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Updated: May 27, 2026

Structure of HIV-1 Capsid Assemblies by Cryo-electron Microscopy and Iterative Helical Real-space Reconstruction
Published on: August 9, 2011
High-resolution structure of a retroviral protease folded as a monomer
Miroslaw Gilski1, Maciej Kazmierczyk, Szymon Krzywda
1Department of Crystallography, Faculty of Chemistry, A. Mickiewicz University, 60-780 Poznan, Poland.
Abstract:
Mason-Pfizer monkey virus (M-PMV), a D-type retrovirus assembling in the cytoplasm, causes simian acquired immunodeficiency syndrome (SAIDS) in rhesus monkeys. Its pepsin-like aspartic protease (retropepsin) is an integral part of the expressed retroviral polyproteins. As in all retroviral life cycles, release and dimerization of the protease (PR) is strictly required for polyprotein processing and virion maturation. Biophysical and NMR studies have indicated that in the absence of substrates or inhibitors M-PMV PR should fold into a stable monomer, but the crystal structure of this protein could not be solved by molecular replacement despite countless attempts. Ultimately, a solution was obtained in mr-rosetta using a model constructed by players of the online protein-folding game Foldit. The structure indeed shows a monomeric protein, with the N- and C-termini completely disordered. On the other hand, the flap loop, which normally gates access to the active site of homodimeric retropepsins, is clearly traceable in the electron density. The flap has an unusual curled shape and a different orientation from both the open and closed states known from dimeric retropepsins. The overall fold of the protein follows the retropepsin canon, but the C(α) deviations are large and the active-site 'DTG' loop (here NTG) deviates up to 2.7 Å from the standard conformation. This structure of a monomeric retropepsin determined at high resolution (1.6 Å) provides important extra information for the design of dimerization inhibitors that might be developed as drugs for the treatment of retroviral infections, including AIDS.
Insights
The Mason-Pfizer monkey virus protease (M-PMV PR) was structurally characterized as a monomer, revealing unique active site conformations. This finding is crucial for developing novel antiviral drugs targeting retroviral infections.
Area of Science:
- Structural Biology
- Virology
- Drug Discovery
Background:
- Mason-Pfizer monkey virus (M-PMV) causes simian acquired immunodeficiency syndrome (SAIDS) in rhesus monkeys.
- The M-PMV aspartic protease (retropepsin) is essential for viral polyprotein processing and virion maturation, requiring dimerization for activity.
Purpose of the Study:
- To determine the high-resolution crystal structure of the M-PMV retropepsin.
- To investigate the structural basis for its monomeric state and active site conformation.
Main Methods:
- X-ray crystallography
- Structure solution using the mr-rosetta program with a model generated by the Foldit online game
- High-resolution structure determination at 1.6 Å
Main Results:
- The crystal structure revealed M-PMV retropepsin as a monomer with disordered N- and C-termini.
- The flap loop adopted an unusual, curled conformation, differing from known dimeric retropepsins.
- Significant deviations in the active site 'NTG' loop were observed compared to canonical retropepsin structures.
Conclusions:
- The determined monomeric structure provides novel insights into M-PMV retropepsin conformation.
- This structural information is valuable for designing specific dimerization inhibitors.
- Such inhibitors hold potential as therapeutic agents for retroviral infections, including AIDS.
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