Zinc finger function of HIV-1 nucleocapsid protein is required for removal of 5′-terminal genomic RNA fragments: A paradigm for RNA removal reactions in HIV-1 reverse transcription

被引:7
作者
Hergott, Christopher B. [1 ]
Mitra, Mithun [1 ]
Guo, Jianhui [1 ]
Wu, Tiyun [1 ]
Miller, Jennifer T. [2 ]
Iwatani, Yasumasa [1 ]
Gorelick, Robert J. [3 ]
Levin, Judith G. [1 ]
机构
[1] Eunice Kennedy Shriver Natl Inst Child Hlth & Hum, Sect Viral Gene Regulat, Program Genom Differentiat, NIH, Bethesda, MD 20892 USA
[2] NCI, Reverse Transcriptase Biochem Sect, HIV Drug Resistance Program, NIH,Frederick Natl Lab Canc Res, Frederick, MD 21702 USA
[3] SAIC Frederick Inc, AIDS & Canc Virus Program, Frederick Natl Lab Canc Res, Frederick, MD 21702 USA
基金
美国国家卫生研究院;
关键词
HIV-1 nucleocapsid protein; Nucleic acid chaperone; Helix destabilizing activity; 5 '-Terminal genomic RNA fragments; RNase H cleavage; Reverse transcription; ACID-CHAPERONE ACTIVITY; STRONG-STOP DNA; STRAND TRANSFER; IN-VITRO; MECHANISM; IDENTIFICATION; POLYMERASE; INHIBITION; MUTATIONS; REPLICATION;
D O I
10.1016/j.virusres.2012.08.013
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
During (-) strong-stop DNA [(-) SSDNA] synthesis, RNase H cleavage of genomic viral RNA generates small 5'-terminal RNA fragments (14-18 nt) that remain annealed to the DNA. Unless these fragments are removed, the minus-strand transfer reaction, required for (-) SSDNA elongation, cannot occur. Here, we describe the mechanism of 5'-terminal RNA removal and the roles of HIV-1 nucleocapsid protein (NC) and RNase H cleavage in this process. Using an NC-dependent system that models minus-strand transfer, we show that the presence of short terminal fragments pre-annealed to (-) SSDNA has no impact on strand transfer, implying efficient fragment removal. Moreover, in reactions with an RNase H- reverse transcriptase mutant, NC alone is able to facilitate fragment removal, albeit less efficiently than in the presence of both RNase H activity and NC. Results obtained from novel electrophoretic gel mobility shift and Forster Resonance Energy Transfer assays, which each directly measure RNA fragment release from a duplex in the absence of DNA synthesis, demonstrate for the first time that the architectural integrity of NC's zinc finger (ZF) domains is absolutely required for this reaction. This suggests that NC's helix destabilizing activity (associated with the ZFs) facilitates strand exchange through the displacement of these short terminal RNAs by the longer 3' acceptor RNA, which forms a more stable duplex with (-) SSDNA. Taken together with previously published results, we conclude that NC-mediated fragment removal is linked mechanistically with selection of the correct primer for plus-strand DNA synthesis and tRNA removal step prior to plus-strand transfer. Thus, HIV-1 has evolved a single mechanism for these RNA removal reactions that are critical for successful reverse transcription. Published by Elsevier B.V.
引用
收藏
页码:346 / 355
页数:10
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