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Modeling Tyrosine Kinase Inhibitor-Induced Vascular Dysfunction Using Human iPSCs

Modeling Tyrosine Kinase Inhibitor-Induced Vascular Dysfunction Using Human iPSCs
使用人 iPSC 模拟酪氨酸激酶抑制剂诱导的血管功能障碍
批准号:
10191012
负责人:
THOMAS QUERTERMOUS
金额:
$56.26万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-08-01 至 2022-06-30
关键词:
AdultAffectAgeAnimal ModelApoptoticBiochemicalBiological AssayBiologyBlood VesselsBlood specimenCancer BiologyCancer PatientCarcinomaCardiotonic AgentsCardiovascular AgentsCardiovascular DiseasesCardiovascular ModelsCell LineCell SurvivalClinicClustered Regularly Interspaced Short Palindromic RepeatsCollaborationsDataDevelopmentDoseEndothelial CellsEndotheliumEnterochromaffin CellsEventFutureGene Expression ProfilingGeneticGenetic Predisposition to DiseaseGenomicsGrowth FactorHumanHyperactivityHypertensionIn VitroIndividualInsulinLife ExpectancyLinkLow-Density LipoproteinsMalignant NeoplasmsMeasuresMethodsModelingMolecularNitric OxideObesityOncologyPathogenesisPatientsPharmacogenomicsPharmacologic SubstancePhenotypePhosphorylationPhosphotransferasesPhysiologicalPredispositionPulmonary HypertensionQuantitative Trait LociReceptor Protein-Tyrosine KinasesRecoveryResearch PersonnelRoleSignal PathwaySingle Nucleotide PolymorphismTechnologyThrombosisToxic effectTreatment ProtocolsTubeTyrosine Kinase InhibitorVascular DiseasesVascular Endothelial CellVascular Endothelial Growth Factorscell motilityclinically relevantcohortcytotoxicitydrug withdrawalendothelial dysfunctiongenome editinghigh throughput screeningimprovedin vitro Modelindividual patientindividualized medicineinduced pluripotent stem cellinsightinterestleukemiamelanomamigrationnew technologynovelpatient responseprecision medicinerecruitscreeningside effectsmall moleculestem cell biologystem cell differentiationtherapeutic developmenttranscriptometranscriptome sequencingtumor progressionuptake

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英文摘要
PROJECT SUMMARY The development of small molecule tyrosine kinase inhibitors (TKIs) has led to a dramatic increase in life expectancy for patients suffering from cancers such as leukemias, carcinomas, and melanomas. TKIs inhibit the kinase phosphorylation activity of hyperactive receptor tyrosine kinases (RTK), thereby stymying the enhanced cell survival, proliferation, and migration phenotypes that are hallmarks of cancer progression. However, some TKIs are linked to severe vascular side effects such as endothelial toxicity and hypertension. Therefore, methods for accurately assessing TKI-induced vascular toxicity (TKI-VT) must be established. In vitro modeling of vascular toxicity and cardiovascular disease is of interest as human adult vascular endothelial cells are difficult to isolate and propagate long-term in culture, and animal models have often proven non-predictive of the drug response in patients. Patient-specific human induced pluripotent stem cell- derived endothelial cells (iPSC-ECs) represent a novel technology for modeling cardiovascular diseases. Human iPSC-ECs have already been successfully applied to understanding basic mechanisms of pulmonary hypertension and obesity-induced endothelial dysfunction. Human iPSC-ECs have also been used to screen for efficacy and toxicity of various cardiovascular drugs. Indeed, our preliminary data shows endothelial dysfunction in patient-specific iPSC-ECs when treated with TKIs. Here, in our multi-PI resubmission, we hypothesize that human iPSC-ECs represent a novel platform for studying the mechanisms and validity of genomic hits in regulating TKI-VT.
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