Maryland, USA.; Division of Refractory Infectious Diseases, National Center for Global Health and Medicine Research Institute, Tokyo, Japan.; Experimental Retrovirology Section, HIV and AIDS Malignancy Branch, National Cancer Institute, National Institutes of Health, Bethesda, Maryland, USA.; Department of Infectious Diseases, Kumamoto University Graduate School of Medical Sciences, Kumamoto, Japan.; Department of Hematology, Kumamoto University Graduate School of Medical Sciences, Kumamoto, Japan.; Department of Chemistry, Purdue University, West Lafayette, Indiana, USA.; Department of Medicinal Chemistry, Purdue University, West Lafayette, Indiana, USA.; Experimental Retrovirology Section, HIV and AIDS Malignancy Branch, National Cancer Institute, National Institutes of Health, Bethesda, Maryland, USA [email protected].; Department of Infectious Diseases, Kumamoto University Graduate School of Medical Sciences, Kumamoto, Japan.; Department of Hematology, Kumamoto University Graduate School of Medical Sciences, Kumamoto, Japan.; Division of Refractory Infectious Diseases, National Center for Global Health and Medicine Research Institute, Tokyo, Japan.
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