Mass spectrometry analysis of HIV‐1 Vif reveals an increase in ordered structure upon oligomerization in regions necessary for viral infectivity
- 27 June 2007
- journal article
- research article
- Published by Wiley in Proteins-Structure Function and Bioinformatics
- Vol. 69 (2) , 270-284
- https://doi.org/10.1002/prot.21471
Abstract
HIV‐1 Vif, an accessory protein in the viral genome, performs an important role in viral pathogenesis by facilitating the degradation of APOBEC3G, an endogenous cellular inhibitor of HIV‐1 replication. In this study, intrinsically disordered regions are predicted in HIV‐1 Vif using sequence‐based algorithms. Intrinsic disorder may explain why traditional structure determination of HIV‐1 Vif has been elusive, making structure‐based drug design impossible. To characterize HIV‐1 Vif's structural topology and to map the domains involved in oligomerization we used chemical cross‐linking, proteolysis, and mass spectrometry. Cross‐linking showed evidence of monomer, dimer, and trimer species via denaturing gel analysis and an additional tetramer via western blot analysis. We identified 47 unique linear peptides and 24 (13 intramolecular; 11 intermolecular) noncontiguous, cross‐linked peptides, among the noncross‐linked monomer, cross‐linked monomer, cross‐linked dimer, and cross‐linked trimer samples. Almost complete peptide coverage of the N‐terminus is observed in all samples analyzed, however reduced peptide coverage in the C‐terminal region is observed in the dimer and trimer samples. These differences in peptide coverage or “protections” between dimer and trimer indicate specific differences in packing between the two oligomeric forms. Intramolecular cross‐links within the monomer suggest that the N‐terminus is likely folded into a compact domain, while the C‐terminus remains intrinsically disordered. Upon oligomerization, as evidenced by the intermolecular cross‐links, the C‐terminus of one Vif protein becomes ordered by wrapping back on the N‐terminal domain of another. In addition, the majority of the intramolecular cross‐links map to regions that have been previously reported to be necessary for viral infectivity. Thus, this data suggests HIV‐1 Vif is in a dynamic equilibrium between the various oligomers potentially allowing it to interact with other binding partners. Proteins 2007.Keywords
This publication has 72 references indexed in Scilit:
- Antiviral Potency of APOBEC Proteins Does Not Correlate with Cytidine DeaminationJournal of Virology, 2006
- A Zinc-binding Region in Vif Binds Cul5 and Determines Cullin SelectionJournal of Biological Chemistry, 2006
- Alternative splicing in concert with protein intrinsic disorder enables increased functional diversity in multicellular organismsProceedings of the National Academy of Sciences, 2006
- Cooperative and Specific Binding of Vif to the 5′ Region of HIV-1 Genomic RNAJournal of Molecular Biology, 2005
- Flexible netsThe FEBS Journal, 2005
- Regulation of Apobec3F and Human Immunodeficiency Virus Type 1 Vif by Vif-Cul5-ElonB/C E3 Ubiquitin LigaseJournal of Virology, 2005
- Intrinsically unstructured proteins and their functionsNature Reviews Molecular Cell Biology, 2005
- Phosphorylation of a novel SOCS-box regulates assembly of the HIV-1 Vif-Cul5 complex that promotes APOBEC3G degradationGenes & Development, 2004
- Intrinsic Disorder in Cell-signaling and Cancer-associated ProteinsJournal of Molecular Biology, 2002
- Isolation of a human gene that inhibits HIV-1 infection and is suppressed by the viral Vif proteinNature, 2002