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Biology subjects

Highland, C. M.

Publications and source records attributed to Highland, C. M..

3 recordsLinked to original sources

Damaging the conical morphology of HIV-1 capsid by targeting the FG-binding pocket and disfavoring pentameric subunits needed for core closure

The HIV-1 capsid is an essential viral component, targeted by the long-acting antiretroviral Lenacapavir (LEN). LEN binds to the HIV-1 capsid protein (CA) at the phenylalanine-glycine (FG) binding pocket (FGBP), a site for multiple host-factor and antiviral interactions in CA hexamers (CAHEX). Previously, we generated a chemical library to investigate the FGBP; ZW-1261, a lead compound, exhibits potent antiviral activity and strong inter-subunit interactions within CAHEX. Here, we report the molecular mechanism by which ZW-1261 affects the morphology and integrity of capsid lattice. ZW-1261 alone rapidly induces tubular CA assemblies; simultaneous addition of ZW-1261 with the assembly cofactor inositol hexaphosphate (IP6) forms morphologically distinct tubes. In mature virions, IP6 is required for the assembly of both CAHEX and CA pentamers (CAPENT). Cryogenic-electron microscopy analysis of in vitro assembled capsid-like particles (CLPs) with IP6 suggests that ZW-1261 leads to the absence of CAPENT and damages the pre-formed conical lattice. To elucidate how this FGBP-targeting antiviral impacts CAPENT, we further solved structures of CAPENT-only icosahedral assemblies (T = 1), formed by reported mutations, that were treated with ZW-1261. We find that ZW-1261 binding in these constrained T = 1 assemblies converts CAPENT to a CAHEX-like conformation. Collectively, this suggests a mechanism by which addition of FGBP-binding inhibitor to native cores leads to the absence of CAPENT, impacting capsid closure and core integrity.

molecular biology↗

Lenacapavir prevents production of infectious HIV-1 by abrogating immature virus assembly.

The HIV-1 capsid effector Lenacapavir (LEN) acts by disrupting the early (reverse transcription and nuclear entry) and late (assembly and maturation) stages of the viral lifecycle. The early stage requires an intact Capsid consisting of a lattice of capsid protein (CA) hexamers and pentamers. Phenylalanine-Glycine (FG) containing nuclear pore proteins interact with Capsid hexamers at their FG pockets, facilitating nuclear entry. Disruption of Capsid lattice stability, or competitive binding to the FG pocket, by LEN blocks infection. Here, we provide insight into the effects of LEN on the late stage. Using a combination of cryo-EM structure determination, in vitro assembly, and in situ viral assays, we determined that treatment of producer cells with LEN abrogates the production of infectious virus via multiple mechanisms. Previous studies have shown that HIV-1 produced from LEN treated cells have improperly formed Capsids. However, how LEN interacts with the CA domain of the Gag polyprotein during assembly, prior to maturation, is unclear. Using a viral protease (PR) defective HIV-1 clone, which traps the Gag lattice in an immature state, we found that LEN dramatically remodulates the CA domain. The resulting CA layer was mature-like despite the absence of PR cleavage. We dubbed this unnatural state as "premature" lattice. Proper immature and mature lattice formation requires inositol hexakisphosphate (IP6), but our cryo-EM work revealed a lack of IP6 in the premature lattice. These findings provide insight into the mechanisms by which LEN prevents infectious HIV-1 production.

molecular biology↗

Structural insights into HIV-1 polyanion-dependent capsid lattice formation revealed by singleparticle cryo-EM

The HIV-1 capsid houses the viral genome and interacts extensively with host cell proteins throughout the viral life cycle. It is composed of capsid protein (CA), which assembles into a conical fullerene lattice composed of roughly 200 CA hexamers and 12 CA pentamers. Previous structural analyses of individual CA hexamers and pentamers have provided valuable insight into capsid structure and function, but high-resolution information about these assemblies in the broader context of the capsid lattice is lacking. In this study, we combined cryo-electron tomography and single particle analysis cryo-electron microscopy to determine high-resolution structures of continuous regions of the capsid lattice containing both hexamers and pentamers. We also developed a new method of in vitro lattice assembly that enabled us to directly study the lattice under a wider range of conditions than has previously been possible. Using this approach, we identified a critical role for inositol hexakisphosphate (IP6) in pentamer formation and determined the structure of the CA lattice bound to the capsid-targeting antiretroviral drug GS-6207 (Lenacapvir). Our work reveals new structural details of the mature HIV-1 CA lattice and establishes the combination of lattice templating and single particle analysis as a robust strategy for studying retroviral capsid structure and capsid interactions with host proteins and antiviral compounds. Significance statementThe mature HIV-1 capsid is composed of the capsid (CA) protein arranged in a conical lattice of hexamers and pentamers. Numerous structures of individual CA hexamers and pentamers alone have been published, but the molecular details of these assemblies in a more global, lattice-wide context are lacking. Here, we present high-resolution cryo-electron microscopy structures of continuous regions of the capsid lattice containing both hexamers and pentamers. We also describe key differences in the assembly and structures of these oligomers that have important implications for understanding retroviral maturation and for ongoing efforts to pharmacologically target the HIV-1 capsid.

biochemistry↗