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1.
Nat Commun ; 14(1): 5885, 2023 09 21.
Artigo em Inglês | MEDLINE | ID: mdl-37735161

RESUMO

Following endocytosis, enveloped viruses employ the changing environment of maturing endosomes as cues to promote endosomal escape, a process often mediated by viral glycoproteins. We previously showed that both high [K+] and low pH promote entry of Bunyamwera virus (BUNV), the prototypical bunyavirus. Here, we use sub-tomogram averaging and AlphaFold, to generate a pseudo-atomic model of the whole BUNV glycoprotein envelope. We unambiguously locate the Gc fusion domain and its chaperone Gn within the floor domain of the spike. Furthermore, viral incubation at low pH and high [K+], reminiscent of endocytic conditions, results in a dramatic rearrangement of the BUNV envelope. Structural and biochemical assays indicate that pH 6.3/K+ in the absence of a target membrane elicits a fusion-capable triggered intermediate state of BUNV GPs; but the same conditions induce fusion when target membranes are present. Taken together, we provide mechanistic understanding of the requirements for bunyavirus entry.


Assuntos
Vírus Bunyamwera , Orthobunyavirus , Bioensaio , Sinais (Psicologia) , Concentração de Íons de Hidrogênio
2.
mBio ; 13(4): e0140522, 2022 08 30.
Artigo em Inglês | MEDLINE | ID: mdl-35762594

RESUMO

The Bunyavirales order is the largest group of negative-sense RNA viruses, containing many lethal human pathogens for which approved anti-infective measures are not available. The bunyavirus genome consists of multiple negative-sense RNA segments enwrapped by the virus-encoded nucleocapsid protein (NP), which together with the viral polymerase form ribonucleoproteins (RNPs). RNPs represent substrates for RNA synthesis and virion assembly, which require inherent flexibility, consistent with the appearance of RNPs spilled from virions. These observations have resulted in conflicting models describing the overall RNP architecture. Here, we purified RNPs from Bunyamwera virus (BUNV), the prototypical orthobunyavirus. The lengths of purified RNPs imaged by negative staining resulted in 3 populations of RNPs, suggesting that RNPs possess a consistent method of condensation. Employing microscopy approaches, we conclusively show that the NP portion of BUNV RNPs is helical. Furthermore, we present a pseudo-atomic model for this portion based on a cryo-electron microscopy average at 13 Å resolution, which allowed us to fit the BUNV NP crystal structure by molecular dynamics. This model was confirmed by NP mutagenesis using a mini-genome system. The model shows that adjacent NP monomers in the RNP chain interact laterally through flexible N- and C-terminal arms only, with no longitudinal helix-stabilizing interactions, thus providing a potential model for the molecular basis for RNP flexibility. Excessive RNase treatment disrupts native RNPs, suggesting that RNA was key in maintaining the RNP structure. Overall, this work will inform studies on bunyaviral RNP assembly, packaging, and RNA replication, and aid in future antiviral strategies. IMPORTANCE Bunyaviruses are emerging RNA viruses that cause significant disease and economic burden and for which vaccines or therapies approved for humans are not available. The bunyavirus genome is wrapped up by the nucleoprotein (NP) and interacts with the viral polymerase, forming a ribonucleoprotein (RNP). This is the only form of the genome active for viral replication and assembly. However, until now how NPs are organized within an RNP was not known for any orthobunyavirus. Here, we purified RNPs from the prototypical orthobunyavirus, Bunyamwera virus, and employed microscopy approaches to show that the NP portion of the RNP was helical. We then combined our helical average with the known structure of an NP monomer, generating a pseudo-atomic model of this region. This arrangement allowed the RNPs to be highly flexible, which was critical for several stages of the viral replication cycle, such as segment circularization.


Assuntos
Orthobunyavirus , Ribonucleoproteínas , Microscopia Crioeletrônica , Humanos , Proteínas do Nucleocapsídeo/metabolismo , Orthobunyavirus/genética , Orthobunyavirus/metabolismo , RNA/metabolismo , RNA Viral/metabolismo , Ribonucleoproteínas/metabolismo
3.
Thorax ; 76(1): 64-72, 2021 01.
Artigo em Inglês | MEDLINE | ID: mdl-33109690

RESUMO

INTRODUCTION: Human respiratory syncytial virus (HRSV) is a common cause of respiratory tract infections (RTIs) globally and is one of the most fatal infectious diseases for infants in developing countries. Of those infected, 25%-40% aged ≤1 year develop severe lower RTIs leading to pneumonia and bronchiolitis, with ~10% requiring hospitalisation. Evidence also suggests that HRSV infection early in life is a major cause of adult asthma. There is no HRSV vaccine, and the only clinically approved treatment is immunoprophylaxis that is expensive and only moderately effective. New anti-HRSV therapeutic strategies are therefore urgently required. METHODS: It is now established that viruses require cellular ion channel functionality to infect cells. Here, we infected human lung epithelial cell lines and ex vivo human lung slices with HRSV in the presence of a defined panel of chloride (Cl-) channel modulators to investigate their role during the HRSV life-cycle. RESULTS: We demonstrate the requirement for TMEM16A, a calcium-activated Cl- channel, for HRSV infection. Time-of-addition assays revealed that the TMEM16A blockers inhibit HRSV at a postentry stage of the virus life-cycle, showing activity as a postexposure prophylaxis. Another important negative-sense RNA respiratory pathogen influenza virus was also inhibited by the TMEM16A-specific inhibitor T16Ainh-A01. DISCUSSION: These findings reveal TMEM16A as an exciting target for future host-directed antiviral therapeutics.


Assuntos
Anoctamina-1/farmacologia , Anticorpos Antivirais/imunologia , Proteínas de Neoplasias/farmacologia , Infecções por Vírus Respiratório Sincicial/tratamento farmacológico , Vírus Sincicial Respiratório Humano/imunologia , Células Cultivadas , Humanos , Pulmão/metabolismo , Pulmão/patologia , Pulmão/virologia , Infecções por Vírus Respiratório Sincicial/metabolismo , Infecções por Vírus Respiratório Sincicial/virologia
4.
Viruses ; 12(8)2020 08 03.
Artigo em Inglês | MEDLINE | ID: mdl-32756358

RESUMO

Ion channels play key roles in almost all facets of cellular physiology and have emerged as key host cell factors for a multitude of viral infections. A catalogue of ion channel-blocking drugs have been shown to possess antiviral activity, some of which are in widespread human usage for ion channel-related diseases, highlighting new potential for drug repurposing. The emergence of ion channel-virus interactions has also revealed the intriguing possibility that channelopathies may explain some commonly observed virus induced pathologies. This field is rapidly evolving and an up-to-date summary of new discoveries can inform future perspectives. We herein discuss the role of ion channels during viral lifecycles, describe the recently identified ion channel drugs that can inhibit viral infections, and highlight the potential contribution of ion channels to virus-mediated disease.


Assuntos
Antivirais/farmacologia , Antivirais/uso terapêutico , Canais Iônicos/antagonistas & inibidores , Canais Iônicos/metabolismo , Viroses/tratamento farmacológico , Animais , Canais de Cálcio/metabolismo , Canalopatias/metabolismo , Canalopatias/virologia , Canais de Cloreto/metabolismo , Reposicionamento de Medicamentos , Humanos , Canais de Sódio/metabolismo , Viroses/metabolismo , Internalização do Vírus/efeitos dos fármacos , Replicação Viral
6.
J Biol Chem ; 294(18): 7335-7347, 2019 05 03.
Artigo em Inglês | MEDLINE | ID: mdl-30804209

RESUMO

The Bunyavirales order of segmented negative-sense RNA viruses includes more than 500 isolates that infect insects, animals, and plants and are often associated with severe and fatal disease in humans. To multiply and cause disease, bunyaviruses must translocate their genomes from outside the cell into the cytosol, achieved by transit through the endocytic network. We have previously shown that the model bunyaviruses Bunyamwera virus (BUNV) and Hazara virus (HAZV) exploit the changing potassium concentration ([K+]) of maturing endosomes to release their genomes at the appropriate endosomal location. K+ was identified as a biochemical cue to activate the viral fusion machinery, promoting fusion between viral and cellular membranes, consequently permitting genome release. In this study, we further define the biochemical prerequisites for BUNV and HAZV entry and their K+ dependence. Using drug-mediated cholesterol extraction along with viral entry and K+ uptake assays, we report three major findings: BUNV and HAZV require cellular cholesterol during endosomal escape; cholesterol depletion from host cells impairs K+ accumulation in maturing endosomes, revealing new insights into endosomal K+ homeostasis; and "priming" BUNV and HAZV virions with K+ before infection alleviates their cholesterol requirement. Taken together, our findings suggest a model in which cholesterol abundance influences endosomal K+ levels and, consequently, the efficiency of bunyavirus infection. The ability to inhibit bunyaviruses with existing cholesterol-lowering drugs may offer new options for future antiviral interventions for pathogenic bunyaviruses.


Assuntos
Colesterol/metabolismo , Endossomos/metabolismo , Orthobunyavirus/fisiologia , Potássio/metabolismo , Internalização do Vírus , Linhagem Celular Tumoral , Endocitose , Humanos , Transporte de Íons , Vírion/fisiologia
7.
J Biol Chem ; 293(26): 9937-9944, 2018 06 29.
Artigo em Inglês | MEDLINE | ID: mdl-29678879

RESUMO

Many enveloped viruses enter cells through the endocytic network, from which they must subsequently escape through fusion of viral and endosomal membranes. This membrane fusion is mediated by virus-encoded spikes that respond to the dynamic endosomal environment, which triggers conformational changes in the spikes that initiate the fusion process. Several fusion triggers have been identified and include pH, membrane composition, and endosome-resident proteins, and these cues dictate when and where viral fusion occurs. We recently reported that infection with an enveloped bunyavirus requires elevated potassium ion concentrations [K+], controlled by cellular K+ channels, that are encountered during viral transit through maturing endosomes. Here we reveal the molecular basis for the K+ requirement of bunyaviruses through the first direct visualization of a member of the Nairoviridae family, namely Hazara virus (HAZV), using cryo-EM. Using cryo-electron tomography, we observed HAZV spike glycoproteins within infectious HAZV particles exposed to both high and low [K+], which showed that exposure to K+ alone results in dramatic changes to the ultrastructural architecture of the virion surface. In low [K+], the spikes adopted a compact conformation arranged in locally ordered arrays, whereas, following exposure to high [K+], the spikes became extended, and spike-membrane interactions were observed. Viruses exposed to high [K+] also displayed enhanced infectivity, thus identifying K+ as a newly defined trigger that helps promote viral infection. Finally, we confirmed that K+ channel blockers are inhibitory to HAZV infection, highlighting the potential of K+ channels as anti-bunyavirus targets.


Assuntos
Orthobunyavirus/efeitos dos fármacos , Orthobunyavirus/fisiologia , Potássio/farmacologia , Internalização do Vírus/efeitos dos fármacos , Células A549 , Relação Dose-Resposta a Droga , Humanos , Orthobunyavirus/metabolismo , Canais de Potássio/metabolismo , Conformação Proteica/efeitos dos fármacos , Proteínas do Envelope Viral/química , Proteínas do Envelope Viral/metabolismo
8.
PLoS Pathog ; 14(1): e1006845, 2018 01.
Artigo em Inglês | MEDLINE | ID: mdl-29352299

RESUMO

In order to multiply and cause disease a virus must transport its genome from outside the cell into the cytosol, most commonly achieved through the endocytic network. Endosomes transport virus particles to specific cellular destinations and viruses exploit the changing environment of maturing endocytic vesicles as triggers to mediate genome release. Previously we demonstrated that several bunyaviruses, which comprise the largest family of negative sense RNA viruses, require the activity of cellular potassium (K+) channels to cause productive infection. Specifically, we demonstrated a surprising role for K+ channels during virus endosomal trafficking. In this study, we have used the prototype bunyavirus, Bunyamwera virus (BUNV), as a tool to understand why K+ channels are required for progression of these viruses through the endocytic network. We report three major findings: First, the production of a dual fluorescently labelled bunyavirus to visualize virus trafficking in live cells. Second, we show that BUNV traffics through endosomes containing high [K+] and that these K+ ions influence the infectivity of virions. Third, we show that K+ channel inhibition can alter the distribution of K+ across the endosomal system and arrest virus trafficking in endosomes. These data suggest high endosomal [K+] is a critical cue that is required for virus infection, and is controlled by cellular K+ channels resident within the endosome network. This highlights cellular K+ channels as druggable targets to impede virus entry, infection and disease.


Assuntos
Infecções por Bunyaviridae/metabolismo , Endossomos/metabolismo , Canais Iônicos/fisiologia , Orthobunyavirus/patogenicidade , Potássio/metabolismo , Células A549 , Linhagem Celular Tumoral , Interações Hospedeiro-Patógeno , Humanos , Canais Iônicos/metabolismo , Internalização do Vírus
9.
J Gen Virol ; 98(3): 345-351, 2017 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-28113044

RESUMO

The broad range of cellular functions governed by ion channels represents an attractive target for viral manipulation. Indeed, modulation of host cell ion channel activity by viral proteins is being increasingly identified as an important virus-host interaction. Recent examples have demonstrated that virion entry, virus egress and the maintenance of a cellular environment conducive to virus persistence are, in part, dependent on virus manipulation of ion channel activity. Most excitingly, evidence has emerged that targeting ion channels pharmacologically can impede virus life cycles. Here, we discuss current examples of virus-ion channel interactions and the potential of targeting ion channel function as a new, pharmacologically safe and broad-ranging anti-viral therapeutic strategy.


Assuntos
Antivirais/farmacologia , Interações Hospedeiro-Patógeno/efeitos dos fármacos , Canais Iônicos/metabolismo , Vírion/metabolismo , Internalização do Vírus/efeitos dos fármacos , Frequência Cardíaca , Humanos , Neurônios/virologia , Doenças Respiratórias/virologia , Proteínas Virais/metabolismo , Liberação de Vírus/efeitos dos fármacos
10.
J Biol Chem ; 291(7): 3411-22, 2016 Feb 12.
Artigo em Inglês | MEDLINE | ID: mdl-26677217

RESUMO

Bunyaviruses are considered to be emerging pathogens facilitated by the segmented nature of their genome that allows reassortment between different species to generate novel viruses with altered pathogenicity. Bunyaviruses are transmitted via a diverse range of arthropod vectors, as well as rodents, and have established a global disease range with massive importance in healthcare, animal welfare, and economics. There are no vaccines or anti-viral therapies available to treat human bunyavirus infections and so development of new anti-viral strategies is urgently required. Bunyamwera virus (BUNV; genus Orthobunyavirus) is the model bunyavirus, sharing aspects of its molecular and cellular biology with all Bunyaviridae family members. Here, we show for the first time that BUNV activates and requires cellular potassium (K(+)) channels to infect cells. Time of addition assays using K(+) channel modulating agents demonstrated that K(+) channel function is critical to events shortly after virus entry but prior to viral RNA synthesis/replication. A similar K(+) channel dependence was identified for other bunyaviruses namely Schmallenberg virus (Orthobunyavirus) as well as the more distantly related Hazara virus (Nairovirus). Using a rational pharmacological screening regimen, two-pore domain K(+) channels (K2P) were identified as the K(+) channel family mediating BUNV K(+) channel dependence. As several K2P channel modulators are currently in clinical use, our work suggests they may represent a new and safe drug class for the treatment of potentially lethal bunyavirus disease.


Assuntos
Antivirais/farmacologia , Vírus Bunyamwera/efeitos dos fármacos , Infecções por Bunyaviridae/tratamento farmacológico , Interações Hospedeiro-Patógeno/efeitos dos fármacos , Bloqueadores dos Canais de Potássio/farmacologia , Canais de Potássio de Domínios Poros em Tandem/antagonistas & inibidores , Integração Viral/efeitos dos fármacos , Aedes , Animais , Vírus Bunyamwera/crescimento & desenvolvimento , Vírus Bunyamwera/fisiologia , Infecções por Bunyaviridae/metabolismo , Infecções por Bunyaviridae/virologia , Linhagem Celular , Chlorocebus aethiops , Regulação Bacteriana da Expressão Gênica/efeitos dos fármacos , Humanos , Mesocricetus , Nairovirus/efeitos dos fármacos , Nairovirus/crescimento & desenvolvimento , Nairovirus/fisiologia , Orthobunyavirus/efeitos dos fármacos , Orthobunyavirus/crescimento & desenvolvimento , Orthobunyavirus/fisiologia , Canais de Potássio de Domínios Poros em Tandem/genética , Canais de Potássio de Domínios Poros em Tandem/metabolismo , Células Vero
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