Simultaneous Targeting of IRE1a in B Cells and Macrophages for Lupus Therapy
Simultaneous Targeting of IRE1a in B Cells and Macrophages for Lupus Therapy
批准号:
9293889
负责人:
Deyu Fang
金额:
$33.88万
依托单位国家:
美国
项目类别:
财政年份:
2014
资助国家:
美国
项目状态:
已结题
起止时间:
2014-07-01 至 2019-06-30
关键词:
Adoptive TransferAffectAmericanAnimal ModelAnti-Inflammatory AgentsAntibodiesAntibody FormationAntigensAutoantibodiesAutoimmune DiseasesAutoimmune ProcessAutoimmune ResponsesB cell differentiationB-LymphocytesCell Differentiation processCellsChemotactic FactorsClinicalDataDevelopmentDiseaseEnzymesEvaluationFetal LiverGeneticHumanInflammatoryInflammatory ArthritisInositolInterleukin-10Knock-outLeukocytesLifeLupusMediatingMessenger RNAModelingMolecularMusMyelogenousMyeloid Cell SuppressionMyeloid CellsPathogenicityPathway interactionsPatientsPeripheralPharmaceutical PreparationsPharmacologyPharmacotherapyPlasmaPlasma CellsPreclinical TestingPreventionProductionProteinsRNA SplicingRoleSymptomsSystemic Lupus ErythematosusTestingTherapeuticTransducersTreatment Efficacyautoreactivitybasecombatcytokinedifferentiated B cellinhibitor/antagonistmacrophagemalemouse modelneutrophilnovelnovel therapeuticsplasma cell differentiationpre-clinicalpreclinical efficacypublic health relevanceresponsetherapeutic targettraffickingtranscription factor
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): More than 2 million Americans suffer from lupus, a widespread and life-long autoimmune disease. The detrimental role of B lymphocytes in lupus is evidenced by high levels of pathogenic antinuclear autoantibodies (ANAs) found in the patients. Suppression of autoantibody production by B cells has been considered as a therapeutic strategy for lupus. In addition, myeloid cells, in particular macrophages and neutrophils, contribute significantly to lupus development and lupus progression by producing pro-inflammatory cytokines and chemoattractant factors. Either blocking myeloid cell trafficking or suppressing their ability in producing inflammatory cytokines can reduce the clinical symptoms of lupus in both animal models and human patients. We have shown that IRE1α (inositol-requiring enzyme 1α), the primary Unfolded Protein Response (UPR) transducer, is required for B cell differentiation into plasma cells. More recently, we discovered that inhibition of IRE1α suppressed inflammatory cytokine production by macrophages and neutrophils and protected mice from inflammatory arthritis. Further, we have obtained provocative preliminary evidence that the IRE1α-mediated UPR pathway is elevated in the peripheral leukocytes from lupus patients. Through both genetic and pharmacological approaches, we found that IRE1α is required for B cell differentiation into plasma and autoantibody production in the Lupus animal model, suggesting that IRE1α represents a unique, high-efficient therapeutic target for lupus. Additionally, we have identified a specific, non-toxic IRE1α inhibitor, 4μ8c, which can efficiently
suppress antibody production by B cells and pro-inflammatory cytokine production by macrophages and neutrophils. Based on our recent discoveries and preliminary studies, we propose that suppression of IRE1α can repress production of both auto-antibodies by plasma cells and pro-inflammatory cytokines by macrophage/neutrophil and thus protect from the development of lupus. The current proposed study is to use both genetic and pharmacological approaches to evaluation the pre-clinical therapeutic efficacy of IRE1α suppression in lupus treatment (Aim 1) and to delineate the underlying molecular mechanisms of IRE1α in promoting autoantibody production by B cells (Aim 2) and pro-inflammatory cytokine production by myeloid cells (Aim 3) during lupus development. The proposed studies will not only demonstrate a novel therapeutic strategy and a potential drug for lupus, but will also contribute to a better understanding of the molecular basis underlying autoimmune responses associated with auto-antibodies and pro-inflammatory cytokines.
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