Structural Model of the Rev Regulatory Protein from Equine Infectious Anemia Virus
Author(s) -
Yungok Ihm,
Wendy O. Sparks,
JaeHyung Lee,
Haibo Cao,
Susan Carpenter,
CaiZhuang Wang,
KaiMing Ho,
Drena Dobbs
Publication year - 2009
Publication title -
plos one
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.99
H-Index - 332
ISSN - 1932-6203
DOI - 10.1371/journal.pone.0004178
Subject(s) - equine infectious anemia , biology , structural motif , rna , viral protein , protein structure , mutagenesis , virus , computational biology , ns3 , nucleic acid structure , nuclear export signal , virology , genetics , microbiology and biotechnology , gene , mutation , biochemistry , hepatitis c virus
Rev is an essential regulatory protein in the equine infectious anemia virus (EIAV) and other lentiviruses, including HIV-1. It binds incompletely spliced viral mRNAs and shuttles them from the nucleus to the cytoplasm, a critical prerequisite for the production of viral structural proteins and genomic RNA. Despite its important role in production of infectious virus, the development of antiviral therapies directed against Rev has been hampered by the lack of an experimentally-determined structure of the full length protein. We have used a combined computational and biochemical approach to generate and evaluate a structural model of the Rev protein. The modeled EIAV Rev (ERev) structure includes a total of 6 helices, four of which form an anti-parallel four-helix bundle. The first helix contains the leucine-rich nuclear export signal (NES). An arginine-rich RNA binding motif, RRDRW, is located in a solvent-exposed loop region. An ERLE motif required for Rev activity is predicted to be buried in the core of modeled structure where it plays an essential role in stabilization of the Rev fold. This structural model is supported by existing genetic and functional data as well as by targeted mutagenesis of residues predicted to be essential for overall structural integrity. Our predicted structure should increase understanding of structure-function relationships in Rev and may provide a basis for the design of new therapies for lentiviral diseases.
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