iPSC-Derived Cardiomyocytes in Left Ventricular Non-Compaction Cardiomyopathy
左心室致密化不全心肌病中 iPSC 衍生的心肌细胞
基本信息
- 批准号:8706222
- 负责人:
- 金额:$ 24.31万
- 依托单位:
- 依托单位国家:美国
- 项目类别:
- 财政年份:2013
- 资助国家:美国
- 起止时间:2013-07-24 至 2015-11-30
- 项目状态:已结题
- 来源:
- 关键词:AdultAffectAgeAnimal ModelAreaArrhythmiaBiologicalBiological ModelsBiologyBiomechanicsBiopsyCalciumCardiacCardiac MyocytesCardiomyopathiesCardiovascular DiseasesCardiovascular systemCause of DeathCell LineCellsCharacteristicsChildChildhoodComplexCongenital Heart DefectsDataDermalDiagnosisDilated CardiomyopathyDiseaseEmbryoExhibitsFamilyFibroblastsFunctional disorderGenerationsGenesGeneticGenotypeGoalsHeart failureHeterogeneityHypertrophic CardiomyopathyInfantIon ChannelLEOPARD SyndromeLamin Type ALearningLeftLeft ventricular structureLifeLong QT SyndromeMethodologyMethodsMitochondriaModelingMolecularMorphologyMusMutationNewborn InfantOutcomePatientsPhenotypePhysiologicalPhysiologyPlayPositioning AttributeProductionPropertyRelative (related person)ResearchRoleSkinSourceStagingStem cellsTechniquesTherapeuticThromboembolismThrombusTimothy syndromeTrainingTraining ProgramsVentricularVentricular Arrhythmiaabstractingbasecareercongenital heart disorderdisabilitydisease phenotypedystrobrevinexperiencehuman diseasehuman embryonic stem cellinduced pluripotent stem cellmembermitochondrial dysfunctionnew technologypluripotencystem cell biologystem cell therapytooluptake
项目摘要
DESCRIPTION (provided by applicant): Left ventricular non-compaction (LVNC) cardiomyopathy is increasingly being recognized as a cause of heart failure in patients of all ages. LVNC has a unique phenotype that distinguishes it from dilated or hypertrophic cardiomyopathies: deep hypertrabeculation of the left ventricle. Unlike other forms of cardiomyopathy, LVNC commonly presents with a combination of both systolic and diastolic dysfunction, as well as with ventricular arrhythmias, mural thrombi and thromboembolism. Similar to other cardiomyopathies, LVNC has been associated with mutations in multiple cytoskeletal, sarcomeric, mitochondrial and ion channel genes. However, in contrast to the extensive data available for dilated and hypertrophic cardiomyopathies, the mechanistic basis for LVNC is still largely unknown and even the basic physiologic alterations are still largely undefined. Genetically altered murine models of "hypertrabeculation" all have other congenital heart defects and high embryonic lethality so that good model systems do not exist. Induced pluripotent stem cell-derived cardiomyocytes (iPSC-CMs) derived from patients with LVNC thus represent a unique opportunity to define the cardiomyocyte-autonomous phenotype and elucidate potential mechanisms, as has been recently accomplished with patient-specific iPSC-CMs for Long QT syndrome, LEOPARD syndrome and Timothy syndrome. Two families with multiple affected members with LVNC will serve as the source for both LVNC and control iPSCs derived from dermal fibroblasts. We hypothesize that iPSC-CMs derived from LVNC patients will reproduce key aspects of the disease phenotype, including alterations in systolic and diastolic function, increased arrhythmogenicity, and altered biomechanical properties and serve as a platform for elucidation of LVNC mechanisms. We also hypothesize that alterations in mitochondrial function represent one of the mechanisms for LVNC cardiac dysfunction. Aim 1 will determine the mechanisms of structural and functional alterations in LVNC. We will generate iPSC-CMs derived from LVNC and control subjects, characterize their morphologic, electrophysiologic and biomechanical phenotype, and screen phenotype-specific modulators of cell remodeling, calcium handling, and contractile function as candidates for disease mechanism. Aim 2 will determine the role of altered mitochondrial function and mitochondrial dynamics in LVNC cardiomyopathy.
This study will serve as an excellent training platform for me to obtain training in both the conceptual framework and techniques of stem cell biology, and further my two long-term career goals: first to utilize patient-specific iPSC-CMs as a tool to increase our understanding of the molecular and cellular basis of pediatric cardiovascular disease; second, so that I can play a role in the exciting early stages of the field of stem cell therapeutics for heart failure. With th support of this training program I will be in a unique position, as one of the few pediatric cardiologists in this area, to adapt these therapies for the specific circumstances leading to heart failure in infants and children. (End of Abstract)
描述(由申请人提供):左心室非压实性(LVNC)心肌病越来越被认为是所有年龄段患者心力衰竭的原因之一。LVNC具有独特的表型,区别于扩张性或肥厚性心肌病:左心室深度小梁亢进。与其他形式的心肌病不同,LVNC通常表现为收缩和舒张功能障碍的结合,以及室性心律失常,壁血栓和血栓栓塞。与其他心肌病类似,LVNC与多种细胞骨架、肉瘤、线粒体和离子通道基因的突变有关。然而,与扩张型和肥厚型心肌病的大量可用数据相比,LVNC的机制基础在很大程度上仍然未知,甚至基本的生理改变在很大程度上仍然不明确。基因改变的“超小梁”小鼠模型都有其他先天性心脏缺陷和高胚胎致死率,因此不存在良好的模型系统。因此,来自LVNC患者的诱导多能干细胞衍生的心肌细胞(iPSC-CMs)为定义心肌细胞自主表型和阐明潜在机制提供了独特的机会,正如最近在长QT间期综合征、LEOPARD综合征和Timothy综合征的患者特异性iPSC-CMs中所完成的那样。两个有多个LVNC患病成员的家族将作为LVNC和来自真皮成纤维细胞的控制iPSCs的来源。我们假设来自LVNC患者的iPSC-CMs将重现疾病表型的关键方面,包括收缩和舒张功能的改变,心律失常性的增加和生物力学特性的改变,并作为阐明LVNC机制的平台。我们还假设线粒体功能的改变是LVNC心功能障碍的机制之一。目的1将确定LVNC结构和功能改变的机制。我们将生成来自LVNC和对照受试者的iPSC-CMs,表征它们的形态、电生理和生物力学表型,并筛选细胞重塑、钙处理和收缩功能的表型特异性调节剂作为疾病机制的候选者。目的2将确定线粒体功能改变和线粒体动力学在LVNC心肌病中的作用。
项目成果
期刊论文数量(1)
专著数量(0)
科研奖励数量(0)
会议论文数量(0)
专利数量(0)
hiPSC Modeling of Inherited Cardiomyopathies.
- DOI:10.1007/s11936-014-0320-7
- 发表时间:2014-07
- 期刊:
- 影响因子:0
- 作者:Jung, Gwanghyun;Bernstein, Daniel
- 通讯作者:Bernstein, Daniel
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Daniel Bernstein其他文献
Daniel Bernstein的其他文献
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{{ truncateString('Daniel Bernstein', 18)}}的其他基金
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RE-ENERGIZE FONTAN - RandomizEd Exercise INtERvention desiGned to MaximIZE Fitness in Pediatric FONTAN patients
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RE-ENERGIZE FONTAN - RandomizEd Exercise INtERvention desiGned to MaximIZE Fitness in Pediatric FONTAN patients
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10378166 - 财政年份:2020
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$ 24.31万 - 项目类别:
RE-ENERGIZE FONTAN - RandomizEd Exercise INtERvention desiGned to MaximIZE Fitness in Pediatric FONTAN patients
重新激活 FONTAN - 随机运动干预旨在最大限度地提高儿童 FONTAN 患者的健康状况
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From proteins to cells to tissues: A multi-scale assessment of biomechanical regulation by the myosin molecular motor
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