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Published on: December 1, 2011
Biophysical characterization and crystal structure of the Feline Immunodeficiency Virus p15 matrix protein
Background:
Feline Immunodeficiency Virus (FIV) is a viral pathogen that infects domestic cats and wild felids. During the viral replication cycle, the FIV p15 matrix protein oligomerizes to form a closed matrix that underlies the lipidic envelope of the virion. Because of its crucial role in the early and late stages of viral morphogenesis, especially in viral assembly, FIV p15 is an interesting target in the development of potential new therapeutic strategies.
Results:
Our biochemical study of FIV p15 revealed that it forms a stable dimer in solution under acidic conditions and at high concentration, unlike other retroviral matrix proteins. We determined the crystal structure of full-length FIV p15 to 2 Å resolution and observed a helical organization of the protein, typical for retroviral matrix proteins. A hydrophobic pocket that could accommodate a myristoyl group was identified, and the C-terminal end of FIV p15, which is mainly unstructured, was visible in electron density maps. As FIV p15 crystallizes in acidic conditions but with one monomer in the asymmetric unit, we searched for the presence of a biological dimer in the crystal. No biological assembly was detected by the PISA server, but the three most buried crystallographic interfaces have interesting features: the first one displays a highly conserved tryptophan acting as a binding platform, the second one is located along a 2-fold symmetry axis and the third one resembles the dimeric interface of EIAV p15. Because the C-terminal end of p15 is involved in two of these three interfaces, we investigated the structure and assembly of a C-terminal-truncated form of p15 lacking 14 residues. The truncated FIV p15 dimerizes in solution at a lower concentration and crystallizes with two molecules in the asymmetric unit. The EIAV-like dimeric interface is the only one to be retained in the new crystal form.
Conclusion:
The dimeric form of FIV p15 in solution and its extended C-terminal end are characteristic among lentiviral matrix proteins. Crystallographic interfaces revealed several interactions that might be involved in FIV replication. Further studies are needed to better understand their biological relevance in the function of FIV Gag during viral replication.
Insights
Feline Immunodeficiency Virus (FIV) matrix protein p15 forms a stable dimer, unlike other retroviral matrix proteins. This unique dimeric structure and its C-terminal end may be key to FIV replication and viral assembly.
Area of Science:
- Structural biology
- Virology
- Biochemistry
Background:
- Feline Immunodeficiency Virus (FIV) infects domestic cats and wild felids.
- The FIV p15 matrix protein is crucial for viral assembly and morphogenesis.
- FIV p15 is a potential target for novel therapeutic strategies.
Purpose of the Study:
- To investigate the structure and dimerization of FIV p15.
- To understand the role of FIV p15 in viral replication.
Main Methods:
- Biochemical studies of FIV p15.
- Crystal structure determination of full-length FIV p15 to 2 Å resolution.
- Analysis of crystallographic interfaces and a C-terminal-truncated mutant.
Main Results:
- FIV p15 forms a stable dimer in solution under acidic conditions.
- The crystal structure revealed a helical organization and a hydrophobic pocket.
- Three potential dimeric interfaces were identified, with one resembling EIAV p15.
- A C-terminal-truncated mutant dimerized more readily and retained the EIAV-like interface.
Conclusions:
- The dimeric form of FIV p15 and its C-terminal end are unique among lentiviral matrix proteins.
- Identified crystallographic interfaces may play a role in FIV replication.
- Further research is needed to elucidate the biological relevance of these interactions in FIV Gag function.

