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Updated: Aug 7, 2026

Assessment of Immunologically Relevant Dynamic Tertiary Structural Features of the HIV-1 V3 Loop Crown R2 Sequence by ab initio Folding
Published on: September 16, 2010
Structural consequences of cyclophilin A binding on maturational refolding in human immunodeficiency virus type 1
L Dietrich1, L S Ehrlich, T J LaGrassa
1Department of Molecular Genetics and Microbiology, State University of New York at Stony Brook, Stony Brook, New York 11794-5222, USA.
Insights
Cyclophilin A (CyP A) binding to human immunodeficiency virus type 1 Gag and mature capsid proteins alters their structure. This interaction is crucial for viral infectivity, suggesting CyP A
Area of Science:
- Virology
- Molecular Biology
- Structural Biology
Background:
- Cyclophilin A (CyP A) is essential for human immunodeficiency virus type 1 (HIV-1) infectivity, binding to the capsid (CA) precursor Pr55(Gag).
- CyP A interaction with Pr55(Gag) occurs via a Pro-rich loop in the CA domain, influencing post-assembly events.
- The precise mechanism of CyP A's influence on viral maturation remains unclear.
Purpose of the Study:
- To elucidate the structural basis of CyP A's interaction with HIV-1 Gag and mature CA proteins.
- To investigate the role of CyP A in modulating the conformation of viral structural proteins during maturation.
Main Methods:
- Comparative binding studies using wild-type CyP A and a W121F mutant.
- Analysis of protein conformation using trypsin as a structure probe and chemical modification of cysteine residues.
- Characterization of the Pro-rich loop and C-terminal regions of Gag and mature CA proteins.
Main Results:
- CyP A exhibits distinct binding interactions with Gag and mature CA proteins, differentiated by Trp 121.
- A maturation-dependent conformational switch in the Pro-rich loop of CA was identified.
- CyP A binding prevents refolding of the Pro-rich loop in Gag and alters the C-terminal conformation of mature CA.
Conclusions:
- CyP A binding induces structural modifications in both Gag and mature CA proteins.
- These structural changes, particularly in the Pro-rich loop and C-terminal regions, are critical for HIV-1 post-assembly events.
- The structural modulation of mature CA proteins by CyP A likely mediates its essential role in viral infectivity.
Abstract:
While several cellular proteins are incorporated in the human immunodeficiency virus type 1 virion, cyclophilin (CyP) A is the only one whose absence has been demonstrated to impair infectivity. Incorporation of the cytosolic protein results from interaction with a highly exposed Pro-rich loop in the N-terminal region of the capsid (CA) domain of the precursor polyprotein, Pr55(Gag). Even when prevented from interacting with CyP A, Pr55Gag still forms particles that proceed to mature into morphologically wild-type virions, suggesting that CyP A influences a postassembly event. The nature of this CyP A influence has yet to be elucidated. Here, we show that while CyP A binds both Gag and mature CA proteins, the two binding interactions are actually different. Tryptophan 121 (W121) in CyP A distinguished the two proteins: a phenylalanine substitution (W121F) impaired binding of mature CA protein but not of Gag. This indicates the occurrence of a maturation-dependent switch in the conformation of the Pro-rich loop. A structural consequence of Gag binding to CyP A was to block this maturational refolding, resulting in a 24-kDa CA protein retaining the immature Pro-rich loop conformation. Using trypsin as a structure probe, we demonstrate that the conformation of the C-terminal region in mature CA is also a product of maturational refolding. Binding to wild-type CyP A altered this conformation, as indicated by a reduction in the accessibility of Cys residue(s) in the region to chemical modification. Hence, the end result of binding to CyP A, whether the Pro-rich loop is in the context of Gag or mature CA protein, is a structurally modified mature CA protein. The postassembly role of CyP A may be mediated through these modified mature CA proteins.
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