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Ahlquist, P.

Publications and source records attributed to Ahlquist, P..

4 recordsLinked to original sources

Genetic complementation reveals structure-function links in nodavirus RNA replication complex crowns

Positive-strand RNA viruses replicate their RNA genomes in virus-induced, membrane-bounded organelles. As first found for nodaviruses, the necked cytosolic portals of these organelles bear ringed "crown" complexes of viral RNA replication proteins that drive synthesis, capping and release of new RNA genomes. Nodavirus crowns contain two 12-mer rings of viral protein A with C-proximal polymerase domains stacked. In the basal ring, protein As N-proximal RNA capping domains form a central, toroidal floor, while in the apical ring these domains extend radially outward. A third protein A conformation provides a putative central Pol domain interacting with the viral dsRNA replication intermediate in a vesicle beneath the crown. Protein As multiple conformations likely differentially contribute to crown assembly, RNA template recruitment, (-) and (+) strand synthesis, RNA capping, and progeny RNA release. Protein As high copy numbers may provide robustness to these processes. To test such concepts, we combined mutational, complementation and functional analyses. Strong complementation between null mutants in protein As polymerase and RNA capping active sites showed that they operate in independent protein A copies, likely at distinct sites. Thus, neither function is required in all protein A copies, nor are both required in any single copy. Lack of complementation between mutants in distinct RNA capping steps implied that major RNA capping steps must be performed in the same protein. Although RNA polymerase and capping activity were not required in all protein A subunits, none of a series of deletions across these domains were complementable, showing the importance of structural and other requirements for crown assembly, etc.. Surprisingly, RNA replication was more sensitive to depleting the fraction of subunits retaining protein As C-terminal intrinsically disordered region than polymerase or capping activity. These and other results reveal and illuminate the cooperative, interdependent nature of protein As diverse functions. Author summaryPositive-strand RNA viruses represent the largest genetic class of viruses and include human, animal, and plant pathogens causing major agricultural, economic, and environmental consequences. Using no DNA intermediates to multiply their RNA genomes, these viruses modify cellular membranes into novel, infection-specific RNA replication organelles. Emerging results show that RNA replication proteins encoded by many or most of these viruses assemble into ringed, crown-like viral protein complexes gating portals to these compartments. We previously revealed that nodavirus crowns contain two stacked 12-mer rings of viral replicase protein A, which contains polymerase, RNA capping and other domains. The nodavirus experiments reported here are among the earliest explorations in cells to illuminate the functions and interactions of such multi-domain RNA replication proteins in the context of their highly multimeric crowns. Critical questions include whether all domains and interactions are required in all protein A conformations, whether protein A multiplicity might provide dose-responsive redundancy for any crown functions, or whether defects in individual protein copies might inhibit or even poison operation of the entire crown. The results have significant implications for positive-strand RNA virus biology and thus for efforts toward virus control and beneficial uses.

microbiology↗

MPAC: a computational framework for inferring cancer pathway activities from multi-omic data

Fully capturing cellular state requires examining genomic, epigenomic, transcriptomic, proteomic, and other assays for a biological sample and comprehensive computational modeling to reason with the complex and sometimes conflicting measurements. Modeling these so-called multi-omic data is especially beneficial in disease analysis, where observations across omic data types may reveal unexpected patient groupings and inform clinical outcomes and treatments. We present Multi-omic Pathway Analysis of Cells (MPAC), a computational framework that interprets multi-omic data through prior knowledge from biological pathways. MPAC leverages network relationships encoded in pathways through a factor graph to infer consensus activity levels for proteins and associated pathway entities from multi-omic data, runs permutation testing to eliminate spurious activity predictions, and groups biological samples by pathway activities to allow identifying and prioritizing proteins with potential clinical relevance, e.g., associated with patient prognosis. Using DNA copy number alteration and RNA-seq data from head and neck squamous cell carcinoma patients from The Cancer Genome Atlas as an example, we demonstrate that MPAC predicts a patient subgroup related to immune responses not identified by analysis with either input omic data type alone. Key proteins identified via this subgroup have pathway activities related to clinical outcome as well as immune cell compositions. Our MPAC R package, available at https://bioconductor.org/packages/MPAC, enables similar multi-omic analyses on new datasets.

bioinformatics↗

Exploiting rodent cell blocks for intrinsic resistance to HIV-1 gene expression in human T cells

HIV-1 virion production is inefficient in cells derived from mice and other rodents reflecting cell-intrinsic defects to interactions between the HIV-1 auxiliary proteins Tat and Rev and host dependency factors CCNT1 (Cyclin T1) and XPO1 (Exportin-1, also known as CRM1), respectively. In human cells, Tat binds CCNT1 to enhance viral RNA transcription and Rev recruits XPO1 to mediate the nuclear export of intron-containing viral RNA. In mouse cells, Tats interactions with CCNT1 are inefficient, mapped to a single species-specific residue Y261 instead of C261 in human. Rev interacts poorly with murine XPO1, mapped to a trio of amino acids T411/V412/S414 instead of P411/M412/F414 in humans. To determine if these discrete species-specific regions of otherwise conserved housekeeping proteins represent viable targets for inhibiting Tat and Rev function in humans, herein we recoded ("mousified") each in human CD4+ T cells using precision CRISPR/Cas9-facilitated gene editing. Both edits yielded cells refractory to Rev or Tat activity, respectively, with isolated, isogenic CCNT1.C261Y cell lines remarkable in their capacity to exhibit near total inactivation of viral gene expression for all X4 and R5-tropic HIV-1 strains tested, and even the more distantly related lentiviruses including HIV-2 and SIVagm. These studies validate minor and naturally-occurring, species-specific differences in otherwise conserved human host factors as compelling targets for achieving broad-acting cell-intrinsic resistance to HIVs post-integration phases. ImportanceUnlike humans, mice are unable to support HIV-1 infection. This is due, in part, to a constellation of defined minor, species-specific differences in conserved host proteins needed for viral gene expression. Here, we used precision CRISPR/Cas9 editing to engineer "mousified" versions of two of these proteins, CCNT1 and XPO1, in human T cells. CCNT1 and XPO1 are essential for efficient HIV-1 transcription and viral RNA transport, respectively, making them intriguing targets for gene-based inactivation of virus replication. Targeting either gene yielded antiviral phenotypes, with isogenic CCNT1-modified cell lines confirmed to exhibit potent, durable, and broad-spectrum resistance to HIV-1 and other pathogenic lentiviruses, and with no discernible impact on host cells. These results provide proof of concept for targeting CCNT1 (and potentially XPO1) in the context of one or more functional HIV-1 cure strategies.

microbiology↗

Nodavirus RNA Replication Crown Architecture Reveals Proto-Crown Precursor and Viral Protein A Conformational Switching

Positive-strand RNA viruses replicate their genomes in virus-induced membrane vesicles, and the resulting RNA replication complexes are a major target for virus control. Nodavirus studies first revealed viral RNA replication proteins forming a 12-fold symmetric "crown" at the vesicle opening to the cytosol, an arrangement recently confirmed to extend to distantly related alphaviruses. Using cryo-electron microscopy (cryo-EM), we show that mature nodavirus crowns comprise two stacked 12-mer rings of multi-domain viral RNA replication protein A. Each ring contains an ~19 nm circle of C-proximal polymerase domains, differentiated by strikingly diverged positions of N-proximal RNA capping/membrane binding domains. The lower ring is a "proto-crown" precursor that assembles prior to RNA template recruitment, RNA synthesis and replication vesicle formation. In this proto-crown, the N-proximal segments interact to form a toroidal central floor, whose 3.1 [A] resolution structure reveals many mechanistic details of the RNA capping/membrane binding domains. In the upper ring, cryo-EM fitting indicates that the N-proximal domains extend radially outside the polymerases, forming separated, membrane-binding "legs." The polymerase and N-proximal domains are connected by a long linker accommodating the conformational switch between the two rings and possibly also polymerase movements associated with RNA synthesis and non-symmetric electron density in the lower center of mature crowns. The results reveal remarkable viral protein multifunctionality, conformational flexibility and evolutionary plasticity and new insights into (+)RNA virus replication and control. SignificancePositive-strand RNA viruses - including coronaviruses, alphaviruses, flaviviruses and many other medically and economically important pathogens - replicate their RNA genomes by virus-encoded machinery that has been poorly characterized. Using an advanced nodavirus model, we identify a major precursor in RNA replication complex assembly and show it to be a 12-mer ring of viral RNA replication protein A, whose single particle cryo-EM structure reveals functional features of its membrane interaction, assembly, polymerase and RNA capping domains. We further show that fully functional RNA replication complexes acquire a second 12-mer ring of protein A in alternate conformation atop the first, and a central density likely to represent another polymerase conformation. These findings provide strong foundations for understanding, controlling and beneficially using such viruses.

microbiology↗