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1.
Viruses ; 14(12)2022 12 03.
Article in English | MEDLINE | ID: covidwho-2143731

ABSTRACT

Positive-strand RNA virus RNA genome replication occurs in membrane-associated RNA replication complexes (RCs). Nodavirus RCs are outer mitochondrial membrane invaginations whose necked openings to the cytosol are "crowned" by a 12-fold symmetrical proteinaceous ring that functions as the main engine of RNA replication. Similar protein crowns recently visualized at the openings of alphavirus and coronavirus RCs highlight their broad conservation and functional importance. Using cryo-EM tomography, we earlier showed that the major nodavirus crown constituent is viral protein A, whose polymerase, RNA capping, membrane interaction and multimerization domains drive RC formation and function. Other viral proteins are strong candidates for unassigned EM density in the crown. RNA-binding RNAi inhibitor protein B2 co-immunoprecipitates with protein A and could form crown subdomains that protect nascent viral RNA and dsRNA templates. Capsid protein may interact with the crown since nodavirus virion assembly has spatial and other links to RNA replication. Using cryoelectron tomography and complementary approaches, we show that, even when formed in mammalian cells, nodavirus RC crowns generated without B2 and capsid proteins are functional and structurally indistinguishable from mature crowns in infected Drosophila cells expressing all viral proteins. Thus, the only nodaviral factors essential to form functional RCs and crowns are RNA replication protein A and an RNA template. We also resolve apparent conflicts in prior results on B2 localization in infected cells, revealing at least two distinguishable pools of B2. The results have significant implications for crown structure, assembly, function and control as an antiviral target.


Subject(s)
RNA Replication , Viral Proteins , Animals , Viral Proteins/genetics , Virus Replication , Virus Assembly , Capsid Proteins/genetics , Drosophila/genetics , RNA, Double-Stranded , RNA, Viral/genetics , RNA, Viral/metabolism , Mammals
2.
Annu Rev Virol ; 9(1): 193-212, 2022 09 29.
Article in English | MEDLINE | ID: covidwho-1861676

ABSTRACT

Positive-strand RNA viruses, the largest genetic class of eukaryotic viruses, include coronaviruses and many other established and emerging pathogens. A major target for understanding and controlling these viruses is their genome replication, which occurs in virus-induced membrane vesicles that organize replication steps and protect double-stranded RNA intermediates from innate immune recognition. The structure of these complexes has been greatly illuminated by recent cryo-electron microscope tomography studies with several viruses. One key finding in diverse systems is the organization of crucial viral RNA replication factors in multimeric rings or crowns that among other functions serve as exit channels gating release of progeny genomes to the cytosol for translation and encapsidation. Emerging results suggest that these crowns serve additional important purposes in replication complex assembly, function, and interaction with downstream processes such as encapsidation. The findings provide insights into viral function and evolution and new bases for understanding, controlling, and engineering positive-strand RNA viruses.


Subject(s)
RNA, Viral , Virus Replication , Electron Microscope Tomography , Positive-Strand RNA Viruses , RNA, Double-Stranded/genetics , RNA, Viral/genetics
3.
Cell ; 184(1): 133-148.e20, 2021 01 07.
Article in English | MEDLINE | ID: covidwho-987228

ABSTRACT

Flaviviruses pose a constant threat to human health. These RNA viruses are transmitted by the bite of infected mosquitoes and ticks and regularly cause outbreaks. To identify host factors required for flavivirus infection, we performed full-genome loss of function CRISPR-Cas9 screens. Based on these results, we focused our efforts on characterizing the roles that TMEM41B and VMP1 play in the virus replication cycle. Our mechanistic studies on TMEM41B revealed that all members of the Flaviviridae family that we tested require TMEM41B. We tested 12 additional virus families and found that SARS-CoV-2 of the Coronaviridae also required TMEM41B for infection. Remarkably, single nucleotide polymorphisms present at nearly 20% in East Asian populations reduce flavivirus infection. Based on our mechanistic studies, we propose that TMEM41B is recruited to flavivirus RNA replication complexes to facilitate membrane curvature, which creates a protected environment for viral genome replication.


Subject(s)
Flavivirus Infections/genetics , Flavivirus/physiology , Membrane Proteins/metabolism , Animals , Asian People/genetics , Autophagy , COVID-19/genetics , COVID-19/metabolism , COVID-19/virology , CRISPR-Cas Systems , Cell Line , Flavivirus Infections/immunology , Flavivirus Infections/metabolism , Flavivirus Infections/virology , Gene Knockout Techniques , Genome-Wide Association Study , Host-Pathogen Interactions , Humans , Immunity, Innate , Membrane Proteins/genetics , Polymorphism, Single Nucleotide , SARS-CoV-2/physiology , Virus Replication , Yellow fever virus/physiology , Zika Virus/physiology
4.
J Virol Methods ; 288: 114013, 2021 02.
Article in English | MEDLINE | ID: covidwho-912400

ABSTRACT

The Severe Acute Respiratory Syndrome Coronavirus (SARS-CoV) emergence in 2003 introduced the first serious human coronavirus pathogen to an unprepared world. To control emerging viruses, existing successful anti(retro)viral therapies can inspire antiviral strategies, as conserved viral enzymes (eg., viral proteases and RNA-dependent RNA polymerases) represent targets of choice. Since 2003, much effort has been expended in the characterization of the SARS-CoV replication/transcription machinery. Until recently, a pure and highly active preparation of SARS-CoV recombinant RNA synthesis machinery was not available, impeding target-based high throughput screening of drug candidates against this viral family. The current Severe Acute Respiratory Syndrome Coronavirus-2 (SARS-CoV-2) pandemic revealed a new pathogen whose RNA synthesis machinery is highly (>96 % aa identity) homologous to SARS-CoV. This phylogenetic relatedness highlights the potential use of conserved replication enzymes to discover inhibitors against this significant pathogen, which in turn, contributes to scientific preparedness against emerging viruses. Here, we report the use of a purified and highly active SARS-CoV replication/transcription complex (RTC) to set-up a high-throughput screening of Coronavirus RNA synthesis inhibitors. The screening of a small (1520 compounds) chemical library of FDA-approved drugs demonstrates the robustness of our assay and will allow to speed-up drug discovery against the SARS-CoV-2.


Subject(s)
Fluorescent Dyes , High-Throughput Screening Assays , RNA, Viral , RNA-Dependent RNA Polymerase/metabolism , Severe Acute Respiratory Syndrome/diagnosis , Severe Acute Respiratory Syndrome/genetics , Severe acute respiratory syndrome-related coronavirus/genetics , Antiviral Agents/pharmacology , Dose-Response Relationship, Drug , Drug Evaluation, Preclinical , Enzyme Activation , High-Throughput Screening Assays/methods , High-Throughput Screening Assays/standards , Humans , Inhibitory Concentration 50 , RNA, Messenger/genetics , Templates, Genetic
5.
Ann Agric Environ Med ; 27(2): 175-183, 2020 Jun 19.
Article in English | MEDLINE | ID: covidwho-614683

ABSTRACT

Coronaviruses (CoVs) are positive-strand RNA viruses with the largest genome among all RNA viruses. They are able to infect many host, such as mammals or birds. Whereas CoVs were identified 1930s, they became known again in 2003 as the agents of the Severe Acute Respiratory Syndrome (SARS). The spike protein is thought to be essential in the process of CoVs entry, because it is associated with the binding to the receptor on the host cell. It is also involved in cell tropism and pathogenesis. Receptor recognition is the crucial step in the infection. CoVs are able to bind a variety of receptors, although the selection of receptor remains unclear. Coronaviruses were initially believed to enter cells by fusion with the plasma membrane. Further studies demonstrated that many of them involve endocytosis through clathrin-dependent, caveolae-dependent, clathrin-independent, as well as caveolae-independent mechanisms. The aim of this review is to summarise current knowledge about coronaviruses, focussing especially on CoVs entry into the host cell. Advances in understanding coronaviruses replication strategy and the functioning of the replicative structures are also highlighted. The development of host-directed antiviral therapy seems to be a promising way to treat infections with SARS-CoV or other pathogenic coronaviruses. There is still much to be discovered in the inventory of pro- and anti-viral host factors relevant for CoVs replication. The latest pandemic danger, originating from China, has given our previously prepared work even more of topicality.


Subject(s)
Cell Membrane/virology , Coronavirus Infections/virology , Coronavirus/physiology , Virus Internalization , Animals , Coronavirus/genetics , Humans , Viral Proteins/genetics , Viral Proteins/metabolism , Viral Tropism
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