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Ablan, S. D.

Publications and source records attributed to Ablan, S. D..

4 recordsLinked to original sources

Structural Basis for HIV-1 Maturation Inhibition by PF-46396 Determined by MAS NMR

Among the different types of HIV-1 maturation inhibitors, those that stabilize the junction between the capsid protein C-terminal domain (CACTD) and the spacer peptide 1 (SP1) within the immature Gag lattice are promising candidates for antiretroviral therapies. Here, we report the atomic- resolution structure of CACTD-SP1 assemblies with the small-molecule maturation inhibitor PF- 46396 and the assembly cofactor inositol hexakisphosphate (IP6), determined by magic angle spinning (MAS) NMR spectroscopy. Our results reveal that although the two PF-46396 enantiomers exhibit distinct binding modes, they both possess similar anti-HIV potency. PF-46396 binding arrests IP6 dynamics in the six-helix bundle pore, and the two enantiomers induce unique IP6 orientations in the pore. Importantly, our data suggest the presence of monoanionic IP6 form IP6 in the complex. Our study establishes the structural basis for PF-46396 action and suggests a mechanistic model for drug resistance.

biophysics↗

IFN-inducible Human Phospholipid Scramblase 1 (PLSCR1) ProteinRestricts HIV-1 Infection by Inhibiting Membrane Fusion

Human phospholipid scramblase 1 (PLSCR1) is an interferon-stimulated gene (ISG) that inhibits viral infections through various mechanisms. Here, we identify PLSCR1 as a host restriction factor that inhibits HIV-1 entry by impairing membrane fusion mediated by the envelope glycoprotein (Env). Using multiple cell types including the human SupT1 T cell line and purified CD4+ T cells, we demonstrate that PLSCR1 inhibits the replication of HIV-1 with diverse tropisms and subtypes, as well as HIV-2 and SIV. Mechanistically, we find that PLSCR1 blocks viral entry and cell-to-cell transmission by restricting HIV-1 virion-cell and cell-cell fusion without affecting CD4 or CXCR4 expression or virus binding to the cell surface. Notably, PLSCR1-mediated restriction of viral entry is independent of type I interferon signaling. Collectively, these findings establish PLSCR1 as a broad-spectrum lentiviral restriction factor that acts at the membrane fusion stage, thereby expanding our understanding of ISG-mediated antiviral defense.

microbiology↗

Elucidating the Mechanism by Which HIV-1 Nucleocapsid Mutations Confer Resistance to Integrase Strand Transfer Inhibitors

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) and confer levels of INSTI resistance comparable to those conferred by clinically relevant IN mutations. Here we show that these NC mutations accelerate the kinetics of viral DNA integration. The shortened time frame between the completion of reverse transcription and integration correlates with reduced sensitivity to DTG, suggesting that NC mutations limit the window of opportunity 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.

microbiology↗

Rab11-FIP1C is dispensable for HIV-1 replication in primary CD4+ T cells but its role is cell-type-dependent in immortalized human T-cell lines

The HIV-1 envelope glycoprotein (Env) contains a long cytoplasmic tail harboring highly conserved motifs that direct Env trafficking and incorporation into virions and promote efficient virus spread. The cellular trafficking factor Rab11a family interacting protein 1C (FIP1C) has been implicated in the directed trafficking of Env to sites of viral assembly. In this study, we confirm that siRNA-mediated depletion of FIP1C in HeLa cells modestly reduces Env incorporation into virions. To determine whether FIP1C is required for Env incorporation and HIV-1 replication in physiologically relevant cells, CRISPR/Cas9 technology was used to knock out the expression of this protein in several human T-cell lines - Jurkat E6.1, SupT1 and H9 - and in primary human CD4+ T cells. FIP1C knock-out caused modest reductions in Env incorporation in SupT1 cells but did not inhibit virus replication in SupT1 or Jurkat E6.1 T-cell lines. In H9 cells, FIP1C knock-out caused a cell-density-dependent defect in virus replication. In primary CD4+ T cells, FIP1C knock-out had no effect on HIV-1 replication. Furthermore, HTLV-I transformed cell lines that are permissive for HIV-1 replication do not express FIP1C. Mutation of an aromatic motif in the Env cytoplasmic tail - Y795W - implicated in FIP1C-mediated Env incorporation impaired virus replication independently of FIP1C expression in SupT1, Jurkat E6.1, H9, and primary T cells. Together, these results indicate that while FIP1C may contribute to HIV-1 Env incorporation in some contexts, additional and potentially redundant host factors are likely required for Env incorporation and virus dissemination in T cells. ImportanceThe incorporation of the HIV-1 envelope (Env) glycoproteins, gp120 and gp41, into virus particles is critical for virus infectivity. Gp41 contains a long cytoplasmic tail that has been proposed to interact with host cell factors, including the trafficking factor Rab11a family interacting protein 1C (FIP1C). To investigate the role of FIP1C in relevant cell types - human T-cell lines and primary CD4+ T cells - we used CRISPR/Cas9 to knock out FIP1C expression and examined the effect on HIV-1 Env incorporation and virus replication. We observed that in two of the T-cell lines examined (Jurkat E6.1 and SupT1) and in primary CD4+ T cells, FIP1C knockout did not disrupt HIV-1 replication, whereas FIP1C knockout reduced Env expression and delayed replication in H9 cells. The results indicate that while FIP1C may contribute to Env incorporation in some cell lines, it is not an essential factor for efficient HIV-1 replication in primary CD4+ T cells.

microbiology↗