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1.
J Virol ; 96(19): e0129722, 2022 10 12.
Artículo en Inglés | MEDLINE | ID: mdl-36102648

RESUMEN

Human respiratory syncytial virus (RSV) is the leading cause of severe acute lower respiratory tract infections in infants worldwide. Nonstructural protein NS1 of RSV modulates the host innate immune response by acting as an antagonist of type I and type III interferon (IFN) production and signaling in multiple ways. Likely, NS1 performs this function by interacting with different host proteins. In order to obtain a comprehensive overview of the NS1 interaction partners, we performed three complementary protein-protein interaction screens, i.e., BioID, MAPPIT, and KISS. To closely mimic a natural infection, the BioID proximity screen was performed using a recombinant RSV in which the NS1 protein is fused to a biotin ligase. Remarkably, MED25, a subunit of the Mediator complex, was identified in all three performed screening methods as a potential NS1-interacting protein. We confirmed the interaction between MED25 and RSV NS1 by coimmunoprecipitation, not only upon overexpression of NS1 but also with endogenous NS1 during RSV infection. We also demonstrate that the replication of RSV can be enhanced in MED25 knockout A549 cells, suggesting a potential antiviral role of MED25 during RSV infection. Mediator subunits function as transcriptional coactivators and are involved in transcriptional regulation of their target genes. Therefore, the interaction between RSV NS1 and cellular MED25 might be beneficial for RSV during infection by affecting host transcription and the host immune response to infection. IMPORTANCE Innate immune responses, including the production of type I and III interferons, play a crucial role in the first line of defense against RSV infection. However, only a poor induction of type I IFNs is observed during RSV infection, suggesting that RSV has evolved mechanisms to prevent type I IFN expression by the infected host cell. A unique RSV protein, NS1, is largely responsible for this effect, probably through interaction with multiple host proteins. A better understanding of the interactions that occur between RSV NS1 and host proteins may help to identify targets for an effective antiviral therapy. We addressed this question by performing three complementary protein-protein interaction screens and identified MED25 as an RSV NS1-interacting protein. We propose a role in innate anti-RSV defense for this Mediator complex subunit.


Asunto(s)
Complejo Mediador , Infecciones por Virus Sincitial Respiratorio , Virus Sincitial Respiratorio Humano , Proteínas no Estructurales Virales , Células A549 , Humanos , Interferones/metabolismo , Complejo Mediador/genética , Complejo Mediador/metabolismo , Infecciones por Virus Sincitial Respiratorio/metabolismo , Proteínas no Estructurales Virales/genética , Proteínas no Estructurales Virales/metabolismo
2.
Mucosal Immunol ; 15(4): 745-761, 2022 04.
Artículo en Inglés | MEDLINE | ID: mdl-35418673

RESUMEN

Migratory dendritic cells expressing CD103 are the targets for mucosal vaccines. These belong to either of two lineage-restricted subsets, cDC1 or cDC2 cells, which have been linked to priming of functionally distinct CD4 T cells. However, recent studies have identified plasticity in cDC2 cells with overlapping functions with cDC1 cells, while the converse has not been reported. We genetically engineered a vaccine adjuvant platform that targeted the cholera toxin A1 (CTA1) ADP-ribosylating enzyme to CD103+ cDC1 and cDC2 cells using a single-chain antibody (scFv) to CD103. Unexpectedly, intranasal immunization with the CTA1-svFcCD103 adjuvant modified cDC1 cells to effectively prime Th17 cells, a function previously limited to cDC2 cells. In fact, cDC2 cells were dispensible, while cDC1 cells, lacking in Batf3-/- mice, were critical. Following intranasal immunizations isolated cDC1 cells from mLN exclusively promoted Rorgt+ T cells and IL-17, IL-21, and IL-22 production. Strong CD8 T cell responses through antigen cross presentation by cDC1 cells were also observed. Single-cell RNAseq analysis revealed upregulation of Th17-promoting gene signatures in sorted cDC1 cells. Gene expression in isolated cDC2 cells was largely unaffected. Our finding represents a major shift of paradigm as we have documented functional plasticity in cDC1 cells.


Asunto(s)
Gripe Humana , Infecciones por Orthomyxoviridae , Adenosina Difosfato/metabolismo , Adyuvantes Inmunológicos , Animales , Toxina del Cólera/metabolismo , Células Dendríticas , Humanos , Gripe Humana/metabolismo , Ratones , Infecciones por Orthomyxoviridae/metabolismo , Células Th17
3.
Expert Rev Vaccines ; 16(2): 123-136, 2017 02.
Artículo en Inglés | MEDLINE | ID: mdl-27653543

RESUMEN

INTRODUCTION: Current influenza vaccines can prevent disease caused by influenza viruses but require annual administration and almost yearly reformulation. An attractive alternative approach would be to use a vaccine that provides broad and, ideally, lifelong protection against all influenza A and B virus strains. The extracellular domain of matrix protein 2 (M2e) of influenza A viruses is conserved and thus fits well in such a broadly protective vaccine. Areas covered: Recent advances in M2e vaccine design, the mode of action of M2e-based immunity and clinical progress of M2-based influenza vaccines. Expert commentary: Many M2e vaccine have been successfully tested for efficacy against a panel of divergent influenza viruses in animal models. More recently, clinical studies have been conducted with M2e vaccine candidates, which demonstrated their safety and immunogenicity in humans. Efficacy studies in humans are still needed to provide evidence that an M2e-based vaccine can protect against human influenza.


Asunto(s)
Vacunas contra la Influenza/inmunología , Proteínas de la Matriz Viral/inmunología , Animales , Ensayos Clínicos como Asunto , Modelos Animales de Enfermedad , Descubrimiento de Drogas/tendencias , Evaluación Preclínica de Medicamentos , Humanos , Vacunas contra la Influenza/efectos adversos , Vacunas contra la Influenza/genética , Vacunas Sintéticas/efectos adversos , Vacunas Sintéticas/genética , Vacunas Sintéticas/inmunología , Proteínas de la Matriz Viral/genética
4.
J Virol ; 88(15): 8278-96, 2014 Aug.
Artículo en Inglés | MEDLINE | ID: mdl-24829341

RESUMEN

UNLABELLED: Influenza virus neuraminidase (NA) is an interesting target of small-molecule antiviral drugs. We isolated a set of H5N1 NA-specific single-domain antibodies (N1-VHHm) and evaluated their in vitro and in vivo antiviral potential. Two of them inhibited the NA activity and in vitro replication of clade 1 and 2 H5N1 viruses. We then generated bivalent derivatives of N1-VHHm by two methods. First, we made N1-VHHb by genetically joining two N1-VHHm moieties with a flexible linker. Second, bivalent N1-VHH-Fc proteins were obtained by genetic fusion of the N1-VHHm moiety with the crystallizable region of mouse IgG2a (Fc). The in vitro antiviral potency against H5N1 of both bivalent N1-VHHb formats was 30- to 240-fold higher than that of their monovalent counterparts, with 50% inhibitory concentrations in the low nanomolar range. Moreover, single-dose prophylactic treatment with bivalent N1-VHHb or N1-VHH-Fc protected BALB/c mice against a lethal challenge with H5N1 virus, including an oseltamivir-resistant H5N1 variant. Surprisingly, an N1-VHH-Fc fusion without in vitro NA-inhibitory or antiviral activity also protected mice against an H5N1 challenge. Virus escape selection experiments indicated that one amino acid residue close to the catalytic site is required for N1-VHHm binding. We conclude that single-domain antibodies directed against influenza virus NA protect against H5N1 virus infection, and when engineered with a conventional Fc domain, they can do so in the absence of detectable NA-inhibitory activity. IMPORTANCE: Highly pathogenic H5N1 viruses are a zoonotic threat. Outbreaks of avian influenza caused by these viruses occur in many parts of the world and are associated with tremendous economic loss, and these viruses can cause very severe disease in humans. In such cases, small-molecule inhibitors of the viral NA are among the few treatment options for patients. However, treatment with such drugs often results in the emergence of resistant viruses. Here we show that single-domain antibody fragments that are specific for NA can bind and inhibit H5N1 viruses in vitro and can protect laboratory mice against a challenge with an H5N1 virus, including an oseltamivir-resistant virus. In addition, plant-produced VHH fused to a conventional Fc domain can protect in vivo even in the absence of NA-inhibitory activity. Thus, NA of influenza virus can be effectively targeted by single-domain antibody fragments, which are amenable to further engineering.


Asunto(s)
Antivirales/uso terapéutico , Subtipo H5N1 del Virus de la Influenza A/efectos de los fármacos , Neuraminidasa/antagonistas & inhibidores , Infecciones por Orthomyxoviridae/prevención & control , Anticuerpos de Dominio Único/uso terapéutico , Animales , Antivirales/inmunología , Modelos Animales de Enfermedad , Femenino , Subtipo H5N1 del Virus de la Influenza A/inmunología , Concentración 50 Inhibidora , Ratones , Ratones Endogámicos BALB C , Pruebas de Sensibilidad Microbiana , Infecciones por Orthomyxoviridae/inmunología , Infecciones por Orthomyxoviridae/virología , Anticuerpos de Dominio Único/inmunología , Resultado del Tratamiento
5.
Antiviral Res ; 92(3): 389-407, 2011 Dec.
Artículo en Inglés | MEDLINE | ID: mdl-21939690

RESUMEN

In 1989, a new type of antibody was identified, first in the sera of dromedaries and later also in all other species of the Camelidae family. These antibodies do not contain a light chain and also lack the first constant heavy domain. Today it is still unclear what the evolutionary advantage of such heavy chain-only antibodies could be. In sharp contrast, the broad applicability of the isolated variable antigen-binding domains (VHH) was rapidly recognized, especially for the development of therapeutic proteins, called Nanobodies(®). Here we summarize first some of the unique characteristics and features of VHHs. These will next be described in the context of different experimental therapeutic applications of Nanobodies against different viruses: HIV, Hepatitis B virus, influenza virus, Respiratory Syncytial virus, Rabies virus, FMDV, Poliovirus, Rotavirus, and PERVs. Next, the diagnostic application of VHHs (Vaccinia virus, Marburg virus and plant Tulip virus X), as well as an industrial application (lytic lactococcal 936 phage) will be described. In addition, the described data show that monovalent Nanobodies can possess unique characteristics not observed with conventional antibodies. The straightforward formatting into bivalent, multivalent, and/or multispecific Nanobodies allowed tailoring molecules for potency and cross-reactivity against viral targets with high sequence diversity.


Asunto(s)
Anticuerpos Antivirales/uso terapéutico , Cadenas Pesadas de Inmunoglobulina/uso terapéutico , Región Variable de Inmunoglobulina/uso terapéutico , Virosis/diagnóstico , Virosis/tratamiento farmacológico , Virus/inmunología , Animales , Anticuerpos Antivirales/inmunología , Camélidos del Nuevo Mundo/inmunología , Humanos , Cadenas Pesadas de Inmunoglobulina/inmunología , Región Variable de Inmunoglobulina/inmunología , Virosis/inmunología
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