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Published on: January 19, 2015
Lenacapavir-induced Lattice Hyperstabilization is Central to HIV-1 Capsid Failure at the Nuclear Pore Complex and in
Arpa Hudait1, Ryan C Burdick2, Ellie K Bare2
1Department of Chemistry, Chicago Center for Theoretical Chemistry, Institute for Biophysical Dynamics, and James Franck Institute, The University of Chicago, Chicago, IL 60637.
Abstract:
Lenacapavir (LEN) is the first HIV-1 capsid inhibitor approved for clinical use. It inhibits multiple steps of the viral life cycle; however, the molecular details of the effect of LEN on capsid structure and the mechanistic steps of the inhibition are not understood. Recent studies show that intact cone-shaped capsids and capsids with LEN-induced breaks can dock at nuclear pore complexes (NPC), but only intact capsids enter the nucleus. In this work, we combined large-scale coarse-grained molecular dynamics simulations and live-cell imaging to investigate the stepwise mechanism of docking of LEN-treated capsids into the NPC. Capsids bound to substoichiometric concentrations of LEN can reach the NPC central channel. As the capsid advances to the nuclear end, lattice defects are formed at the pentamer-hexamer interface - primarily at the narrower end - leading to pentamer dissociation. Dissociation of pentamers is detrimental to capsid integrity, leading to both rupture of the narrow end and destabilization of the hexamer-hexamer interface. Structural analysis of LEN-capsid complexes in our simulations demonstrates heterogeneous hyperstabilization and loss of the essential pliability of the capsid protein lattice. Live-cell imaging of HIV-1 cores labeled with two different fluorescent markers showed that LEN-treated ruptured capsids were docked at the NPC but were not imported into the nucleus. We conclude that LEN contributes to the loss of capsid elasticity and integrity, inhibiting HIV-1 nuclear entry and replication. Our findings demonstrate that altering capsid material properties can be an effective strategy for designing antiviral drugs that disrupt viral core nuclear entry.
Insights
Lenacapavir (LEN), an HIV-1 capsid inhibitor, disrupts viral integrity by causing defects and loss of elasticity in the capsid structure. This prevents HIV-1 nuclear entry and replication, offering a new antiviral drug design strategy.
Area of Science:
- Virology
- Structural Biology
- Drug Discovery
Background:
- Lenacapavir (LEN) is the first approved HIV-1 capsid inhibitor, targeting multiple viral life cycle steps.
- The precise molecular mechanisms by which LEN affects capsid structure and inhibits viral replication remain unclear.
- While intact and broken capsids can dock at nuclear pore complexes (NPCs), only intact capsids achieve nuclear import.
Purpose of the Study:
- To investigate the stepwise mechanism of lenacapavir-treated HIV-1 capsid docking into the nuclear pore complex.
- To elucidate the molecular details of how LEN impacts capsid structure and integrity during nuclear import.
Main Methods:
- Large-scale coarse-grained molecular dynamics simulations.
- Live-cell imaging of fluorescently labeled HIV-1 cores.
Main Results:
- Lenacapavir-bound capsids can reach the NPC, but develop lattice defects at the pentamer-hexamer interface as they advance.
- Pentamer dissociation leads to capsid rupture and destabilization, compromising structural integrity.
- LEN causes heterogeneous hyperstabilization and loss of capsid pliability.
- Ruptured, LEN-treated capsids dock at NPCs but are not imported into the nucleus.
Conclusions:
- Lenacapavir inhibits HIV-1 nuclear entry by compromising capsid elasticity and integrity.
- Disrupting capsid material properties is a viable strategy for developing antiviral drugs targeting viral nuclear import.
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