HIV-1 mutants that escape the cytotoxic T-lymphocytes are defective in viral DNA integration

Author:

Balasubramaniam Muthukumar12,Davids Benem-Orom123,Bryer Alex4,Xu Chaoyi4,Thapa Santosh12,Shi Jiong5,Aiken Christopher5,Pandhare Jui136,Perilla Juan R4ORCID,Dash Chandravanu12ORCID

Affiliation:

1. The Center for AIDS Health Disparities Research, Meharry Medical College , Nashville, TN – 37208, USA

2. Department of Biochemistry, Cancer Biology, Neuroscience and Pharmacology, Meharry Medical College , Nashville, TN – 37208, USA

3. School of Graduate Studies and Research, Meharry Medical College , Nashville, TN – 37208, USA

4. Department of Chemistry, University of Delaware , Newark, DE – 19716, USA

5. Department of Pathology, Microbiology and Immunology, Vanderbilt University Medical Center , Nashville, TN – 37232, USA

6. Department of Microbiology, Immunology, and Physiology, Meharry Medical College , Nashville, TN – 37208, USA

Abstract

Abstract HIV-1 replication is durably controlled without antiretroviral therapy (ART) in certain infected individuals called elite controllers (ECs). These individuals express specific human leukocyte antigens (HLA) that tag HIV-infected cells for elimination by presenting viral epitopes to CD8+ cytotoxic T-lymphocytes (CTL). In HIV-infected individuals expressing HLA-B27, CTLs primarily target the viral capsid protein (CA)-derived KK10 epitope. While selection of CA mutation R264K helps HIV-1 escape this potent CTL response, the accompanying fitness cost severely diminishes virus infectivity. Interestingly, selection of a compensatory CA mutation S173A restores HIV-1 replication. However, the molecular mechanism(s) underlying HIV-1 escape from this ART-free virus control by CTLs is not fully understood. Here, we report that the R264K mutation-associated infectivity defect arises primarily from impaired HIV-1 DNA integration, which is restored by the S173A mutation. Unexpectedly, the integration defect of the R264K variant was also restored upon depletion of the host cyclophilin A. These findings reveal a nuclear crosstalk between CA and HIV-1 integration as well as identify a previously unknown role of cyclophilin A in viral DNA integration. Finally, our study identifies a novel immune escape mechanism of an HIV-1 variant escaping a CA-directed CTL response.

Funder

National Institutes of Health

Publisher

Oxford University Press (OUP)

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