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1.
Front Immunol ; 10: 466, 2019.
Artigo em Inglês | MEDLINE | ID: mdl-30930901

RESUMO

Vesicular stomatitis virus (VSV) is an insect-transmitted rhabdovirus that is neurovirulent in mice. Upon peripheral VSV infection, CD169+ subcapsular sinus (SCS) macrophages capture VSV in the lymph, support viral replication, and prevent CNS neuroinvasion. To date, the precise mechanisms controlling VSV infection in SCS macrophages remain incompletely understood. Here, we show that Toll-like receptor-7 (TLR7), the main sensing receptor for VSV, is central in controlling lymph-borne VSV infection. Following VSV skin infection, TLR7-/- mice display significantly less VSV titers in the draining lymph nodes (dLN) and viral replication is attenuated in SCS macrophages. In contrast to effects of TLR7 in impeding VSV replication in the dLN, TLR7-/- mice present elevated viral load in the brain and spinal cord highlighting their susceptibility to VSV neuroinvasion. By generating novel TLR7 floxed mice, we interrogate the impact of cell-specific TLR7 function in anti-viral immunity after VSV skin infection. Our data suggests that TLR7 signaling in SCS macrophages supports VSV replication in these cells, increasing LN infection and may account for the delayed onset of VSV-induced neurovirulence observed in TLR7-/- mice. Overall, we identify TLR7 as a novel and essential host factor that critically controls anti-viral immunity to VSV. Furthermore, the novel mouse model generated in our study will be of valuable importance to shed light on cell-intrinsic TLR7 biology in future studies.


Assuntos
Macrófagos/imunologia , Glicoproteínas de Membrana/imunologia , Infecções por Rhabdoviridae/imunologia , Lectina 1 Semelhante a Ig de Ligação ao Ácido Siálico/imunologia , Receptor 7 Toll-Like/imunologia , Vesiculovirus/fisiologia , Replicação Viral/imunologia , Animais , Encéfalo/imunologia , Encéfalo/virologia , Macrófagos/virologia , Glicoproteínas de Membrana/genética , Camundongos , Camundongos Knockout , Infecções por Rhabdoviridae/genética , Infecções por Rhabdoviridae/patologia , Lectina 1 Semelhante a Ig de Ligação ao Ácido Siálico/genética , Transdução de Sinais/genética , Transdução de Sinais/imunologia , Medula Espinal/imunologia , Medula Espinal/virologia , Receptor 7 Toll-Like/genética , Replicação Viral/genética
2.
JCI Insight ; 3(15)2018 08 09.
Artigo em Inglês | MEDLINE | ID: mdl-30089715

RESUMO

Adeno-associated viral vector-mediated (AAV-mediated) expression of allogeneic major histocompatibility complex class I (MHC class I) in recipient liver induces donor-specific tolerance in mouse skin transplant models in which a class I allele (H-2Kb or H-2Kd) is mismatched between donor and recipient. Tolerance can be induced in mice primed by prior rejection of a donor-strain skin graft, as well as in naive recipients. Allogeneic MHC class I may be recognized by recipient T cells as an intact molecule (direct recognition) or may be processed and presented as an allogeneic peptide in the context of self-MHC (indirect recognition). The relative contributions of direct and indirect allorecognition to tolerance induction in this setting are unknown. Using hepatocyte-specific AAV vectors encoding WT allogeneic MHC class I molecules, or class I molecules containing a point mutation (D227K) that impedes direct recognition of intact allogeneic MHC class I by CD8+ T cells without hampering the presentation of processed peptides derived from allogeneic MHC class I, we show here that tolerance induction depends upon recognition of intact MHC class I. Indirect recognition alone yielded a modest prolongation of subsequent skin graft survival, attributable to the generation of CD4+ Tregs, but it was not sufficient to induce tolerance.


Assuntos
Rejeição de Enxerto/imunologia , Hepatócitos/imunologia , Antígenos de Histocompatibilidade Classe I/imunologia , Tolerância Imunológica , Isoantígenos/imunologia , Aloenxertos/citologia , Aloenxertos/imunologia , Aloenxertos/metabolismo , Animais , Linfócitos T CD8-Positivos/imunologia , Dependovirus/genética , Modelos Animais de Doenças , Epitopos de Linfócito T/genética , Epitopos de Linfócito T/imunologia , Epitopos de Linfócito T/metabolismo , Vetores Genéticos/genética , Sobrevivência de Enxerto/imunologia , Hepatócitos/metabolismo , Antígenos de Histocompatibilidade Classe I/genética , Antígenos de Histocompatibilidade Classe I/metabolismo , Humanos , Isoantígenos/genética , Isoantígenos/metabolismo , Fígado/citologia , Fígado/imunologia , Fígado/metabolismo , Transplante de Fígado/efeitos adversos , Masculino , Camundongos , Camundongos Transgênicos , Mutação Puntual , Linfócitos T Reguladores/imunologia , Transdução Genética
3.
Front Immunol ; 9: 495, 2018.
Artigo em Inglês | MEDLINE | ID: mdl-29675017

RESUMO

Mycobacterium tuberculosis (Mtb), the causative agent of human tuberculosis, is able to efficiently manipulate the host immune system establishing chronic infection, yet the underlying mechanisms of immune evasion are not fully understood. Evidence suggests that this pathogen interferes with host cell lipid metabolism to ensure its persistence. Fatty acid metabolism is regulated by acetyl-CoA carboxylase (ACC) 1 and 2; both isoforms catalyze the conversion of acetyl-CoA into malonyl-CoA, but have distinct roles. ACC1 is located in the cytosol, where it regulates de novo fatty acid synthesis (FAS), while ACC2 is associated with the outer mitochondrial membrane, regulating fatty acid oxidation (FAO). In macrophages, mycobacteria induce metabolic changes that lead to the cytosolic accumulation of lipids. This reprogramming impairs macrophage activation and contributes to chronic infection. In dendritic cells (DCs), FAS has been suggested to underlie optimal cytokine production and antigen presentation, but little is known about the metabolic changes occurring in DCs upon mycobacterial infection and how they affect the outcome of the immune response. We therefore determined the role of fatty acid metabolism in myeloid cells and T cells during Mycobacterium bovis BCG or Mtb infection, using novel genetic mouse models that allow cell-specific deletion of ACC1 and ACC2 in DCs, macrophages, or T cells. Our results demonstrate that de novo FAS is induced in DCs and macrophages upon M. bovis BCG infection. However, ACC1 expression in DCs and macrophages is not required to control mycobacteria. Similarly, absence of ACC2 did not influence the ability of DCs and macrophages to cope with infection. Furthermore, deletion of ACC1 in DCs or macrophages had no effect on systemic pro-inflammatory cytokine production or T cell priming, suggesting that FAS is dispensable for an intact innate response against mycobacteria. In contrast, mice with a deletion of ACC1 specifically in T cells fail to generate efficient T helper 1 responses and succumb early to Mtb infection. In summary, our results reveal ACC1-dependent FAS as a crucial mechanism in T cells, but not DCs or macrophages, to fight against mycobacterial infection.


Assuntos
Células Dendríticas/imunologia , Ácidos Graxos/imunologia , Imunidade Inata , Macrófagos/imunologia , Mycobacterium tuberculosis/imunologia , Células Th1/imunologia , Tuberculose/imunologia , Acetil-CoA Carboxilase/genética , Acetil-CoA Carboxilase/imunologia , Animais , Células Dendríticas/microbiologia , Células Dendríticas/patologia , Ácidos Graxos/genética , Macrófagos/microbiologia , Macrófagos/patologia , Camundongos , Camundongos Knockout , Mycobacterium bovis/imunologia , Mycobacterium tuberculosis/genética , Células Th1/microbiologia , Células Th1/patologia , Tuberculose/genética , Tuberculose/patologia
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