Alternative Macrophage Activation Limits Immunopathology
Alternative Macrophage Activation Limits Immunopathology
批准号:
8054528
负责人:
De'Broski R Herbert
金额:
$22.18万
依托单位国家:
美国
项目类别:
财政年份:
2007
资助国家:
美国
项目状态:
已结题
起止时间:
2007-09-30 至 2012-07-31
关键词:
AcuteAddressAffectAllergicAllergic ReactionAreaArginineAsthmaAtherosclerosisAutomobile DrivingBacteriaBiologyBone MarrowCell LineageCell ProliferationCellsChimera organismChronicCollagenCommunicable DiseasesDataDevelopmentDiseaseDissectionEffector CellEnzymesExposure toFibrosisFree RadicalsGene ExpressionGenetic ModelsGranulomaGranulomatousHelminthsHepaticHomeostasisHost DefenseHumanImmuneImmunityImmunosuppressive AgentsInfectionInflammationInflammation MediatorsInflammatoryInflammatory disease of the intestineInterleukin 4 ReceptorInterleukin-10Interleukin-12Interleukin-13Interleukin-4IntestinesLiverMacrophage ActivationMalignant NeoplasmsMetabolismMolecularMononuclearMusMyelogenousNitric OxideOrganOutcomeParasitesPathogenesisPhagocytesPhasePlayPolyaminesPopulationPopulation HeterogeneityProductionProlineProtein IsoformsRegulationRoleSchistosomaSchistosoma mansoniSchistosomiasisSepsisSignal TransductionT-Cell ActivationTNF geneTestingVirusWound Healingantimicrobialarginasebody systemcytokinedesignegghuman NOS2A proteinhuman diseaseimmunopathologyimmunoregulationinterleukin-23killingsmacrophagemicrobialmouse modelnovel therapeutic interventionpathogenpreventresponseselective expressiontumorigenesis
中文摘要
描述(由申请人提供):可选的巨噬细胞激活限制免疫病理巨噬细胞(MF)形成异质的单核吞噬细胞群,是器官稳态、宿主防御和免疫调节所必需的。因此,MF亚型在脓毒症、动脉粥样硬化和哮喘等多种疾病的发病机制和表达调节中发挥核心作用。不同细菌和病毒的感染会产生经典活化的巨噬细胞(CAMF),产生促炎细胞因子(如TNF、IL-12、IL-23)和一氧化氮(NO),它们共同驱动有效的抗微生物功能。相反,过敏反应和蠕虫感染通过暴露于IL-4和/或IL-13刺激替代活化巨噬细胞(AAMF)的分化,从而促进过敏性疾病和蠕虫破坏。AAMF选择性地表达精氨酸酶(亚型I和II),将l -精氨酸代谢成多胺和脯氨酸,这表明AAMF在伤口愈合反应和T辅助型2 (TH2)免疫的效应细胞中是细胞增殖和纤维化的调节剂。曼氏血吸虫是一种影响全球108人的主要人类病原体,可引起多器官系统的纤维化肉芽肿性炎症。人类和小鼠的血吸虫发病机制非常相似,两者都需要TH2反应才能在感染的急性期存活。我们已经建立了几个遗传模型,以促进对TH2相关基因表达的细胞系特异性重要性的仔细机制解剖。值得注意的是,我们已经证明了IL-4/ il -13驱动的MF活性可以预防小鼠血吸虫病的致死性免疫病理。我们现在有证据表明精氨酸酶本身负责阻断IL-12/23p40的诱导,驱动胶原蛋白的产生,并限制肝脏和肠道的严重炎症。综上所述,这些数据有力地支持了我们相互关联的中心假设:(1)AAMF对于预防小鼠感染曼氏血吸虫的致死性免疫病理是必要和充分的;(2)这种保护机制依赖于精氨酸酶的产生。我们将使用我们的遗传模型在以下目标中解决这些假设:目标1将测试AAMF产生精氨酸酶I和/或II的假设,以防止曼氏沙门氏菌感染小鼠的致命免疫病理;目的2将验证MF IL-4R1表达对于血吸虫病期间宿主免受致死性免疫病理保护是必要和充分的假设;目的3将验证CAMF驱动曼氏链球菌感染小鼠致死性炎症的假设。这些假设具有广泛的意义,超出了MF在蠕虫感染期间的功能,因为MF是多种慢性人类炎症性疾病的基本组成部分。对MF效应功能的分子调控机制的更深入了解,将有助于设计针对此类炎症性疾病的新型治疗方法。巨噬细胞(MF)是一种异质免疫细胞群,在决定许多疾病的结果中起着核心作用,包括感染(如败血症)、自身炎症性疾病(如动脉粥样硬化)、过敏性疾病(如哮喘)和癌症。该建议将使用小鼠炎症模型来验证我们的假设,即白细胞介素4和13对于MF(选择性活化巨噬细胞[AAMF])的特定功能群体的分化是必不可少的,通过产生l -精氨酸代谢的特定酶(称为精氨酸酶)来抑制致命的免疫病理是必要的和充分的。在分子水平上对巨噬细胞效应功能的更大的机制理解应该允许设计新的治疗方法来治疗由MF控制表达的无数疾病。
英文摘要
DESCRIPTION (provided by applicant): Alternative macrophage activation limits immunopathology Macrophages (MF) form a heterogeneous population of mononuclear phagocytes necessary for organ homeostasis, host defense, and immunoregulation. As such, MF subtypes play a central role in regulating the pathogenesis and expression of diseases as diverse as sepsis, atherosclerosis and asthma. Infection with diverse bacteria and viruses gives rise to classically activated macrophages (CAMF), which produce pro- inflammatory cytokines (e.g., TNF, IL-12, IL-23) and nitric oxide (NO) that, together, drive potent anti-microbial functions. In contrast, allergic reactions and worm infestation stimulate the differentiation of alternatively activated macrophages (AAMF) via exposure to IL-4 and/or IL-13 that promotes allergic disease and helminth destruction. AAMF selectively express arginases (isoforms I and II) to metabolize L-arginine into polyamines and proline, implicating AAMF as regulators of cellular proliferation and fibrosis during the wound healing response and effector cells of T helper type 2 (TH2) immunity. Schistosoma mansoni is a major human pathogen affecting 108 people worldwide that causes fibrotic granulomatous inflammation in multiple organ systems. Schistosoma pathogenesis is remarkably similar in humans and mice, both of which require TH2 responses for survival during the acute phase of infection. We have generated several genetic models that facilitate careful mechanistic dissection of the cell-lineage specific importance of TH2 associated gene expression. Notably, we have demonstrated that IL-4/IL-13-driven MF activity prevents lethal immunopathology in mouse schistosomiasis. We now have evidence that arginase itself is responsible for blocking IL-12/23p40 induction, driving collagen production, and limiting severe inflammation of liver and intestine. Together, these data strongly support our inter-related central hypotheses: (1) AAMF are necessary and sufficient to prevent lethal immunopathology in mice infected with Schistosoma mansoni; and (2) The mechanism of such protection is dependent on arginase production. We will use our genetic models to address these hypotheses in the following aims: Aim 1 will test the hypothesis that AAMF production of Arginases I and/or II prevents lethal immunopathology in S. mansoni- infected mice; Aim 2 will test the hypothesis that MF IL-4R1 expression is necessary and sufficient for host protection against lethal immunopathology during Schistosomiasis; Aim 3 will test the hypothesis that lethal inflammation in S. mansoni-infected mice is driven by CAMF. These hypotheses have broad implications that go beyond MF function during worm infection because MF are fundamental components of a wide range of chronic human inflammatory diseases. A greater mechanistic understanding of the molecular regulation of MF effector function should allow for the design of novel therapeutic approaches to such inflammatory diseases.Macrophages (MF) are a heterogeneous population of immune cells that play a central role in determining the outcome of many diseases, including infections (e.g., sepsis), autoinflammatory diseases (e.g., atherosclerosis), allergic diseases (e.g. asthma) and cancer. This proposal will use a mouse model of inflammation to test our hypothesis that interleukins 4 and 13 are essential for the differentiation of a specific functional population of MF (alternatively activated macrophages [AAMF]) that are both necessary and sufficient for suppression of lethal immunopathology by producing a specific enzyme of L-arginine metabolism called arginase. A greater mechanistic understanding of macrophage effector function on a molecular level of should allow for the design of novel therapeutic approaches to the myriad diseases whose expression is controlled by MF.
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