Significant Differences in RNA Structure Destabilization by HIV-1 GagDp6 and NCp7 Proteins

Retroviral nucleocapsid (NC) proteins are nucleic acid chaperones that play distinct roles in the viral life cycle. During reverse transcription, HIV-1 NC facilitates the rearrangement of nucleic acid secondary structures, allowing the transactivation response (TAR) RNA hairpin to be transiently des...

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Main Authors: Micah J. McCauley, Ioulia Rouzina, Jasmine Li, Megan E. Núñez, Mark C. Williams
Format: Article
Language:English
Published: MDPI AG 2020-04-01
Series:Viruses
Subjects:
Gag
Online Access:https://www.mdpi.com/1999-4915/12/5/484
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spelling doaj-40b9fc7651204d6f8101d8782ba1a38b2020-11-25T03:25:47ZengMDPI AGViruses1999-49152020-04-011248448410.3390/v12050484Significant Differences in RNA Structure Destabilization by HIV-1 GagDp6 and NCp7 ProteinsMicah J. McCauley0Ioulia Rouzina1Jasmine Li2Megan E. Núñez3Mark C. Williams4Department of Physics, Northeastern University, Boston, MA 02115, USADepartment of Chemistry and Biochemistry, The Ohio State University, Center for Retroviral Research, and Center for RNA Biology, Columbus, OH 43210, USADepartment of Chemistry and Program in Biochemistry, Wellesley College, Wellesley, MA 02481, USADepartment of Chemistry and Program in Biochemistry, Wellesley College, Wellesley, MA 02481, USADepartment of Physics, Northeastern University, Boston, MA 02115, USARetroviral nucleocapsid (NC) proteins are nucleic acid chaperones that play distinct roles in the viral life cycle. During reverse transcription, HIV-1 NC facilitates the rearrangement of nucleic acid secondary structures, allowing the transactivation response (TAR) RNA hairpin to be transiently destabilized and annealed to a complementary RNA hairpin. In contrast, during viral assembly, NC, as a domain of the group-specific antigen (Gag) polyprotein, binds the genomic RNA and facilitates packaging into new virions. It is not clear how the same protein, alone or as part of Gag, performs such different RNA binding functions in the viral life cycle. By combining single-molecule optical tweezers measurements with a quantitative mfold-based model, we characterize the equilibrium stability and unfolding barrier for TAR RNA. Comparing measured results with a model of discrete protein binding allows us to localize affected binding sites, in addition to quantifying hairpin stability. We find that, while both NCp7 and GagDp6 destabilize the TAR hairpin, GagDp6 binding is localized to two sites in the stem, while NCp7 targets sites near the top loop. Unlike GagDp6, NCp7 destabilizes this loop, shifting the location of the reaction barrier toward the folded state and increasing the natural rate of hairpin opening by ~10<sup>4</sup>. Thus, our results explain why Gag cleavage and NC release is an essential prerequisite for reverse transcription within the virion.https://www.mdpi.com/1999-4915/12/5/484HIV-1TAR hairpinGagnucleocapsidoptical tweezersenergy landscape
collection DOAJ
language English
format Article
sources DOAJ
author Micah J. McCauley
Ioulia Rouzina
Jasmine Li
Megan E. Núñez
Mark C. Williams
spellingShingle Micah J. McCauley
Ioulia Rouzina
Jasmine Li
Megan E. Núñez
Mark C. Williams
Significant Differences in RNA Structure Destabilization by HIV-1 GagDp6 and NCp7 Proteins
Viruses
HIV-1
TAR hairpin
Gag
nucleocapsid
optical tweezers
energy landscape
author_facet Micah J. McCauley
Ioulia Rouzina
Jasmine Li
Megan E. Núñez
Mark C. Williams
author_sort Micah J. McCauley
title Significant Differences in RNA Structure Destabilization by HIV-1 GagDp6 and NCp7 Proteins
title_short Significant Differences in RNA Structure Destabilization by HIV-1 GagDp6 and NCp7 Proteins
title_full Significant Differences in RNA Structure Destabilization by HIV-1 GagDp6 and NCp7 Proteins
title_fullStr Significant Differences in RNA Structure Destabilization by HIV-1 GagDp6 and NCp7 Proteins
title_full_unstemmed Significant Differences in RNA Structure Destabilization by HIV-1 GagDp6 and NCp7 Proteins
title_sort significant differences in rna structure destabilization by hiv-1 gagdp6 and ncp7 proteins
publisher MDPI AG
series Viruses
issn 1999-4915
publishDate 2020-04-01
description Retroviral nucleocapsid (NC) proteins are nucleic acid chaperones that play distinct roles in the viral life cycle. During reverse transcription, HIV-1 NC facilitates the rearrangement of nucleic acid secondary structures, allowing the transactivation response (TAR) RNA hairpin to be transiently destabilized and annealed to a complementary RNA hairpin. In contrast, during viral assembly, NC, as a domain of the group-specific antigen (Gag) polyprotein, binds the genomic RNA and facilitates packaging into new virions. It is not clear how the same protein, alone or as part of Gag, performs such different RNA binding functions in the viral life cycle. By combining single-molecule optical tweezers measurements with a quantitative mfold-based model, we characterize the equilibrium stability and unfolding barrier for TAR RNA. Comparing measured results with a model of discrete protein binding allows us to localize affected binding sites, in addition to quantifying hairpin stability. We find that, while both NCp7 and GagDp6 destabilize the TAR hairpin, GagDp6 binding is localized to two sites in the stem, while NCp7 targets sites near the top loop. Unlike GagDp6, NCp7 destabilizes this loop, shifting the location of the reaction barrier toward the folded state and increasing the natural rate of hairpin opening by ~10<sup>4</sup>. Thus, our results explain why Gag cleavage and NC release is an essential prerequisite for reverse transcription within the virion.
topic HIV-1
TAR hairpin
Gag
nucleocapsid
optical tweezers
energy landscape
url https://www.mdpi.com/1999-4915/12/5/484
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