Cbl Mediated Ubiquitination in Autoimmunity
Cbl Mediated Ubiquitination in Autoimmunity
批准号:
7336354
负责人:
Hua Gu
金额:
$38.34万
依托单位国家:
美国
项目类别:
财政年份:
2006
资助国家:
美国
项目状态:
已结题
起止时间:
2006-01-01 至 2010-12-31
关键词:
Antigen ReceptorsAntigensApoptosisAutoantibodiesAutoimmune DiseasesAutoimmune ProcessAutoimmunityB-Cell DevelopmentB-LymphocytesBone MarrowCellsCessation of lifeClinicClonal DeletionCytokine ReceptorsDepositionDevelopmentDiseaseFamilyGoalsImmunoglobulin GInfiltrationKidneyKnock-outKnockout MiceLeukocytesMediatingMolecularMutationOrganPeripheralPlant RootsPlayProcessProtein Tyrosine KinaseProteinsReceptor SignalingReceptors, Antigen, B-CellResearchRoleSerumSignal PathwaySignal TransductionStagingSymptomsSystemic Lupus ErythematosusUbiquitinationWorkanergyautoreactive B cellbaseinsightreceptorscaffoldtoolubiquitin ligaseubiquitin-protein ligase
中文摘要
描述(由申请方提供):自身反应性B细胞通过多种耐受诱导机制进行删失,包括克隆缺失、无反应性(无反应性)或抗原受体编辑。通常认为,这些过程通过B细胞抗原受体(BCR)和细胞因子受体的协调信号传导强加于骨髓(BM)未成熟和外周过渡B细胞。然而,控制这些过程的细胞内信号机制尚未完全表征。该建议的目的是阐明E3-泛素连接酶的Cbl家族调节B细胞耐受性的机制。1)Cbl蛋白通过抑制酪氨酸激酶级联反应负调控BCR信号通路。2)B细胞中c-Cbl和Cbl-B的失活改变了过渡性B细胞的发育。3)B细胞特异性c-Cbl和Cbl-b双敲除(dKO)小鼠发生系统性红斑狼疮(SLE)样疾病。这些结果共同证明了Cbl蛋白在B细胞耐受诱导中的关键调节作用。我们提出Cbl蛋白通过促进克隆缺失、无反应性和/或BCR编辑来调节B细胞耐受性;它们可以通过促进控制易受耐受诱导的过渡B细胞的发育和存活的关键信号组分的泛素化来实现。我们将研究:1)Cbl蛋白是否通过克隆缺失、无反应性或BCR编辑来控制B细胞耐受。2)Cbl蛋白是否在过渡性B细胞的发育检查点调节B细胞耐受性。3)Cbl介导的泛素化是否控制BCR近端信号传导和过渡性B细胞发育。这项工作的完成将使人们深入了解Cbl蛋白控制B细胞耐受性和自身免疫性疾病的细胞和分子机制。也可为临床治疗提供工具。
英文摘要
DESCRIPTION (provided by applicant): Autoreactive B cells are censored by multiple mechanisms of tolerance induction, including clonal deletion, anergy (non-responsiveness) or antigen receptor editing. It is generally believed that these processes are imposed to bone marrow (BM) immature and peripheral transitional B-cells through coordinated signaling of B-cell antigen receptor (BCR) and cytokine receptors. However, the intracellular signaling machinery that controls these processes has not been fully characterized. The aim of this proposal is to elucidate the mechanisms by which the Cbl family of E3-ubiquitin ligases regulates B-cell tolerance. This research goal roots in the following findings: 1) Cbl proteins negatively regulate BCR signaling through inhibiting tyrosine kinase cascades. 2) Inactivation of both c-Cbl and Cbl-b in B cells alters development of transitional B-cells. 3) B-cell specific c-Cbl and Cbl-b double knock-out (dKO) mice develop systemic lupus erythematosus (SLE)-like disease. These results together demonstrate a critical regulatory role of Cbl proteins in B-cell tolerance induction. We propose that Cbl proteins regulate B-cell tolerance by facilitating clonal deletion, anergy, and/or BCR editing; they may do so through promoting ubiquitination of key signaling components that control the development and survival of transitional B-cells that are susceptible to tolerance induction. We will study: 1) Whether Cbl proteins control B-cell tolerance through clonal deletion, anergy or BCR editing. 2) Whether Cbl proteins regulate B-cell tolerance at developmental checkpoints of transitional B-cells. 3) Whether Cbl-mediated ubiquitination controls BCR-proximal signaling and transitional B-cell development. Completion of this work will bring insight into cellular and molecular mechanisms by which Cbl proteins control B-cell tolerance and autoimmune diseases. It might also provide tool for clinic therapy.
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