Immune-suppressive Myeloid Cells in the Glioma Microenvironment: Signaling Mechanisms and Novel Therapeutic Strategies
Immune-suppressive Myeloid Cells in the Glioma Microenvironment: Signaling Mechanisms and Novel Therapeutic Strategies
批准号:
10192845
负责人:
Maria G Castro
金额:
$44.36万
依托单位国家:
美国
项目类别:
财政年份:
2015
资助国家:
美国
项目状态:
已结题
起止时间:
2015-09-01 至 2022-06-30
关键词:
AblationAddressAdhesionsAdjuvantAdjuvant TherapyAdultAnimalsAntibodiesAntigensBlood - brain barrier anatomyBlood CirculationBone MarrowCTLA4 geneCXCL12 geneCXCR4 geneCellsChemotherapy and/or radiationClinicalDNA Microarray ChipDataDiagnosisDioxygenasesDisease ProgressionEndotheliumFLT3 ligandFailureGeneticGenetic EngineeringGenetically Engineered MouseGlioblastomaGliomaHeterogeneityHumanITGAM geneImmuneImmune responseImmunocompetentImmunosuppressionImmunotherapyImpairmentIn SituIn VitroInfiltrationInterleukin-10Intracranial NeoplasmsLeucocytic infiltrateLigandsMalignant - descriptorMalignant NeoplasmsMalignant neoplasm of brainMediatingMicroarray AnalysisModelingMolecularMusMutationMyelogenousMyeloid CellsMyeloid-derived suppressor cellsOperative Surgical ProceduresPatientsPeripheralPermeabilityPharmacologyPhasePlayPrimary Brain NeoplasmsProgression-Free SurvivalsProliferatingRadiation therapyRegulatory T-LymphocyteRoleSignal TransductionSleeping BeautyT cell responseT-LymphocyteTestingTherapeuticTransforming Growth Factor betaTranslatingTransplantationTumor Cell InvasionTumor ImmunityTumor-Associated VasculatureTumor-associated macrophagesTumor-infiltrating immune cellsanti-tumor immune responseantigen-specific T cellscell typecytokinecytotoxiceffector T cellexperimental studygene therapygenetic makeupimmunocytochemistryimprovedin vivoin vivo Modelmigrationmonocytemouse modelneoplastic cellnew therapeutic targetnovelnovel therapeutic interventionprogrammed cell death ligand 1programmed cell death protein 1public health relevancereceptorrecruittherapy resistanttumortumor microenvironmenttumor progressiontumorigenicvaccine trial
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): Glioblastoma multiforme (GBM) is the most common primary malignant brain tumor in adults; median survival from diagnosis is ~15-21 months. Anti-GBM immune strategies constitute novel and exciting therapeutic adjuvants to improve survival due to surgery, chemo- and radiotherapy. However, it has been challenging to develop effective anti-GBM immune responses that translate into increased patients' survival. As systemic immune responses against GBM antigens can be induced, clinical failure is thought to be due to powerful GBM induced immune suppression. Immune suppression in GBM patients is mediated by various mechanisms that include immature myeloid cells (IMCs) that accumulate in the tumor microenvironment. Subtypes of immature myeloid cells are: (i) myeloid derived suppressor cells (MDSCs), (ii) immunosuppressive tumor associated macrophages (TAMs), and, (iii) Tie2+ monocytes (TEMs). GBMs recruit immature myeloid cells to the tumor microenvironment where they inhibit anti-tumor immune responses, for example, by directly inhibiting T-cell effector function. Additional immune suppressive mechanisms involve: accumulation of Tregs, immunosuppressive molecules (i.e., indoleamine2, 3-dioxygenase 1 (IDO), cytotoxic T-lymphocyte antigen 4 (CTLA4), and programmed death 1 receptor ligand (PDL1), and cytokines, (i.e., IL10, TGFβ). To identify secreted factors which attract immune-suppressive IMCs into the GBM microenvironment we performed DNA microarray analysis on endogenous and transplantable mouse and human GBM cells and identified CXCL12 as a possible candidate. We also identified CXCR4, the cognate CXCL12 receptor, on immature myeloid cells within the GBM microenvironment supporting the hypothesis that CXCL12/CXCR4 plays an important role in attracting IMCs to the GBM microenvironment. To ascertain the role played by CXCL12-CXCR4 signaling in GBM progression and in regulating anti-GBM immune therapies, we propose to use an immune competent, genetically engineered endogenous mouse GBM model. Intracranial tumors are induced by Sleeping Beauty (SB)-mediated insertion of genetic alterations found in human GBM. Preliminary data show that conditioned media from both transplantable and SB-induced GBM elicit a high level of IMCs' expansion in vitro. In GBM models in vivo, we observed accumulation of IMCs within the GBM microenvironment and in the peripheral circulation. CXCR4 blockade significantly prolonged median survival of mice bearing endogenous GBM. We will use CXCL12 and/or CXCR4 gene ablation models to test the hypothesis that CXCL12-CXCR4 signaling axis plays a major role in determining the immune profile, both qualitatively and quantitatively, of the GBM microenvironment and thus has profound effects on disease progression. We further hypothesize that blocking accumulation of IMCs in combination with anti-GBM immune stimulatory strategies will provide a powerful adjuvant approach to treat malignant brain cancer.
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Systemic brain tumor delivery of synthetic protein nanoparticles for glioblastoma therapy.
用于胶质母细胞瘤治疗的合成蛋白纳米颗粒的全身性脑肿瘤递送。
DOI:
10.1038/s41467-020-19225-7
发表时间:
2020-11-10
期刊:
Nature communications
影响因子:
16.6
作者:
[Gregory JV, Kadiyala P, Doherty R, Cadena M, Habeel S, Ruoslahti E, Lowenstein PR, Castro MG, Lahann J]
通讯作者:
Lahann J
DOI:
10.1080/23723556.2020.1870647
发表时间:
2021-01-31
期刊:
Molecular & cellular oncology
影响因子:
2.1
作者:
[Kadiyala P, Gregory JV, Lowenstein PR, Lahann J, Castro MG]
通讯作者:
Castro MG
DOI:
10.1126/sciadv.abh3243
发表时间:
2021-10
期刊:
Science advances
影响因子:
13.6
作者:
[Alghamri MS, McClellan BL, Avvari RP, Thalla R, Carney S, Hartlage CS, Haase S, Ventosa M, Taher A, Kamran N, Zhang L, Faisal SM, Núñez FJ, Garcia-Fabiani MB, Al-Holou WN, Orringer D, Hervey-Jumper S, Heth J, Patil PG, Eddy K, Merajver SD, Ulintz PJ, Welch J, Gao C, Liu J, Núñez G, Hambardzumyan D, Lowenstein PR, Castro MG]
通讯作者:
Castro MG
Sabotaging the protein factory to overcome glioma stem cell resistance.
破坏蛋白质工厂以克服神经胶质瘤干细胞的抵抗力。
DOI:
10.1093/neuonc/noad090
发表时间:
2023
期刊:
Neuro-oncology
影响因子:
15.9
作者:
[Haase,Santiago, Lowenstein,PedroR, Castro,MariaG]
通讯作者:
Castro,MariaG
DOI:
10.1016/j.clim.2017.07.006
发表时间:
2018-04
期刊:
Clinical immunology (Orlando, Fla.)
影响因子:
--
作者:
[Lowenstein PR, Castro MG]
通讯作者:
Castro MG
共 8 条
Systemic Delivery of Targeted Bi-Compartmental Nanoparticles for Glioblastoma Therapeutics
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批准号:10584553
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项目类别:
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Uncover the role of H3.3-G343R mutation in shaping the DNA damage response, anti-tumor immunity and mechanisms of resistance in glioma.
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资助金额:$52.61万
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Systemic Delivery of Targeted Bi-Compartmental Nanoparticles for Glioblastoma Therapeutics
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资助金额:$48.67万
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财政年份:2022
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Novel nano-vaccine technology for inducing immunity against gliomas
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资助金额:$50.19万
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财政年份:2021
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Administrative Diversity Supplement- Novel Nano-Vaccine Technology for Inducing Immunity Against Gliomas
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资助金额:$8.47万
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Chemo-immunotherapy strategy for pediatric high grade glioma
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Crosstalk between glioma cells & immune cells in the tumor microenvironment: Ther
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Crosstalk between glioma cells & immune cells in the tumor microenvironment: Ther
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Engineering the Brain Immune System for Tumor Therapy
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海外基金