Mechanisms mediating tissue repair by leukocytes during influenza virus infection
Mechanisms mediating tissue repair by leukocytes during influenza virus infection
批准号:
9224081
负责人:
Nicholas Arpaia
金额:
$16.14万
依托单位国家:
美国
项目类别:
财政年份:
2017
资助国家:
美国
项目状态:
已结题
起止时间:
2017-05-08 至 2019-04-30
关键词:
AblationAddressAllergic DiseaseAmphiregulinArchitectureAutoimmune DiseasesAutomobile DrivingBacterial InfectionsCellsCessation of lifeCommunicable DiseasesDevelopmentEpidemicEpidermal Growth Factor ReceptorEpithelialEpithelial CellsEpitheliumGeneticGenetic TranscriptionImmuneImmune responseImpairmentIn VitroInfectionInflammationInflammatoryInflammatory ResponseInfluenzaInfluenza A virusInjuryInterleukin-18IntestinesInvestigationKineticsKnowledgeLeukocytesLigandsLungMediatingMediator of activation proteinMolecularMusOrganPathway interactionsPhenotypePhysiologyPlayPopulationPredispositionProcessProductionRecoveryRecruitment ActivityRegulatory T-LymphocyteResolutionRespiratory Tract InfectionsRespiratory physiologyRoleSecondary toSignal TransductionStructure of parenchyma of lungTissuesViralViral Respiratory Tract InfectionVirus Diseasesadaptive immune responsecytokinegenome-wideglobal healthhigh risk populationimmunopathologyin vivoinfluenza epidemicinfluenzavirusinsightlung repairnovelnovel therapeuticspathogenpreventreceptorrepairedrespiratoryresponseseasonal influenzatissue repair
中文摘要
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英文摘要
PROJECT SUMMARY/ABSTRACT
Seasonal influenza A virus epidemics are an obstinate global health issue and cause severe illness and
death in high-risk populations. As with other respiratory viral infections, recovery from illness requires pathogen
clearance, resolution of the anti-viral inflammatory response, and repair of damaged lung tissue. Restoring the
pulmonary epithelial barrier is of profound importance to organ physiology and necessary to minimize
susceptibility to secondary bacterial infections1, 2. While many studies have focused on the stages of viral
elimination by innate and adaptive immune responses3, a comprehensive understanding of how tissue repair is
coordinated, and the role of leukocytes in this process, is poorly defined.
Recent studies have demonstrated a role for leukocyte-derived epidermal growth factor receptor
(EGFR) ligand, amphiregulin, in promoting tissue protection in the intestine and muscle4, 5, and following
influenza virus–induced damage in the lung6, 7. The applicant recently illustrated that genetic ablation of
amphiregulin in murine regulatory T (Treg) cells results in impaired lung function and markedly reduced airway
epithelial repair after challenge with influenza virus in vivo6. Transcriptional profiling and flow cytometric
analyses of murine lung Treg cells isolated at 5 days post-infection indicated that these cells express receptors
for two hallmark tissue damage cytokines, IL-18 and IL-33, and in vitro treatment of purified naïve Treg cells
with either of these cytokines was sufficient to induce amphiregulin production. These findings uncovered an
important and previously unknown role for Treg cell–derived amphiregulin in maintaining epithelial barrier
integrity during the immune response to a respiratory pathogen. This K22 proposal builds on the applicant's
prior study and examines (1) the mechanism by which Treg cell–derived amphiregulin contributes to tissue
repair and (2) the role of other amphiregulin-producing leukocytes and tissue-protective mediators in
coordinating repair processes throughout the course of influenza infection.
Characterizing the molecular and cellular pathways that protect against infectious damage and prevent
associated immunopathology will broaden our knowledge of immunological responses and aid in the
development of novel therapeutics for treating infectious, allergic, and autoimmune diseases.
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海外基金