bioRxiv · 10.64898/2026.04.17.719300
Mechanism of HIV-1 Capsid Rupture and Uncoating by Reverse Transcription
Abstract
One of the key events in the HIV-1 life cycle is reverse transcription, during which single-stranded viral RNA (ssRNA) is converted into double-stranded DNA (dsDNA). This process occurs inside the mature virus capsid and, once it reaches a critical threshold, drives capsid rupture. This uncoating is essential for infection because it releases viral genetic material into the host cell nucleus. Despite its importance, many mechanistic details of this process remain to be fully understood. To address this gap, we develop a multiscale computational method for simulating reverse transcription inside the capsid, termed Coarse-Grained Kinetic Monte Carlo (CG-KMC). CG-KMC stochastically adds deoxynucleotide triphosphates (dNTPs) to the coarse-grained RNA model, enabling stepwise growth of DNA inside the HIV-1 capsid. We implement this method within an integrative coarse-grained framework that combines a "bottom-up" capsid model with a "top-down" representation of the viral RNA/DNA genome. Our simulations phenomenologically capture and predict diverse capsid rupture pathways during reverse transcription. The resulting ruptured structures closely match previously identified cryo-ET images. We further perform an extensive analysis of the rupture process, examining its mechanistic and kinetic aspects as well as the role of capsid-DNA interactions. Our findings illuminate how different capsid-DNA conditions give rise to distinct rupture pathways, which differ from ruptures due to simple outward pressure expansion models from within the capsid. Significance StatementReverse transcription (RT) is a critical step in the life cycle of HIV-1, the causative agent of the AIDS pandemic. During RT, single-stranded RNA (ssRNA), encapsulated inside a mature capsid, is converted into double-stranded DNA (dsDNA). The rigidity of dsDNA generates increased internal pressure inside the capsid which, beyond a critical threshold, drives capsid uncoating, releasing the viral genome into the infected host cell. However, key mechanistic and kinetic aspects of this process remain unresolved. Here, using coarse-grained simulations, we elucidate the mechanistic basis of RT-induced capsid uncoating and quantify the role of capsid-genome interactions. Our results demonstrate that tuning these interactions may provide a potential antiviral strategy to inhibit infectivity by targeting RT.
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Ghosh, K., Gupta, M., Voth, G. A.. 2026-04-18. Mechanism of HIV-1 Capsid Rupture and Uncoating by Reverse Transcription. https://doi.org/10.64898/2026.04.17.719300
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