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September 16, 20256 citations

Elucidating the mechanism by which HIV-1 nucleocapsid mutations confer resistance to integrase strand transfer inhibitors.

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YHYuta HikichiRBRyan C. BurdickSPSean C. Patro

Key Points

  • Nucleocapsid mutations lead to faster viral DNA integration, which may aid in evading integrase inhibitors.
  • Research indicates that nucleocapsid and integrase mutations work together to reduce susceptibility to INSTIs.
  • Primary peripheral blood mononuclear cells were utilized to observe the mutation patterns in HIV-1.
  • These findings emphasize the need for genotypic analysis beyond integrase to assess virologic failure.

Abstract

Persons with HIV (PWH) receiving integrase (IN) strand transfer inhibitors (INSTIs) have been reported to experience virologic failure (VF) in the absence of resistance mutations in IN. We previously reported that mutations in the viral nucleocapsid (NC) are selected in the presence of the INSTI dolutegravir (DTG). Here, we show that these NC mutations accelerate the kinetics of viral DNA integration, suggesting that they limit the window of time available for INSTIs to block viral DNA integration. We find that in primary peripheral blood mononuclear cells, HIV-1 acquires mutations in the viral envelope glycoprotein, NC, and occasionally IN during selection for INSTI resistance. Notably, the selected NC and IN mutations act in concert to reduce the susceptibility of the virus to INSTIs. These results provide insights into the mechanism by which HIV-1 escapes the inhibitory activity of INSTIs and underscore the importance of genotypic analysis outside IN in PWH experiencing VF on INSTI-containing drug regimens.

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Cite This Study

Hikichi et al. (2025) studied this question.

synapsesocial.com/papers/68c93fe601120bef803baf72https://doi.org/10.1126/sciadv.adz8980
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