Your browser doesn't support javascript.
loading
Mostrar: 20 | 50 | 100
Resultados 1 - 7 de 7
Filtrar
Mais filtros

Base de dados
Tipo de documento
Intervalo de ano de publicação
1.
Subcell Biochem ; 104: 181-205, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38963488

RESUMO

Tailed double-stranded DNA bacteriophage employs a protein terminase motor to package their genome into a preformed protein shell-a system shared with eukaryotic dsDNA viruses such as herpesviruses. DNA packaging motor proteins represent excellent targets for antiviral therapy, with Letermovir, which binds Cytomegalovirus terminase, already licensed as an effective prophylaxis. In the realm of bacterial viruses, these DNA packaging motors comprise three protein constituents: the portal protein, small terminase and large terminase. The portal protein guards the passage of DNA into the preformed protein shell and acts as a protein interaction hub throughout viral assembly. Small terminase recognises the viral DNA and recruits large terminase, which in turn pumps DNA in an ATP-dependent manner. Large terminase also cleaves DNA at the termination of packaging. Multiple high-resolution structures of each component have been resolved for different phages, but it is only more recently that the field has moved towards cryo-EM reconstructions of protein complexes. In conjunction with highly informative single-particle studies of packaging kinetics, these structures have begun to inspire models for the packaging process and its place among other DNA machines.


Assuntos
DNA Viral , Proteínas Virais , DNA Viral/genética , DNA Viral/metabolismo , Proteínas Virais/metabolismo , Proteínas Virais/genética , Endodesoxirribonucleases/metabolismo , Endodesoxirribonucleases/genética , Empacotamento do Genoma Viral/fisiologia , Empacotamento do DNA , Bacteriófagos/genética , Bacteriófagos/fisiologia , Bacteriófagos/metabolismo , Genoma Viral
2.
PLoS Biol ; 19(10): e3001425, 2021 10.
Artigo em Inglês | MEDLINE | ID: mdl-34634033

RESUMO

The Severe Acute Respiratory Syndrome Coronavirus 2 (SARS-CoV-2) infection causes Coronavirus Disease 2019 (COVID-19), a pandemic that seriously threatens global health. SARS-CoV-2 propagates by packaging its RNA genome into membrane enclosures in host cells. The packaging of the viral genome into the nascent virion is mediated by the nucleocapsid (N) protein, but the underlying mechanism remains unclear. Here, we show that the N protein forms biomolecular condensates with viral genomic RNA both in vitro and in mammalian cells. While the N protein forms spherical assemblies with homopolymeric RNA substrates that do not form base pairing interactions, it forms asymmetric condensates with viral RNA strands. Cross-linking mass spectrometry (CLMS) identified a region that drives interactions between N proteins in condensates, and deletion of this region disrupts phase separation. We also identified small molecules that alter the size and shape of N protein condensates and inhibit the proliferation of SARS-CoV-2 in infected cells. These results suggest that the N protein may utilize biomolecular condensation to package the SARS-CoV-2 RNA genome into a viral particle.


Assuntos
COVID-19/virologia , Proteínas do Nucleocapsídeo de Coronavírus/metabolismo , SARS-CoV-2/metabolismo , Empacotamento do Genoma Viral/fisiologia , Animais , COVID-19/metabolismo , Linhagem Celular Tumoral , Chlorocebus aethiops , Genoma Viral , Genômica , Células HEK293 , Humanos , Proteínas do Nucleocapsídeo/genética , Fosfoproteínas/metabolismo , Domínios Proteicos , RNA Viral/genética , SARS-CoV-2/genética , Células Vero
3.
Philos Trans A Math Phys Eng Sci ; 379(2201): 20200111, 2021 Jul 12.
Artigo em Inglês | MEDLINE | ID: mdl-34024128

RESUMO

We study equilibrium configurations of hexagonal columnar liquid crystals in the context of characterizing packing structures of bacteriophage viruses in a protein capsid. These are viruses that infect bacteria and are currently the focus of intense research efforts, with the goal of finding new therapies for bacteria-resistant antibiotics. The energy that we propose consists of the Oseen-Frank free energy of nematic liquid crystals that penalizes bending of the columnar directions, in addition to the cross-sectional elastic energy accounting for distortions of the transverse hexagonal structure; we also consider the isotropic contribution of the core and the energy of the unknown interface between the outer ordered region of the capsid and the inner disordered core. The problem becomes of free boundary type, with constraints. We show that the concentric, azimuthal, spool-like configuration is the absolute minimizer. Moreover, we present examples of toroidal structures formed by DNA in free solution and compare them with the analogous ones occurring in experiments with other types of lyotropic liquid crystals, such as food dyes and additives. This article is part of the theme issue 'Topics in mathematical design of complex materials'.


Assuntos
Bacteriófagos/ultraestrutura , Cristais Líquidos/ultraestrutura , Bacteriófagos/química , Bacteriófagos/genética , Fenômenos Biofísicos , Proteínas do Capsídeo/química , Proteínas do Capsídeo/ultraestrutura , Microscopia Crioeletrônica , DNA Viral/química , DNA Viral/genética , DNA Viral/ultraestrutura , Cristais Líquidos/química , Conceitos Matemáticos , Modelos Biológicos , Modelos Moleculares , Termodinâmica , Empacotamento do Genoma Viral/genética , Empacotamento do Genoma Viral/fisiologia
4.
Nat Rev Microbiol ; 19(4): 272-282, 2021 04.
Artigo em Inglês | MEDLINE | ID: mdl-33024309

RESUMO

Traditionally, the viral replication cycle is envisioned as a single, well-defined loop with four major steps: attachment and entry into a target cell, replication of the viral genome, maturation of viral proteins and genome packaging into infectious progeny, and egress and dissemination to the next target cell. However, for many viruses, a growing body of evidence points towards extreme heterogeneity in each of these steps. In this Review, we reassess the major steps of the viral replication cycle by highlighting recent advances that show considerable variability during viral infection. First, we discuss heterogeneity in entry receptors, followed by a discussion on error-prone and low-fidelity polymerases and their impact on viral diversity. Next, we cover the implications of heterogeneity in genome packaging and assembly on virion morphology. Last, we explore alternative egress mechanisms, including tunnelling nanotubes and host microvesicles. In summary, we discuss the implications of viral phenotypic, morphological and genetic heterogeneity on pathogenesis and medicine. This Review highlights common themes and unique features that give nuance to the viral replication cycle.


Assuntos
Empacotamento do Genoma Viral/fisiologia , Vírus/crescimento & desenvolvimento , Vírus/metabolismo , Animais , Interações Hospedeiro-Patógeno/fisiologia , Humanos , Receptores Virais/metabolismo , Montagem de Vírus/fisiologia , Internalização do Vírus , Replicação Viral/fisiologia , Vírus/genética
5.
Nat Commun ; 12(1): 6548, 2021 11 12.
Artigo em Inglês | MEDLINE | ID: mdl-34772936

RESUMO

Multi-subunit ring-ATPases carry out a myriad of biological functions, including genome packaging in viruses. Though the basic structures and functions of these motors have been well-established, the mechanisms of ATPase firing and motor coordination are poorly understood. Here, using single-molecule fluorescence, we determine that the active bacteriophage T4 DNA packaging motor consists of five subunits of gp17. By systematically doping motors with an ATPase-defective subunit and selecting single motors containing a precise number of active or inactive subunits, we find that the packaging motor can tolerate an inactive subunit. However, motors containing one or more inactive subunits exhibit fewer DNA engagements, a higher failure rate in encapsidation, reduced packaging velocity, and increased pausing. These findings suggest a DNA packaging model in which the motor, by re-adjusting its grip on DNA, can skip an inactive subunit and resume DNA translocation, suggesting that strict coordination amongst motor subunits of packaging motors is not crucial for function.


Assuntos
Adenosina Trifosfatases/metabolismo , Empacotamento do Genoma Viral/fisiologia , Adenosina Trifosfatases/genética , Bacteriófago T4/genética , Bacteriófago T4/metabolismo , Empacotamento do DNA/genética , Empacotamento do DNA/fisiologia , DNA Viral/genética , Empacotamento do Genoma Viral/genética , Proteínas Virais/genética , Proteínas Virais/metabolismo , Montagem de Vírus/genética , Montagem de Vírus/fisiologia
6.
Viruses ; 13(6)2021 06 08.
Artigo em Inglês | MEDLINE | ID: mdl-34201386

RESUMO

Packaging of segmented, double-stranded RNA viral genomes requires coordination of viral proteins and RNA segments. For mammalian orthoreovirus (reovirus), evidence suggests either all ten or zero viral RNA segments are simultaneously packaged in a highly coordinated process hypothesized to exclude host RNA. Accordingly, reovirus generates genome-containing virions and "genomeless" top component particles. Whether reovirus virions or top component particles package host RNA is unknown. To gain insight into reovirus packaging potential and mechanisms, we employed next-generation RNA-sequencing to define the RNA content of enriched reovirus particles. Reovirus virions exclusively packaged viral double-stranded RNA. In contrast, reovirus top component particles contained similar proportions but reduced amounts of viral double-stranded RNA and were selectively enriched for numerous host RNA species, especially short, non-polyadenylated transcripts. Host RNA selection was not dependent on RNA abundance in the cell, and specifically enriched host RNAs varied for two reovirus strains and were not selected solely by the viral RNA polymerase. Collectively, these findings indicate that genome packaging into reovirus virions is exquisitely selective, while incorporation of host RNAs into top component particles is differentially selective and may contribute to or result from inefficient viral RNA packaging.


Assuntos
Interações entre Hospedeiro e Microrganismos/genética , RNA de Cadeia Dupla/metabolismo , Reoviridae/genética , Empacotamento do Genoma Viral/genética , Vírion/genética , Vírion/fisiologia , Animais , Linhagem Celular , Genoma Viral , Camundongos , RNA-Seq , Reoviridae/fisiologia , Empacotamento do Genoma Viral/fisiologia , Proteínas Virais/genética , Proteínas Virais/metabolismo
7.
Biochimie ; 179: 135-145, 2020 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-32987107

RESUMO

The human immunodeficiency virus type 1 (HIV-1) Gag recognizes viral packaging signal (Psi) specifically via its nucleocapsid (NC) domain, resulting in the encapsidation of two copies of genomic RNA (gRNA) into the viral particle. The NCp7, which is cleaved from Gag during viral maturation, is a nucleic acid chaperone, coating and protecting the gRNA. In this study, an RT-qPCR-based approach was developed to quantitatively compare the Psi-selectivity of Gag and NCp7 in the presence of bacterial or 293T total RNAs. The binding affinity of Gag and NCp7 to the stem-loop (SL) 3 of Psi was also compared using surface plasmon resonance. We found that Gag selected more Psi-RNA than NCp7 from both E. coli BL21 (DE3) and in vitro binding reactions, and Gag bound to SL3-RNA with a higher affinity than NCp7. Moreover, Gag contained two Zn2+ whereas NCp7 contained one. The N-terminal zinc-finger motif of NCp7 lost most of its Zn2+-binding activity. Deletion of N-terminal amino acids 1-11 of NCp7 resulted in increased Psi-selectivity, SL3-affinity and Zn2+ content. These results indicated that Zn2+ coordination of Gag is critical for Psi-binding and selection. Removal of Zn2+ from the first zinc-finger motif during or after Gag cleavage to generate mature NCp7 might serve as a switch to regulate the functions of Gag NC domain and mature NCp7. Our study will be helpful to elucidate the important roles that Zn2+ plays in the viral life cycle, and may benefit further investigations of the function of HIV-1 Gag and NCp7.


Assuntos
Sequência de Empacotamento Viral/fisiologia , Produtos do Gene gag do Vírus da Imunodeficiência Humana/metabolismo , Escherichia coli/genética , Células HEK293 , HIV-1/metabolismo , Humanos , Cinética , Ligação Proteica , RNA Viral/metabolismo , Empacotamento do Genoma Viral/fisiologia , Zinco/metabolismo , Dedos de Zinco/fisiologia
SELEÇÃO DE REFERÊNCIAS
Detalhe da pesquisa