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Journal of Virology, January 2001, p. 115-124, Vol. 75, No. 1
0022-538X/01/$04.00+0   DOI: 10.1128/JVI.75.1.115-124.2001
Copyright © 2001, American Society for Microbiology. All rights reserved.

Alteration of Zinc-Binding Residues of Simian Immunodeficiency Virus p8NC Results in Subtle Differences in Gag Processing and Virion Maturation Associated with Degradative Loss of Mutant NC

Jason L. Yovandich, Elena N. Chertova, Brad P. Kane, Tracy D. Gagliardi, Julian W. Bess Jr., Raymond C. Sowder II, Louis E. Henderson, and Robert J. Gorelick*

AIDS Vaccine Program, SAIC-Frederick, National Cancer Institute, Frederick, Maryland 21702-1201

Received 10 May 2000/Accepted 8 October 2000

In all retroviruses analyzed to date (except for the spumaretroviruses), the Zn2+-coordinating residues of nucleocapsid (NC) perform or assist in crucial reactions necessary to complete the retrovirus life cycle. Six replication-defective mutations have been engineered in the two NC Zn2+ fingers (ZFs) of simian immunodeficiency virus [SIV(Mne)] that change or delete specific Zn2+-interacting Cys residues and were studied by using electron microscopy, reversed-phase high-performance liquid chromatography, immunoblotting, and RNA quantification. We focused on phenotypes of produced particles, specifically morphology, Gag polyprotein processing, and genomic RNA packaging. Phenotypes were similar among viruses containing a point or deletion mutation involving the same ZF. Mutations in the proximal ZF (ZF1) resulted in near-normal Gag processing and full-length genomic RNA incorporation and were most similar to wild-type (WT) virions with electron-dense, conical cores. Mutation of the distal ZF, as well as point mutations in both ZFs, resulted in more unprocessed Gag proteins than a deletion or point mutation in ZF1, with an approximate 30% reduction in levels of full-length genomic RNA in virions. These mutant virions contained condensed cores; however, the cores typically appeared less electron dense and more rod shaped than WT virions. Surprisingly, deletion of both ZFs, including the basic linker region between the ZFs, resulted in the most efficient Gag processing. However, genomic RNA packaging was ~10% of WT levels, and those particles produced were highly abnormal with respect to size and core morphology. Surprisingly, all NC mutations analyzed demonstrated a significant loss of processed NC in virus particles, suggesting that Zn2+-coordinated NC is protected from excessive proteolytic cleavage. Together, these results indicate that Zn2+ coordination is important for correct Gag precursor processing and NC protein stability. Additionally, SIV particle morphology appears to be the result of proper and complete Gag processing and relies less on full-length genomic RNA incorporation, as dictated by the Zn2+ coordination in the ZFs of the NC protein.


* Corresponding author. Mailing address: AIDS Vaccine Program, SAIC-Frederick, National Cancer Institute, Frederick, MD 21702-1201. Phone: (301) 846-5980. Fax: (301) 846-7119. E-mail: gorelick{at}avpaxp1.ncifcrf.gov.


Journal of Virology, January 2001, p. 115-124, Vol. 75, No. 1
0022-538X/01/$04.00+0   DOI: 10.1128/JVI.75.1.115-124.2001
Copyright © 2001, American Society for Microbiology. All rights reserved.



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