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Updated: Feb 3, 2026

Magnetic Resonance Spectroscopy of live Drosophila melanogaster using Magic Angle Spinning
Published on: April 15, 2010
Dynamic regulation of HIV-1 capsid interaction with the restriction factor TRIM5α identified by magic-angle spinning
Caitlin M Quinn1,2, Mingzhang Wang1,2, Matthew P Fritz1,2
1Department of Chemistry and Biochemistry, University of Delaware, Newark, DE 19716.
Abstract:
The host factor protein TRIM5α plays an important role in restricting the host range of HIV-1, interfering with the integrity of the HIV-1 capsid. TRIM5 triggers an antiviral innate immune response by functioning as a capsid pattern recognition receptor, although the precise mechanism by which the restriction is imposed is not completely understood. Here we used an integrated magic-angle spinning nuclear magnetic resonance and molecular dynamics simulations approach to characterize, at atomic resolution, the dynamics of the capsid's hexameric and pentameric building blocks, and the interactions with TRIM5α in the assembled capsid. Our data indicate that assemblies in the presence of the pentameric subunits are more rigid on the microsecond to millisecond timescales than tubes containing only hexamers. This feature may be of key importance for controlling the capsid's morphology and stability. In addition, we found that TRIM5α binding to capsid induces global rigidification and perturbs key intermolecular interfaces essential for higher-order capsid assembly, with structural and dynamic changes occurring throughout the entire CA polypeptide chain in the assembly, rather than being limited to a specific protein-protein interface. Taken together, our results suggest that TRIM5α uses several mechanisms to destabilize the capsid lattice, ultimately inducing its disassembly. Our findings add to a growing body of work indicating that dynamic allostery plays a pivotal role in capsid assembly and HIV-1 infectivity.
Insights
The host protein TRIM5α destabilizes HIV-1 capsid structure, hindering viral replication. This study reveals TRIM5α binding causes global rigidification and disrupts capsid assembly, offering new insights into antiviral mechanisms.
Area of Science:
- Structural biology
- Virology
- Immunology
Background:
- The human immunodeficiency virus type 1 (HIV-1) capsid is essential for viral replication.
- The host restriction factor TRIM5α inhibits HIV-1 infection by targeting the capsid.
- The precise mechanism of TRIM5α-mediated restriction remains incompletely understood.
Purpose of the Study:
- To elucidate the atomic-level dynamics of HIV-1 capsid assembly and its interaction with TRIM5α.
- To understand how TRIM5α binding affects capsid stability and integrity.
Main Methods:
- Integrated magic-angle spinning nuclear magnetic resonance (MAS NMR) spectroscopy.
- Molecular dynamics (MD) simulations.
- Atomic resolution characterization of capsid dynamics and TRIM5α interactions.
Main Results:
- Capsid assemblies with pentameric subunits exhibit increased rigidity compared to hexamer-only assemblies.
- TRIM5α binding induces global rigidification of the capsid.
- TRIM5α binding perturbs key interfaces, leading to destabilization and disassembly of the capsid lattice.
- Structural and dynamic changes induced by TRIM5α occur throughout the entire capsid protein.
Conclusions:
- TRIM5α employs multiple mechanisms to destabilize the HIV-1 capsid, promoting its disassembly.
- Dynamic allostery is crucial for capsid assembly and HIV-1 infectivity.
- Findings provide atomic-level insights into TRIM5α restriction of HIV-1.
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