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Ganser-Pornillos, B. K.

Publications and source records attributed to Ganser-Pornillos, B. K..

4 recordsLinked to original sources

A molecular switch modulates assembly and host factor binding of the HIV-1 capsid

Upon entry into a new host cell, the HIV-1 capsid performs multiple essential functions, which include shielding the genome from innate immune sensors1, promoting reverse transcription2 and transporting the core from the entry site at the plasma membrane to the integration site inside the nucleus3,4. The HIV-1 capsid is a fullerene cone made of hexamers and pentamers of the viral CA protein5,6. The two types of capsomers are quasi-equivalent, with the same structural elements mediating distinct inter-subunit contacts. In other studied quasi-equivalent viruses, the capacity of genetically identical subunits to form hexamers and pentamers is conferred by molecular switches. Such a switch has not been previously found in retroviral CA proteins. Here, we report cryoEM structures of the HIV-1 CA pentamer within assembled in vitro capsids at nominal resolutions of 2.4-3.4 [A]. Comparison with the hexamer identified an internal loop that adopts distinct conformations, 310 helix in the pentamer and random coil in the hexamer. Designed manipulations of the coil/helix configuration allowed us to control pentamer and hexamer formation in a predictable manner, thus proving its function as a molecular switch. Importantly, the switch controls not only fullerene cone assembly, but also the capsids capacity to bind post-entry host factors that are critical for viral replication. Furthermore, the switch forms part of the binding site of the new ultra-potent HIV-1 inhibitor, lenacapavir. These studies reveal that a critical assembly element also controls the post-assembly functions of the capsid, and provide new insights on capsid inhibition and uncoating.

microbiology↗

Structural Basis of HIV-1 Maturation Inhibitor Binding and Activity

HIV-1 maturation inhibitors (MIs) interfere with the final step in the viral lifecycle by disrupting the ordered proteolytic processing of the viral Gag polyprotein into its individual domains. Bevirimat (BVM) and its analogs interfere with the final catalytic cleavage of spacer peptide 1 (SP1) from the capsid protein (CA) C-terminal domain (CACTD), by binding to and stabilizing the CACTD-SP1 region. MIs are under development as alternative drugs to augment current antiretroviral therapies. Although promising, their mechanism of action and associated virus resistance pathways remain poorly understood at the molecular, biochemical, and structural levels. Here, we report atomic-resolution magic angle spinning (MAS) NMR structures of microcrystalline assemblies of CACTD-SP1 complexed with BVM and/or the assembly cofactor inositol hexakisphosphate (IP6). BVM and IP6 can bind simultaneously to SP1, with BVM positioned in the center of its 6-helix bundle in a unique conformation. Importantly, the NMR-observed structural effects of BVM on IP6 binding suggest that the inhibitor stabilizes the 6-helix bundle in multiple ways. In addition, BVM-resistant SP1-A1V and SP1-V7A variants exhibit distinct conformational and binding characteristics. Taken together, our results reveal a novel allosteric mechanism by which BVM disrupts maturation and provide a structural explanation for BVM resistance as well as important guidance for the design of new MIs.

biophysics↗

Strain and crack propagation of HIV-1 capsids during uncoating

Viral replication in HIV-1 relies on a fullerene-shaped capsid to transport genetic material deep into the nucleus of an infected cell. Capsid stability is linked to the presence of cofactors, including inositol hexakisphosphate (IP6) that bind to pores found in the capsid. Using extensive all-atom molecular dynamics simulations of HIV-1 cores imaged from cryo-electron tomography (cryo-ET) in intact virions, which contain IP6 and a ribonucleoprotein complex, we find markedly striated patterns of strain on capsid lattices. The presence of these cofactors also increases rigidity of the capsid. Conformational analysis of capsid (CA) proteins show CA accommodates strain by locally flexing away from structures resolved using x-ray crystallography and cryo-electron microscopy. Then, cryo-ET of HIV-1 cores undergoing endogenous reverse transcription demonstrate that lattice strain increases in the capsid prior to mechanical failure and that the capsid ruptures by crack propagation along regions of high strain. These results uncover HIV-1 capsid properties involved in their critical disassembly process. Significance statementThe mature capsids of HIV-1 are transiently stable complexes that self-assemble around the viral genome during maturation, and uncoat to release preintegration complexes that archive a double-stranded DNA copy of the virus in the host cell genome. However, a detailed view of how HIV cores rupture remains lacking. Here, we elucidate the physical properties involved in capsid rupture using a combination of large-scale all-atom molecular dynamics simulations and cryo-electron tomography. We find that intrinsic strain on the capsid forms highly correlated patterns along the capsid surface, along which cracks propagate. Capsid rigidity also increases with high strain. Our findings provide fundamental insight into viral capsid uncoating.

biophysics↗

Poly(ADP-ribose) potentiates ZAP antiviral activity

Zinc-finger antiviral protein (ZAP), also known as poly(ADP-ribose) polymerase 13 (PARP13), is an antiviral factor that selectively targets viral RNA for degradation. ZAP is active against both DNA and RNA viruses, including important human pathogens such as hepatitis B virus and type 1 human immunodeficiency virus (HIV-1). ZAP selectively binds CpG dinucleotides through its N-terminal RNA-binding domain, which consists of four zinc fingers. ZAP also contains a central region that consists of a fifth zinc finger and two WWE domains. Through structural and biochemical studies, we found that the fifth zinc finger and tandem WWEs of ZAP combine into a single integrated domain that binds to poly(ADP-ribose) (PAR), a cellular polynucleotide. PAR binding is mediated by the second WWE module of ZAP and likely involves specific recognition of iso(ADP-ribose), a repeating structural unit of PAR. Mutation of the putative iso(ADP-ribose) binding site in ZAP abrogates the interaction in vitro and diminishes ZAP activity against a CpG-rich HIV-1 reporter virus. In cells, PAR facilitates formation of non-membranous sub-cellular compartments such as DNA repair foci, spindle poles and cytosolic RNA stress granules. Our results suggest that ZAP-mediated viral mRNA degradation is facilitated by PAR, and provides a biophysical rationale for the reported association of ZAP with RNA stress granules.

microbiology↗