Predominance of positive epistasis among drug resistance-associated mutations in HIV-1 protease

Преобладание положительного эпистаза среди мутаций протеазы ВИЧ-1, ассоциированных с лекарственной устойчивостью
Tian-hao Zhang, Lei Dai, John P. Barton, Yushen Du, Yuxiang Tan, Wenwen Pang, Arup K. Chakraborty, James O. Lloyd‐Smith, Ren Sun
2020-10-21

HIV-1 proteasedeep mutational scanningdrug resistance mutationspositive epistasisviral replication fitness
Drug-resistant mutations often have deleterious impacts on replication fitness, posing a fitness cost that can only be overcome by compensatory mutations. However, the role of fitness cost in the evolution of drug resistance has often been overlooked in clinical studies or in vitro selection experiments, as these observations only capture the outcome of drug selection. In this study, we systematically profile the fitness landscape of resistance-associated sites in HIV-1 protease using deep mutational scanning. We construct a mutant library covering combinations of mutations at 11 sites in HIV-1 protease, all of which are associated with resistance to protease inhibitors in clinic. Using deep sequencing, we quantify the fitness of thousands of HIV-1 protease mutants after multiple cycles of replication in human T cells. Although the majority of resistance-associated mutations have deleterious effects on viral replication, we find that epistasis among resistance-associated mutations is predominantly positive. Furthermore, our fitness data are consistent with genetic interactions inferred directly from HIV sequence data of patients. Fitness valleys formed by strong positive epistasis reduce the likelihood of reversal of drug resistance mutations. Overall, our results support the view that strong compensatory effects are involved in the emergence of clinically observed resistance mutations and provide insights to understanding fitness barriers in the evolution and reversion of drug resistance.
1
Deep mutational scanning profiled fitness effects of combinations of mutations at 11 HIV-1 protease sites associated with clinical protease-inhibitor resistance.
2
Epistasis among resistance-associated mutations is predominantly positive, revealing strong compensatory interactions between resistance mutations.
3
Fitness valleys created by strong positive epistasis reduce the likelihood that drug-resistance mutations will revert, helping explain their clinical persistence.
4
Measured fitness interactions agree with genetic interactions inferred directly from HIV sequence data from patients.
5
Most resistance-associated mutations individually reduce HIV-1 replication fitness, indicating substantial costs in the absence of compensatory changes.

HIV-1 protease mutants carrying combinations of drug resistance-associated mutations at 11 protease sites

The fitness landscape of resistance-associated mutations, particularly the predominantly positive epistasis and compensatory genetic interactions affecting viral replication and the evolution and reversion of drug resistance

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2020-10-21
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Tian-hao Zhang
Lei Dai
John P. Barton
Yushen Du
Yuxiang Tan
Wenwen Pang
Arup K. Chakraborty
James O. Lloyd‐Smith
Ren Sun
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