Gag polyprotein: Difference between revisions
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{{ | [[Image:1gwp.png|left|200px|thumb|The mature CA<sup>N</sup> domain of the [http://en.wikipedia.org/wiki/Human_immunodeficiency_virus_type_1_(isolate_12) HIV-1] Gag<sup>283</sup> polyprotein ([[1gwp]]), is a protein involved in formation of the capsid core particle. The structure of the CA<sup>N</sup> domain was determined through [[NMR]] by Tang et al. <ref name="source">PMID:12032547</ref>.]] | ||
{{STRUCTURE_1gwp| PDB=1gwp | SCENE= }} | |||
The '''Gag polyprotein''' (Gag) is part of the basic infrastructure of retroviruses. The Gag is processed during maturation of matrix protein, capsid protein, spacer peptide and nucleocapsid protein. For detailed discussion of HIV-1 Gag polyprotein see [[Hiv-1 gag]]. | |||
Gag of [http://en.wikipedia.org/wiki/Human_immunodeficiency_virus_type_1_(isolate_12) human immunodeficiency virus type 1] (HIV-1), is a primary protein involved in the packaging of two copies of the viral genome for capsid formation <ref>Coffin, J., S. Hughes, and H. Varmus, Retroviruses. 1997: Cold Spring Harbor Laboratory Press.</ref>. In the cytoplasm of the infected cell, Gag is translated and approximately 1500 copies of the immature HIV-1 Gag polyprotein [[1l6n]] come together to form an immature viral particle. After budding of the viral particle, viral proteases cleave the Gag protein into three structurally different products: the matrix, the capsid, and the nucleocapsid. The protealytic cleavage results in viral maturation and induces significant structural changes of the protein products. Following this proteolysis, the viral particle takes on the classic cone shape required for a new infection. | |||
==Capsid (CA) Domain== | |||
Overall, the mature CA<sup>N</sup> domain is very similar in structure to the corresponding domain of the immature Gag<sup>283</sup> polyprotein <ref name="source" />. The CA<sup>N</sup> protein contains 7 α-helices (helix 1-helix 7) that pack together to form a triangular shape, which helps facilitate the final complex formation for the capsid core particles. There are two significant structural differences between the immature and mature versions of the CA<sup>N</sup> domain: an N-terminal β-hairpin and a 2-Angstrom displacement of helix 6. | |||
In the mature CA<sup>N</sup> protein, the N-terminal residues form an anti-parallel β-hairpin instead of the random coil that is observed when the same residues are compared in the immature Gag<sup>283</sup> polyprotein. The NH<sub>2</sub>+ group of the N-terminus proline establishes a salt bridge with a nearby aspartic acid, which stabilizes the β-hairpin. This N-terminal β-hairpin is required for the final formation of the viral capsid, and many studies have shown through conservation and mutagenesis that this β-hairpin is responsible for the stabilization of the protein complexes involved in the capsid formation <ref name="gitti">PMID:8662505</ref><ref name="von">PMID:9501077</ref>. | |||
==3D structures of | As a side effect of the β-hairpin formation, the helix 6 is displaced by approximately 2-Angstroms. This displacement, though structurally minor, causes significant biological changes in the protein. Most importantly, helix 6 interacts with the protein cyclophilin A (CypA)-binding site. CypA is a prolyl isomerase and chaperone protein involved in the infection process by aiding in unpacking the capsid <ref>PMID:8648689</ref><ref>PMID:7969495</ref><ref>PMID:9420228</ref>. | ||
==Implications== | |||
HIV-1 viral particles need to form a capsid cone-like structure prior to infection of the host cell. The protealytic cleavage of the immature Gag<sup>283</sup> polyprotein results in a capsid domain. This post-translational modification is essential to the formation of the core structure. Many studies have shown that the β-hairpin formed after maturation is essential for the capsid core particle formation <ref name="gitti"/><ref name="von"/>. As a result of the β-hairpin formation, the helix 6 is displaced causing an allosteric mechanism for CpyA binding. Overall, the maturation of Gag<sup>283</sup> and formation of the mature CA protein is essential for core capsid particle creation and consequently final infection. | |||
==3D structures of Gag polyprotein== | |||
''Updated November 2011'' | ''Updated November 2011'' | ||
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[[1cl4]] - Gag residues 49-80 (mutant) – NMR<BR /> | [[1cl4]] - Gag residues 49-80 (mutant) – NMR<BR /> | ||
==Additional Resources== | |||
For additional information, see: [[Human Immunodeficiency Virus]] | |||
<br /> | |||
==Reference== | |||
<references/> | |||
==Team from University of Missouri, Columbia, MO== | |||
:Students: Zheng Wang, Allison Tegge, Xin Deng | |||
:Advisors: Jianlin Cheng, PhD, Department of Computer Science, Informatics Institute, the Life Science Center, Interdisciplinary Plant Group, University of Missouri, Columbia | |||
:Mentor: Chun Tang, PhD, Department of Biochemistry, University of Missouri, Columbia | |||
==NMR Equipment and the Authors== | |||
<gallery> | |||
Image:Cheng_casp8.jpg | Dr. Jianlin Cheng | |||
Image:NMR_sample.JPG | Protein sample | |||
Image:Chun_Tang.JPG | Dr. Chun Tang | |||
Image:1gwp_people1.JPG | Labmates | |||
Image:1gwp_people2.JPG | Labmates | |||
</gallery> | |||