The Experts below are selected from a list of 94329 Experts worldwide ranked by ideXlab platform

Paul S Masters - One of the best experts on this subject based on the ideXlab platform.

  • Coronavirus Genomic RNA packaging
    Virology, 2019
    Co-Authors: Paul S Masters
    Abstract:

    Abstract RNA viruses carry out selective packaging of their genomes in a variety of ways, many involving a Genomic packaging signal. The first coronavirus packaging signal was discovered nearly thirty years ago, but how it functions remains incompletely understood. This review addresses the current state of knowledge of coronavirus genome packaging, which has mainly been studied in two prototype species, mouse hepatitis virus and transmissible gastroenteritis virus. Despite the progress that has been made in the mapping and characterization of some packaging signals, there is conflicting evidence as to whether the viral nucleocapsid protein or the membrane protein plays the primary role in packaging signal recognition. The different models for the mechanism of Genomic RNA packaging that have been prompted by these competing views are described. Also discussed is the recent exciting discovery that selective coronavirus genome packaging is critical for in vivo evasion of the host innate immune response.

  • Recognition of the Murine Coronavirus Genomic RNA Packaging Signal Depends on the Second RNA-Binding Domain of the Nucleocapsid Protein
    2016
    Co-Authors: Lili Kuo, Cheri A. Koetzner, Kelley R. Hurst, Paul S Masters
    Abstract:

    The coronavirus nucleocapsid (N) protein forms a helical ribonucleoprotein with the viral positive-strand RNA genome and binds to the principal constituent of the virion envelope, the membrane (M) protein, to facilitate assembly and budding. Besides these structural roles, N protein associates with a component of the replicase-transcriptase complex, nonstructural protein 3, at a critical early stage of infection. N protein has also been proposed to participate in the replication and selective packaging of Genomic RNA and the transcription and translation of subGenomic mRNA. Coronavirus N proteins contain two structurally distinct RNA-binding domains, an unusual characteristic among RNA viruses. To probe the functions of these domains in the N protein of the model coronavirus mouse hepatitis virus (MHV), we constructed mutants in which each RNA-binding domain was replaced by its counterpart from the N protein of severe acute respiratory syndrome coronavirus (SARS-CoV). Mapping of revertants of the resulting chimeric viruses provided evidence for extensive intramolecular interactions between the two RNA-binding domains. Through analysis of viral RNA that was packaged into virions we identified the second of the two RNA-binding domains as a principal determinant of MHV packaging signal recognition. As expected, the interaction of N protein withM pro-tein was not affected in either of the chimeric viruses. Moreover, the SARS-CoVN substitutions did not alter the fidelity of lead-er-body junction formation during subGenomic mRNA synthesis. These results more clearly delineate the functions of N protein and establish a basis for further exploration of the mechanism of Genomic RNA packaging

  • Recognition of the Murine Coronavirus Genomic RNA Packaging Signal Depends on the Second RNA-Binding Domain of the Nucleocapsid Protein
    Journal of virology, 2014
    Co-Authors: Lili Kuo, Cheri A. Koetzner, Kelley R. Hurst, Paul S Masters
    Abstract:

    UNLABELLED The coronavirus nucleocapsid (N) protein forms a helical ribonucleoprotein with the viral positive-strand RNA genome and binds to the principal constituent of the virion envelope, the membrane (M) protein, to facilitate assembly and budding. Besides these structural roles, N protein associates with a component of the replicase-transcriptase complex, nonstructural protein 3, at a critical early stage of infection. N protein has also been proposed to participate in the replication and selective packaging of Genomic RNA and the transcription and translation of subGenomic mRNA. Coronavirus N proteins contain two structurally distinct RNA-binding domains, an unusual characteristic among RNA viruses. To probe the functions of these domains in the N protein of the model coronavirus mouse hepatitis virus (MHV), we constructed mutants in which each RNA-binding domain was replaced by its counterpart from the N protein of severe acute respiratory syndrome coronavirus (SARS-CoV). Mapping of revertants of the resulting chimeric viruses provided evidence for extensive intramolecular interactions between the two RNA-binding domains. Through analysis of viral RNA that was packaged into virions we identified the second of the two RNA-binding domains as a principal determinant of MHV packaging signal recognition. As expected, the interaction of N protein with M protein was not affected in either of the chimeric viruses. Moreover, the SARS-CoV N substitutions did not alter the fidelity of leader-body junction formation during subGenomic mRNA synthesis. These results more clearly delineate the functions of N protein and establish a basis for further exploration of the mechanism of Genomic RNA packaging. IMPORTANCE This work describes the interactions of the two RNA-binding domains of the nucleocapsid protein of a model coronavirus, mouse hepatitis virus. The main finding is that the second of the two domains plays an essential role in recognizing the RNA structure that allows the selective packaging of Genomic RNA into assembled virions.

  • Functional Analysis of the Murine Coronavirus Genomic RNA Packaging Signal
    Journal of virology, 2013
    Co-Authors: Lili Kuo, Paul S Masters
    Abstract:

    Coronaviruses selectively package Genomic RNA into assembled virions, despite the great molar excess of subGenomic RNA species that is present in infected cells. The Genomic packaging signal (PS) for the coronavirus mouse hepatitis virus (MHV) was originally identified as an element that conferred packaging capability to defective interfering RNAs. The MHV PS is an RNA structure that maps to the region of the replicase gene encoding the nonstructural protein 15 subunit of the viral replicase-transcriptase complex. To begin to understand the role and mechanism of action of the MHV PS in its native Genomic locus, we constructed viral mutants in which this cis-acting element was altered, deleted, or transposed. Our results demonstrated that the PS is pivotal in the selection of viral Genomic RNA for incorporation into virions. Mutants in which PS RNA secondary structure was disrupted or entirely ablated packaged large quantities of subGenomic RNAs, in addition to Genomic RNA. Moreover, the PS retained its function when displaced to an ectopic site in the genome. Surprisingly, the PS was not essential for MHV viability, nor did its elimination have a severe effect on viral growth. However, the PS was found to provide a distinct selective advantage to MHV. Viruses containing the PS readily outcompeted their otherwise isogenic counterparts lacking the PS.

  • an interaction between the nucleocapsid protein and a component of the replicase transcriptase complex is crucial for the infectivity of coronavirus Genomic RNA
    Journal of Virology, 2010
    Co-Authors: Kelley R. Hurst, Paul S Masters, Scott J Goebel, Priya Jayaraman
    Abstract:

    The coronavirus nucleocapsid (N) protein plays an essential role in virion assembly via interactions with the large, positive-strand RNA viral genome and the carboxy-terminal endodomain of the membrane protein (M). To learn about the functions of N protein domains in the coronavirus mouse hepatitis virus (MHV), we replaced the MHV N gene with its counterpart from the closely related bovine coronavirus (BCoV). The resulting viral mutant was severely defective, even though individual domains of the N protein responsible for N-RNA, N-M, or N-N interactions were completely interchangeable between BCoV and MHV. The lesion in the BCoV N substitution mutant could be compensated for by reverting mutations in the central, serine- and arginine-rich (SR) domain of the N protein. Surprisingly, a second class of reverting mutations were mapped to the amino terminus of a replicase subunit, nonstructural protein 3 (nsp3). A similarly defective MHV N mutant bearing an insertion of the SR region from the severe acute respiratory syndrome coronavirus N protein was rescued by the same two classes of reverting mutations. Our genetic results were corroborated by the demonstration that the expressed amino-terminal segment of nsp3 bound selectively to N protein from infected cells, and this interaction was RNA independent. Moreover, we found a direct correlation between the N-nsp3 interaction and the ability of N protein to stimulate the infectivity of transfected MHV Genomic RNA (gRNA). Our results suggest a role for this previously unknown N-nsp3 interaction in the localization of Genomic RNA to the replicase complex at an early stage of infection.

Leslie J Parent - One of the best experts on this subject based on the ideXlab platform.

  • rous sarcoma virus Genomic RNA dimerization capability in vitro is not a prerequisite for viral infectivity
    Viruses, 2020
    Co-Authors: Rebecca Kaddis J Maldonado, Leslie J Parent, Tiffiny Ryemccurdy, Christiana Binkley, Eunice C Chen, Breanna L Rice, Karin Musierforsyth
    Abstract:

    Retroviruses package their full-length, dimeric Genomic RNA (gRNA) via specific interactions between the Gag polyprotein and a “Ψ” packaging signal located in the gRNA 5′-UTR. Rous sarcoma virus (RSV) gRNA has a contiguous, well-defined Ψ element, that directs the packaging of heterologous RNAs efficiently. The simplicity of RSV Ψ makes it an informative model to examine the mechanism of retroviral gRNA packaging, which is incompletely understood. Little is known about the structure of dimerization initiation sites or specific Gag interaction sites of RSV gRNA. Using selective 2′-hydroxyl acylation analyzed by primer extension (SHAPE), we probed the secondary structure of the entire RSV 5′-leader RNA for the first time. We identified a putative bipartite dimerization initiation signal (DIS), and mutation of both sites was required to significantly reduce dimerization in vitro. These mutations failed to reduce viral replication, suggesting that in vitro dimerization results do not strictly correlate with in vivo infectivity, possibly due to additional RNA interactions that maintain the dimers in cells. UV crosslinking-coupled SHAPE (XL-SHAPE) was next used to determine Gag-induced RNA conformational changes, revealing G218 as a critical Gag contact site. Overall, our results suggest that disruption of either of the DIS sequences does not reduce virus replication and reveal specific sites of Gag–RNA interactions.

  • RNA binding domains of heterologous viral proteins substituted for basic residues in the rsv gag nc domain restore specific packaging of Genomic RNA
    Viruses, 2020
    Co-Authors: Breanna L Rice, Timothy L Lochmann, Leslie J Parent
    Abstract:

    The Rous sarcoma virus Gag polyprotein transiently traffics through the nucleus, which is required for efficient incorporation of the viral Genomic RNA (gRNA) into virus particles. Packaging of gRNA is mediated by two zinc knuckles and basic residues located in the nucleocapsid (NC) domain in Gag. To further examine the role of basic residues located downstream of the zinc knuckles in gRNA encapsidation, we used a gain-of-function approach. We replaced a basic residue cluster essential for gRNA packaging with heterologous basic residue motif (BR) with RNA-binding activity from either the HIV-1 Rev protein (Rev BR) or the HSV ICP27 protein (ICP27 BR). Compared to wild-type Gag, the mutant ICP27 BR and Rev BR Gag proteins were much more strongly localized to the nucleus and released significantly lower levels of virus particles. Surprisingly, both the ICP27 BR and Rev BR mutants packaged normal levels of gRNA per virus particle when examined in the context of a proviral vector, yet both mutants were noninfectious. These results support the hypothesis that basic residues located in the C-terminal region of NC are required for selective gRNA packaging, potentially by binding non-specifically to RNA via electrostatic interactions.

  • RNA binding domains of heterologous viral proteins substituted for basic residues in the rsv gag nc domain restore specific packaging of Genomic RNA
    bioRxiv, 2020
    Co-Authors: Breanna L Rice, Timothy L Lochmann, Leslie J Parent
    Abstract:

    The Rous sarcoma virus Gag polyprotein transiently traffics through the nucleus, which is required for efficient incorporation of the viral Genomic RNA (gRNA) into virus particles. Packaging of gRNA is mediated by two zinc knuckles and basic residues located in the nucleocapsid (NC) domain in Gag. To further examine the role of basic residues located downstream of the zinc knuckles in gRNA encapsidation, we used a gain-of-function approach. We replaced a basic residue cluster essential for gRNA packaging with heterologous basic residue motif (BR) with RNA binding activity from either the HIV-1 Rev protein (Rev BR) or the HSV ICP27 protein (ICP27 BR). Compared to wild type Gag, the mutant ICP27 BR and Rev BR Gag proteins were much more strongly localized to the nucleus and released significantly lower levels of virus particles. Surprisingly, both the ICP27 BR and Rev BR mutants packaged normal levels of gRNA per virus particle when examined in the context of a proviral vector, yet both mutants were noninfectious. These results support the hypothesis that basic residues located in the C-terminal region of NC are required for selective gRNA packaging, potentially via initial electrostatic interactions that facilitate specific binding.

  • Genomic RNA binding promotes retroviral gag protein interactions in an assembly competent conformation leading to selective genome packaging
    Biophysical Journal, 2017
    Co-Authors: Ioulia Rouzina, Leslie J Parent, Shuohui Liu, Erik D Olson, Tiffiny Ryemccurdy, Christiana Binkley, Joshuapaolo Reyes, Karin Musierforsyth
    Abstract:

    In HIV-1 infected cells, full-length viral Genomic RNA (gRNA) is selectively packaged by the HIV-1 Gag protein despite a vast excess of spliced viral and host RNAs. The mechanism of this selective packaging is incompletely understood but a region of gRNA known as “Psi” mediates specific Gag interaction. HIV-1 Gag binds Psi and non-Psi RNA with similar affinity under physiological salt concentration (∼150 mM NaCl), but the salt dependence of these two binding events differs dramatically (Webb, JA, et al, RNA 2013). HIV-1 Gag binds Psi RNA with a strong non-electrostatic binding component and a small effective charge (Zeff ∼ 5). In contrast, HIV-1 Gag binds non-Psi RNA with a very weak non-electrostatic binding component and a larger effective charge (Zeff ∼ 9). In this work, we use salt-titration binding assays to study the effect of various Gag and Psi RNA mutations on the Psi and non-Psi binding interactions of HIV-1 and Rous sarcoma virus Gag proteins. Our findings are consistent with a model in which Gag binding to cognate Psi RNA shifts the equilibrium from a non-assembling to an assembling Gag state, providing an advantage for nucleation of assembly only on gRNA.

  • Orchestrating the Selection and Packaging of Genomic RNA by Retroviruses: An Ensemble of Viral and Host Factors
    Viruses, 2016
    Co-Authors: Rebecca J. Kaddis Maldonado, Leslie J Parent
    Abstract:

    Infectious retrovirus particles contain two copies of unspliced viral RNA that serve as the viral genome. Unspliced retroviral RNA is transcribed in the nucleus by the host RNA polymerase II and has three potential fates: (1) it can be spliced into subGenomic messenger RNAs (mRNAs) for the translation of viral proteins; or it can remain unspliced to serve as either (2) the mRNA for the translation of Gag and Gag–Pol; or (3) the Genomic RNA (gRNA) that is packaged into virions. The Gag structural protein recognizes and binds the unspliced viral RNA to select it as a genome, which is selected in preference to spliced viral RNAs and cellular RNAs. In this review, we summarize the current state of understanding about how retroviral packaging is orchestrated within the cell and explore potential new mechanisms based on recent discoveries in the field. We discuss the cis-acting elements in the unspliced viral RNA and the properties of the Gag protein that are required for their interaction. In addition, we discuss the role of host factors in influencing the fate of the newly transcribed viral RNA, current models for how retroviruses distinguish unspliced viral mRNA from viral Genomic RNA, and the possible subcellular sites of Genomic RNA dimerization and selection by Gag. Although this review centers primarily on the wealth of data available for the alpharetrovirus Rous sarcoma virus, in which a discrete RNA packaging sequence has been identified, we have also summarized the cis- and trans-acting factors as well as the mechanisms governing gRNA packaging of other retroviruses for comparison.

Karin Musierforsyth - One of the best experts on this subject based on the ideXlab platform.

  • rous sarcoma virus Genomic RNA dimerization capability in vitro is not a prerequisite for viral infectivity
    Viruses, 2020
    Co-Authors: Rebecca Kaddis J Maldonado, Leslie J Parent, Tiffiny Ryemccurdy, Christiana Binkley, Eunice C Chen, Breanna L Rice, Karin Musierforsyth
    Abstract:

    Retroviruses package their full-length, dimeric Genomic RNA (gRNA) via specific interactions between the Gag polyprotein and a “Ψ” packaging signal located in the gRNA 5′-UTR. Rous sarcoma virus (RSV) gRNA has a contiguous, well-defined Ψ element, that directs the packaging of heterologous RNAs efficiently. The simplicity of RSV Ψ makes it an informative model to examine the mechanism of retroviral gRNA packaging, which is incompletely understood. Little is known about the structure of dimerization initiation sites or specific Gag interaction sites of RSV gRNA. Using selective 2′-hydroxyl acylation analyzed by primer extension (SHAPE), we probed the secondary structure of the entire RSV 5′-leader RNA for the first time. We identified a putative bipartite dimerization initiation signal (DIS), and mutation of both sites was required to significantly reduce dimerization in vitro. These mutations failed to reduce viral replication, suggesting that in vitro dimerization results do not strictly correlate with in vivo infectivity, possibly due to additional RNA interactions that maintain the dimers in cells. UV crosslinking-coupled SHAPE (XL-SHAPE) was next used to determine Gag-induced RNA conformational changes, revealing G218 as a critical Gag contact site. Overall, our results suggest that disruption of either of the DIS sequences does not reduce virus replication and reveal specific sites of Gag–RNA interactions.

  • retroviral gag protein RNA interactions implications for specific Genomic RNA packaging and virion assembly
    Seminars in Cell & Developmental Biology, 2019
    Co-Authors: Erik D Olson, Karin Musierforsyth
    Abstract:

    Abstract Retroviral Gag proteins are responsible for coordinating many aspects of virion assembly. Gag possesses two distinct nucleic acid binding domains, matrix (MA) and nucleocapsid (NC). One of the critical functions of Gag is to specifically recognize, bind, and package the retroviral Genomic RNA (gRNA) into assembling virions. Gag interactions with cellular RNAs have also been shown to regulate aspects of assembly. Recent results have shed light on the role of MA and NC domain interactions with nucleic acids, and how they jointly function to ensure packaging of the retroviral gRNA. Here, we will review the literature regarding RNA interactions with NC, MA, as well as overall mechanisms employed by Gag to interact with RNA. The discussion focuses on human immunodeficiency virus type-1, but other retroviruses will also be discussed. A model is presented combining all of the available data summarizing the various factors and layers of selection Gag employs to ensure specific gRNA packaging and correct virion assembly.

  • Genomic RNA binding promotes retroviral gag protein interactions in an assembly competent conformation leading to selective genome packaging
    Biophysical Journal, 2017
    Co-Authors: Ioulia Rouzina, Leslie J Parent, Shuohui Liu, Erik D Olson, Tiffiny Ryemccurdy, Christiana Binkley, Joshuapaolo Reyes, Karin Musierforsyth
    Abstract:

    In HIV-1 infected cells, full-length viral Genomic RNA (gRNA) is selectively packaged by the HIV-1 Gag protein despite a vast excess of spliced viral and host RNAs. The mechanism of this selective packaging is incompletely understood but a region of gRNA known as “Psi” mediates specific Gag interaction. HIV-1 Gag binds Psi and non-Psi RNA with similar affinity under physiological salt concentration (∼150 mM NaCl), but the salt dependence of these two binding events differs dramatically (Webb, JA, et al, RNA 2013). HIV-1 Gag binds Psi RNA with a strong non-electrostatic binding component and a small effective charge (Zeff ∼ 5). In contrast, HIV-1 Gag binds non-Psi RNA with a very weak non-electrostatic binding component and a larger effective charge (Zeff ∼ 9). In this work, we use salt-titration binding assays to study the effect of various Gag and Psi RNA mutations on the Psi and non-Psi binding interactions of HIV-1 and Rous sarcoma virus Gag proteins. Our findings are consistent with a model in which Gag binding to cognate Psi RNA shifts the equilibrium from a non-assembling to an assembling Gag state, providing an advantage for nucleation of assembly only on gRNA.

  • mechanistic differences between hiv 1 and siv nucleocapsid proteins and cross species hiv 1 Genomic RNA recognition
    Retrovirology, 2016
    Co-Authors: Klara Post, Robert J Gorelick, Ioulia Rouzina, Erik D Olson, Karin Musierforsyth, Nabuan M Naufer, Mark C Williams, Judith G Levin
    Abstract:

    Background The nucleocapsid (NC) domain of HIV-1 Gag is responsible for specific recognition and packaging of Genomic RNA (gRNA) into new viral particles. This occurs through specific interactions between the Gag NC domain and the Psi packaging signal in gRNA. In addition to this critical function, NC proteins are also nucleic acid (NA) chaperone proteins that facilitate NA rearrangements during reverse transcription. Although the interaction with Psi and chaperone activity of HIV-1 NC have been well characterized in vitro, little is known about simian immunodeficiency virus (SIV) NC. Non-human primates are frequently used as a platform to study retroviral infection in vivo; thus, it is important to understand underlying mechanistic differences between HIV-1 and SIV NC.

  • distinct binding interactions of hiv 1 gag to psi and non psi RNAs implications for viral Genomic RNA packaging
    RNA, 2013
    Co-Authors: Joseph A Webb, Leslie J Parent, Ioulia Rouzina, Christopher P Jones, Karin Musierforsyth
    Abstract:

    Despite the vast excess of cellular RNAs, precisely two copies of viral Genomic RNA (gRNA) are selectively packaged into new human immunodeficiency type 1 (HIV-1) particles via specific interactions between the HIV-1 Gag and the gRNA psi (ψ) packaging signal. Gag consists of the matrix (MA), capsid, nucleocapsid (NC), and p6 domains. Binding of the Gag NC domain to ψ is necessary for gRNA packaging, but the mechanism by which Gag selectively interacts with ψ is unclear. Here, we investigate the binding of NC and Gag variants to an RNA derived from ψ (Psi RNA), as well as to a non-ψ region (TARPolyA). Binding was measured as a function of salt to obtain the effective charge (Zeff) and nonelectrostatic (i.e., specific) component of binding, Kd(1M). Gag binds to Psi RNA with a dramatically reduced Kd(1M) and lower Zeff relative to TARPolyA. NC, GagΔMA, and a dimerization mutant of Gag bind TARPolyA with reduced Zeff relative to WT Gag. Mutations involving the NC zinc finger motifs of Gag or changes to the G-rich NC-binding regions of Psi RNA significantly reduce the nonelectrostatic component of binding, leading to an increase in Zeff. These results show that Gag interacts with gRNA using different binding modes; both the NC and MA domains are bound to RNA in the case of TARPolyA, whereas binding to Psi RNA involves only the NC domain. Taken together, these results suggest a novel mechanism for selective gRNA encapsidation.

Kevin M Weeks - One of the best experts on this subject based on the ideXlab platform.

  • secondary structure of the mature ex virio moloney murine leukemia virus Genomic RNA dimerization domain
    Journal of Virology, 2010
    Co-Authors: Cristina Gherghe, Robert J Gorelick, Christopher W Leonard, Kevin M Weeks
    Abstract:

    Retroviral genomes are dimeric, comprised of two sense-strand RNAs linked at their 5' ends by noncovalent base pairing and tertiary interactions. Viral maturation involves large-scale morphological changes in viral proteins and in Genomic RNA dimer structures to yield infectious virions. Structural studies have largely focused on simplified in vitro models of Genomic RNA dimers even though the relationship between these models and authentic viral RNA is unknown. We evaluate the secondary structure of the minimal dimerization domain in genomes isolated from Moloney murine leukemia virions using a quantitative and single nucleotide resolution RNA structure analysis technology (selective 2'-hydroxyl acylation analyzed by primer extension, or SHAPE). Results are consistent with an architecture in which the RNA dimer is stabilized by four primary interactions involving two sets of intermolecular base pairs and two loop-loop interactions. The dimerization domain can independently direct its own folding since heating and refolding reproduce the same structure as visualized in Genomic RNA isolated from virions. Authentic ex virio RNA has a SHAPE reactivity profile similar to that of a simplified transcript dimer generated in vitro, with the important exception of a region that appears to form a compact stem-loop only in the virion-isolated RNA. Finally, we analyze the conformational changes that accompany folding of monomers into dimers in vitro. These experiments support well-defined structural models for an authentic dimerization domain and also emphasize that many features of mature Genomic RNA dimers can be reproduced in vitro using properly designed, simplified RNAs.

  • high throughput shape analysis reveals structures in hiv 1 Genomic RNA strongly conserved across distinct biological states
    PLOS Biology, 2008
    Co-Authors: Kevin A Wilkinson, Robert J Gorelick, Alan Rein, Suzy M Vasa, Nicolas Guex, David H Mathews, Morgan C Giddings, Kevin M Weeks
    Abstract:

    Replication and pathogenesis of the human immunodeficiency virus (HIV) is tightly linked to the structure of its RNA genome, but genome structure in infectious virions is poorly understood. We invent high-throughput SHAPE (selective 2′-hydroxyl acylation analyzed by primer extension) technology, which uses many of the same tools as DNA sequencing, to quantify RNA backbone flexibility at single-nucleotide resolution and from which robust structural information can be immediately derived. We analyze the structure of HIV-1 Genomic RNA in four biologically instructive states, including the authentic viral genome inside native particles. Remarkably, given the large number of plausible local structures, the first 10% of the HIV-1 genome exists in a single, predominant conformation in all four states. We also discover that noncoding regions functioning in a regulatory role have significantly lower (p-value < 0.0001) SHAPE reactivities, and hence more structure, than do viral coding regions that function as the template for protein synthesis. By directly monitoring protein binding inside virions, we identify the RNA recognition motif for the viral nucleocapsid protein. Seven structurally homologous binding sites occur in a well-defined domain in the genome, consistent with a role in directing specific packaging of Genomic RNA into nascent virions. In addition, we identify two distinct motifs that are targets for the duplex destabilizing activity of this same protein. The nucleocapsid protein destabilizes local HIV-1 RNA structure in ways likely to facilitate initial movement both of the retroviral reverse transcriptase from its tRNA primer and of the ribosome in coding regions. Each of the three nucleocapsid interaction motifs falls in a specific genome domain, indicating that local protein interactions can be organized by the long-range architecture of an RNA. High-throughput SHAPE reveals a comprehensive view of HIV-1 RNA genome structure, and further application of this technology will make possible newly informative analysis of any RNA in a cellular transcriptome.

  • the sl1 sl2 stem loop domain is the primary determinant for stability of the gamma retroviral Genomic RNA dimer
    Journal of Biological Chemistry, 2006
    Co-Authors: Cristina Gherghe, Kevin M Weeks
    Abstract:

    Retroviral genomes are assembled from two sense-strand RNAs by noncovalent interactions at their 5' ends, forming a dimer. The RNA dimerization domain is a potential target for antiretroviral therapy and represents a compelling RNA folding problem. The fundamental dimerization unit for the Moloney murine sarcoma gamma retrovirus spans a 170-nucleotide minimal dimerization active sequence. In the dimer, two self-complementary sequences, PAL1 and PAL2, form intermolecular duplexes, and an SL1-SL2 (stem-loop) domain forms loop-loop base pairs, mediated by GACG tetraloops, and extensive tertiary interactions. To develop a framework for assembly of the retroviral RNA dimer, we quantified the stability of and established nucleotide resolution secondary structure models for sequence variants in which each motif was compromised. Base pairing and tertiary interactions between SL1-SL2 domains contribute a large free energy increment of -10 kcal/mol. In contrast, even though the PAL1 and PAL2 intermolecular duplexes span 10 and 16 bp in the dimer, respectively, they contribute only -2.5 kcal/mol to stability, roughly equal to a single new base pair. First, these results emphasize that the energetic costs for disrupting interactions in the monomer state nearly balance the PAL1 and PAL2 base pairing interactions that form in the dimer. Second, intermolecular duplex formation plays a biological role distinct from simply stabilizing the structure of the retroviral Genomic RNA dimer.

Robert J Gorelick - One of the best experts on this subject based on the ideXlab platform.

  • mechanistic differences between hiv 1 and siv nucleocapsid proteins and cross species hiv 1 Genomic RNA recognition
    Retrovirology, 2016
    Co-Authors: Klara Post, Robert J Gorelick, Ioulia Rouzina, Erik D Olson, Karin Musierforsyth, Nabuan M Naufer, Mark C Williams, Judith G Levin
    Abstract:

    Background The nucleocapsid (NC) domain of HIV-1 Gag is responsible for specific recognition and packaging of Genomic RNA (gRNA) into new viral particles. This occurs through specific interactions between the Gag NC domain and the Psi packaging signal in gRNA. In addition to this critical function, NC proteins are also nucleic acid (NA) chaperone proteins that facilitate NA rearrangements during reverse transcription. Although the interaction with Psi and chaperone activity of HIV-1 NC have been well characterized in vitro, little is known about simian immunodeficiency virus (SIV) NC. Non-human primates are frequently used as a platform to study retroviral infection in vivo; thus, it is important to understand underlying mechanistic differences between HIV-1 and SIV NC.

  • secondary structure of the mature ex virio moloney murine leukemia virus Genomic RNA dimerization domain
    Journal of Virology, 2010
    Co-Authors: Cristina Gherghe, Robert J Gorelick, Christopher W Leonard, Kevin M Weeks
    Abstract:

    Retroviral genomes are dimeric, comprised of two sense-strand RNAs linked at their 5' ends by noncovalent base pairing and tertiary interactions. Viral maturation involves large-scale morphological changes in viral proteins and in Genomic RNA dimer structures to yield infectious virions. Structural studies have largely focused on simplified in vitro models of Genomic RNA dimers even though the relationship between these models and authentic viral RNA is unknown. We evaluate the secondary structure of the minimal dimerization domain in genomes isolated from Moloney murine leukemia virions using a quantitative and single nucleotide resolution RNA structure analysis technology (selective 2'-hydroxyl acylation analyzed by primer extension, or SHAPE). Results are consistent with an architecture in which the RNA dimer is stabilized by four primary interactions involving two sets of intermolecular base pairs and two loop-loop interactions. The dimerization domain can independently direct its own folding since heating and refolding reproduce the same structure as visualized in Genomic RNA isolated from virions. Authentic ex virio RNA has a SHAPE reactivity profile similar to that of a simplified transcript dimer generated in vitro, with the important exception of a region that appears to form a compact stem-loop only in the virion-isolated RNA. Finally, we analyze the conformational changes that accompany folding of monomers into dimers in vitro. These experiments support well-defined structural models for an authentic dimerization domain and also emphasize that many features of mature Genomic RNA dimers can be reproduced in vitro using properly designed, simplified RNAs.

  • high throughput shape analysis reveals structures in hiv 1 Genomic RNA strongly conserved across distinct biological states
    PLOS Biology, 2008
    Co-Authors: Kevin A Wilkinson, Robert J Gorelick, Alan Rein, Suzy M Vasa, Nicolas Guex, David H Mathews, Morgan C Giddings, Kevin M Weeks
    Abstract:

    Replication and pathogenesis of the human immunodeficiency virus (HIV) is tightly linked to the structure of its RNA genome, but genome structure in infectious virions is poorly understood. We invent high-throughput SHAPE (selective 2′-hydroxyl acylation analyzed by primer extension) technology, which uses many of the same tools as DNA sequencing, to quantify RNA backbone flexibility at single-nucleotide resolution and from which robust structural information can be immediately derived. We analyze the structure of HIV-1 Genomic RNA in four biologically instructive states, including the authentic viral genome inside native particles. Remarkably, given the large number of plausible local structures, the first 10% of the HIV-1 genome exists in a single, predominant conformation in all four states. We also discover that noncoding regions functioning in a regulatory role have significantly lower (p-value < 0.0001) SHAPE reactivities, and hence more structure, than do viral coding regions that function as the template for protein synthesis. By directly monitoring protein binding inside virions, we identify the RNA recognition motif for the viral nucleocapsid protein. Seven structurally homologous binding sites occur in a well-defined domain in the genome, consistent with a role in directing specific packaging of Genomic RNA into nascent virions. In addition, we identify two distinct motifs that are targets for the duplex destabilizing activity of this same protein. The nucleocapsid protein destabilizes local HIV-1 RNA structure in ways likely to facilitate initial movement both of the retroviral reverse transcriptase from its tRNA primer and of the ribosome in coding regions. Each of the three nucleocapsid interaction motifs falls in a specific genome domain, indicating that local protein interactions can be organized by the long-range architecture of an RNA. High-throughput SHAPE reveals a comprehensive view of HIV-1 RNA genome structure, and further application of this technology will make possible newly informative analysis of any RNA in a cellular transcriptome.

  • human immunodeficiency virus type 1 vif protein is packaged into the nucleoprotein complex through an interaction with viral Genomic RNA
    Journal of Virology, 2001
    Co-Authors: Mohammad Ahmed Khan, Claudia Aberham, Sandra Kao, Hirofumi Akari, Robert J Gorelick, Stephan Bour, Klaus Strebel
    Abstract:

    The human immunodeficiency virus type 1 (HIV-1) Vif protein plays a critical role in the production of infectious virions. Previous studies have demonstrated the presence of small amounts of Vif in virus particles. However, Vif packaging was assumed to be nonspecific, and its functional significance has been questioned. We now report that packaging of Vif is dependent on the packaging of viral Genomic RNA in both permissive and restrictive HIV-1 target cells. Mutations in the nucleocapsid zinc finger domains that abrogate packaging of viral Genomic RNA abolished packaging of Vif. Additionally, an RNA packaging-defective virus exhibited significantly reduced packaging of Vif. Finally, deletion of a putative RNA-interacting domain in Vif abolished packaging of Vif into virions. Virion-associated Vif was resistant to detergent extraction and copurified with components of the viral nucleoprotein complex and functional reverse transcription complexes. Thus, Vif is specifically packaged into virions as a component of the viral nucleoprotein complex. Our data suggest that the specific association of Vif with the viral nucleoprotein complex might be functionally significant and could be a critical requirement for infectivity of viruses produced from restrictive host cells.