Literature DB >> 33524070

A lysine ring in HIV capsid pores coordinates IP6 to drive mature capsid assembly.

Nadine Renner1, Donna L Mallery1, K M Rifat Faysal2, Wang Peng2, David A Jacques2, Till Böcking2, Leo C James1.   

Abstract

The HIV capsid self-assembles a protective conical shell that simultaneously prevents host sensing whilst permitting the import of nucleotides to drive DNA synthesis. This is accomplished through the construction of dynamic, highly charged pores at the centre of each capsid multimer. The clustering of charges required for dNTP import is strongly destabilising and it is proposed that HIV uses the metabolite IP6 to coordinate the pore during assembly. Here we have investigated the role of inositol phosphates in coordinating a ring of positively charged lysine residues (K25) that forms at the base of the capsid pore. We show that whilst IP5, which can functionally replace IP6, engages an arginine ring (R18) at the top of the pore, the lysine ring simultaneously binds a second IP5 molecule. Dose dependent removal of K25 from the pore severely inhibits HIV infection and concomitantly prevents DNA synthesis. Cryo-tomography reveals that K25A virions have a severe assembly defect that inhibits the formation of mature capsid cones. Monitoring both the kinetics and morphology of capsids assembled in vitro reveals that while mutation K25A can still form tubes, the ability of IP6 to drive assembly of capsid cones has been lost. Finally, in single molecule TIRF microscopy experiments, capsid lattices in permeabilised K25 mutant virions are rapidly lost and cannot be stabilised by IP6. These results suggest that the coordination of IP6 by a second charged ring in mature hexamers drives the assembly of conical capsids capable of reverse transcription and infection.

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Year:  2021        PMID: 33524070      PMCID: PMC7850482          DOI: 10.1371/journal.ppat.1009164

Source DB:  PubMed          Journal:  PLoS Pathog        ISSN: 1553-7366            Impact factor:   6.823


  43 in total

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6.  X-ray structures of the hexameric building block of the HIV capsid.

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7.  Single-molecule analysis of a molecular disassemblase reveals the mechanism of Hsc70-driven clathrin uncoating.

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8.  Solving structures of protein complexes by molecular replacement with Phaser.

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9.  Kinetics of HIV-1 capsid uncoating revealed by single-molecule analysis.

Authors:  Chantal L Márquez; Derrick Lau; James Walsh; Vaibhav Shah; Conall McGuinness; Andrew Wong; Anupriya Aggarwal; Michael W Parker; David A Jacques; Stuart Turville; Till Böcking
Journal:  Elife       Date:  2018-06-07       Impact factor: 8.140

10.  HIV-1 uses dynamic capsid pores to import nucleotides and fuel encapsidated DNA synthesis.

Authors:  David A Jacques; William A McEwan; Laura Hilditch; Amanda J Price; Greg J Towers; Leo C James
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  11 in total

Review 1.  Insights into HIV uncoating from single-particle imaging techniques.

Authors:  Margaret J Zhang; Jeffrey H Stear; David A Jacques; Till Böcking
Journal:  Biophys Rev       Date:  2022-01-11

2.  HIV-1 CA Inhibitors Are Antagonized by Inositol Phosphate Stabilization of the Viral Capsid in Cells.

Authors:  Gregory A Sowd; Jiong Shi; Christopher Aiken
Journal:  J Virol       Date:  2021-10-06       Impact factor: 5.103

3.  Structure of native HIV-1 cores and their interactions with IP6 and CypA.

Authors:  Tao Ni; Yanan Zhu; Zhengyi Yang; Chaoyi Xu; Yuriy Chaban; Tanya Nesterova; Jiying Ning; Till Böcking; Michael W Parker; Christina Monnie; Jinwoo Ahn; Juan R Perilla; Peijun Zhang
Journal:  Sci Adv       Date:  2021-11-19       Impact factor: 14.136

Review 4.  HIV-1 capsid variability: viral exploitation and evasion of capsid-binding molecules.

Authors:  Akatsuki Saito; Masahiro Yamashita
Journal:  Retrovirology       Date:  2021-10-26       Impact factor: 4.602

Review 5.  Rotten to the core: antivirals targeting the HIV-1 capsid core.

Authors:  William M McFadden; Alexa A Snyder; Karen A Kirby; Philip R Tedbury; Monika Raj; Zhengqiang Wang; Stefan G Sarafianos
Journal:  Retrovirology       Date:  2021-12-22       Impact factor: 3.768

Review 6.  Stephan Oroszlan and the Proteolytic Processing of Retroviral Proteins: Following A Pro.

Authors:  Ronald Swanstrom; Wesley I Sundquist
Journal:  Viruses       Date:  2021-11-04       Impact factor: 5.818

7.  HIV Capsid Protein Genetic Diversity Across HIV-1 Variants and Impact on New Capsid-Inhibitor Lenacapavir.

Authors:  Paloma Troyano-Hernáez; Roberto Reinosa; África Holguín
Journal:  Front Microbiol       Date:  2022-04-12       Impact factor: 5.640

Review 8.  A Structural Perspective of the Role of IP6 in Immature and Mature Retroviral Assembly.

Authors:  Martin Obr; Florian K M Schur; Robert A Dick
Journal:  Viruses       Date:  2021-09-17       Impact factor: 5.048

Review 9.  The HIV-1 capsid and reverse transcription.

Authors:  Christopher Aiken; Itay Rousso
Journal:  Retrovirology       Date:  2021-09-25       Impact factor: 4.602

Review 10.  Advances in HIV-1 Assembly.

Authors:  Grigoriy Lerner; Nicholas Weaver; Boris Anokhin; Paul Spearman
Journal:  Viruses       Date:  2022-02-26       Impact factor: 5.048

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