6t63 Citations

Structures of immature EIAV Gag lattices reveal a conserved role for IP6 in lentivirus assembly.

Abstract

Retrovirus assembly is driven by the multidomain structural protein Gag. Interactions between the capsid domains (CA) of Gag result in Gag multimerization, leading to an immature virus particle that is formed by a protein lattice based on dimeric, trimeric, and hexameric protein contacts. Among retroviruses the inter- and intra-hexamer contacts differ, especially in the N-terminal sub-domain of CA (CANTD). For HIV-1 the cellular molecule inositol hexakisphosphate (IP6) interacts with and stabilizes the immature hexamer, and is required for production of infectious virus particles. We have used in vitro assembly, cryo-electron tomography and subtomogram averaging, atomistic molecular dynamics simulations and mutational analyses to study the HIV-related lentivirus equine infectious anemia virus (EIAV). In particular, we sought to understand the structural conservation of the immature lentivirus lattice and the role of IP6 in EIAV assembly. Similar to HIV-1, IP6 strongly promoted in vitro assembly of EIAV Gag proteins into virus-like particles (VLPs), which took three morphologically highly distinct forms: narrow tubes, wide tubes, and spheres. Structural characterization of these VLPs to sub-4Å resolution unexpectedly showed that all three morphologies are based on an immature lattice with preserved key structural components, highlighting the structural versatility of CA to form immature assemblies. A direct comparison between EIAV and HIV revealed that both lentiviruses maintain similar immature interfaces, which are established by both conserved and non-conserved residues. In both EIAV and HIV-1, IP6 regulates immature assembly via conserved lysine residues within the CACTD and SP. Lastly, we demonstrate that IP6 stimulates in vitro assembly of immature particles of several other retroviruses in the lentivirus genus, suggesting a conserved role for IP6 in lentiviral assembly.

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  1. Electron microscopy holdings of the Protein Data Bank: the impact of the resolution revolution, new validation tools, and implications for the future. Burley SK, Berman HM, Chiu W, Dai W, Flatt JW, Hudson BP, Kaelber JT, Khare SD, Kulczyk AW, Lawson CL, Pintilie GD, Sali A, Vallat B, Westbrook JD, Young JY, Zardecki C. Biophys Rev 14 1281-1301 (2022)

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Reviews citing this publication (12)

  1. High-resolution in situ structure determination by cryo-electron tomography and subtomogram averaging using emClarity. Ni T, Frosio T, Mendonça L, Sheng Y, Clare D, Himes BA, Zhang P. Nat Protoc 17 421-444 (2022)
  2. Rotten to the core: antivirals targeting the HIV-1 capsid core. McFadden WM, Snyder AA, Kirby KA, Tedbury PR, Raj M, Wang Z, Sarafianos SG. Retrovirology 18 41 (2021)
  3. Budding of a Retrovirus: Some Assemblies Required. Rose KM, Hirsch VM, Bouamr F. Viruses 12 E1188 (2020)
  4. HIV-1 capsid variability: viral exploitation and evasion of capsid-binding molecules. Saito A, Yamashita M. Retrovirology 18 32 (2021)
  5. Advances in HIV-1 Assembly. Lerner G, Weaver N, Anokhin B, Spearman P. Viruses 14 478 (2022)
  6. Structural Analysis of Retrovirus Assembly and Maturation. Krebs AS, Mendonça LM, Zhang P. Viruses 14 54 (2021)
  7. A Structural Perspective of the Role of IP6 in Immature and Mature Retroviral Assembly. Obr M, Schur FKM, Dick RA. Viruses 13 1853 (2021)
  8. Signalling Properties of Inositol Polyphosphates. Maffucci T, Falasca M. Molecules 25 E5281 (2020)
  9. Molecular dynamics of the viral life cycle: progress and prospects. Jones PE, Pérez-Segura C, Bryer AJ, Perilla JR, Hadden-Perilla JA. Curr Opin Virol 50 128-138 (2021)
  10. Inositol Phosphates and Retroviral Assembly: A Cellular Perspective. Ricaña CL, Dick RA. Viruses 13 2516 (2021)
  11. Cryo-electron tomography to study viral infection. Graham M, Zhang P. Biochem Soc Trans 51 1701-1711 (2023)
  12. Help or Hinder: Protein Host Factors That Impact HIV-1 Replication. Moezpoor MR, Stevenson M. Viruses 16 1281 (2024)

Articles citing this publication (16)