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Akshay Deshpande, Jiong Shi, Noa Rotem-Dai, Christopher Aiken, Itay Rousso
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The HIV-1 capsid and reverse transcription
10.1186/s12977-021-00566-0 · 2021
Structure, function, and interactions of the HIV-1 capsid protein
2021
HIV-1 capsid stability and reverse transcription are finely balanced to minimize sensing of reverse transcription products via the cGAS-STING pathway
10.1128/mbio.00348-24 · 2024
Formation of a human immunodeficiency virus type 1 core of optimal stability is crucial for viral replication
10.1128/jvi.76.11.5667-5677.2002 · 2002
The secrets of the stability of the HIV-1 capsid
2018
Capsid lattice destabilization leads to premature loss of the viral genome and integrase enzyme during HIV-1 infection
10.1128/jvi.00984-20 · 2020
Pharmacologic hyperstabilisation of the HIV-1 capsid lattice induces capsid failure
2024
Efficient HIV-1 in vitro reverse transcription: optimal capsid stability is required
10.1038/s41392-020-00458-3 · 2021
Reconstitution and visualization of HIV-1 capsid-dependent replication and integration in vitro
10.1126/science.abc8420 · 2020
Confidence 92%
datacite
Confidence 0%
The HIV-1 capsid serves as a nanoscale reaction vessel for reverse transcription
10.1371/journal.ppat.1011810 · 2024
The host cell metabolite inositol hexakisphosphate promotes efficient endogenous HIV-1 reverse transcription by stabilizing the viral capsid
10.1128/mbio.02820-20 · 2020
HIV-1 uncoating requires long double-stranded reverse transcription products
10.1126/sciadv.adn7033 · 2024
HIV-1 cores retain their integrity until minutes before uncoating in the nucleus
2021
Nuclear capsid uncoating and reverse transcription of HIV-1
10.1146/annurev-virology-020922-110929 · 2022
Binding of host factors to stabilized HIV-1 capsid tubes
10.1016/j.virol.2018.07.019 · 2018
A snapshot of HIV-1 capsid-host interactions
10.1016/j.crstbi.2020.10.002 · 2020
Capsid-dependent host factors in HIV-1 infection
10.1016/j.tim.2017.04.004 · 2017
Interactions of HIV-1 capsid with host factors and their implications for developing novel therapeutics
10.3390/v13030417 · 2021
HIV-1 uncoating occurs via a series of rapid biomechanical changes in the core related to individual stages of reverse transcription
10.1128/jvi.00166-21 · 2021
Reverse transcription mechanically initiates HIV-1 capsid disassembly
10.1128/jvi.00289-17 · 2017
HIV-1 capsid uncoating is a multistep process that proceeds through defect formation followed by disassembly of the capsid lattice
10.1021/acsnano.3c07678 · 2024
Strain and rupture of HIV-1 capsids during uncoating
2022
Revisiting HIV-1 uncoating
10.1186/1742-4690-7-96 · 2010
Early cytoplasmic uncoating is associated with infectivity of HIV-1
10.1073/pnas.1706245114 · 2017
Teaching old dogmas new tricks: recent insights into the nuclear import of HIV-1
10.1016/j.coviro.2022.101203 · 2022
HIV-1 replication complexes accumulate in nuclear speckles and integrate into speckle-associated genomic domains
10.1038/s41467-020-17256-8 · 2020
HIV-1 requires capsid remodelling at the nuclear pore for nuclear entry and integration
10.1371/journal.ppat.1009484 · 2021
Nuclear import of the HIV-1 core precedes reverse transcription and uncoating
10.1016/j.celrep.2020.108201 · 2020
Nuclear import of HIV-1
10.3390/v13112242 · 2021
Cone-shaped HIV-1 capsids are transported through intact nuclear pores
10.1016/j.cell.2021.01.025 · 2021
Capsid-labelled HIV to investigate the role of capsid during nuclear import and integration
10.1128/jvi.01024-19 · 2020
HIV-1 nuclear import in macrophages is regulated by CPSF6-capsid interactions at the nuclear pore complex
10.7554/elife.41800 · 2019
Tough way In, tough way out: the complex interplay of host and viral factors in nucleocytoplasmic trafficking during HIV-1 infection
10.3390/v14112503 · 2022
Correlative in situ cryo-ET reveals cellular and viral remodeling associated with selective HIV-1 core nuclear import
2025
Passage of the HIV capsid cracks the nuclear pore
10.1016/j.cell.2024.12.008 · 2025
Elasticity of the HIV-1 core facilitates nuclear entry and infection
10.1371/journal.ppat.1012537 · 2024
Analysis of the mechanical properties of wild type and hyperstable mutants of the HIV-1 capsid
10.1186/s12977-016-0250-4 · 2016
PF74 Reinforces the HIV-1 Capsid to Impair Reverse Transcription-Induced Uncoating
10.1128/jvi.00845-18 · 2018
Mutations in the RNase H domain of HIV-1 reverse transcriptase affect the initiation of DNA synthesis and the specificity of RNase H cleavage in vivo
10.1073/pnas.142123199 · 2002
Microtubule-associated proteins 1 (MAP1) promote human immunodeficiency virus type I (HIV-1) intracytoplasmic routing to the nucleus
10.1074/jbc.m114.613133 · 2015
Nuclear pore blockade reveals that HIV-1 completes reverse transcription and uncoating in the nucleus
10.1038/s41564-020-0735-8 · doi-reference
HIV-1 induces the formation of stable microtubules to enhance early infection
10.1016/j.chom.2013.10.012 · doi-reference