MSC-derived microvesicles in metabolic syndrome and renovascular disease
MSC-derived microvesicles in metabolic syndrome and renovascular disease
批准号:
9231450
负责人:
Lilach O Lerman
金额:
$68.82万
依托单位:
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:
2015-03-10 至 2019-02-28
关键词:
AddressAdipose tissueAnimal ModelAnimalsAnti-Inflammatory AgentsAnti-inflammatoryAttenuatedBasic ScienceBlood PressureCell TherapyCell physiologyCholesterolChronicChronic Kidney FailureClinicalClinical MedicineDevelopmentDiabetes MellitusDiseaseDoseDyslipidemiasEffectivenessEpidemicEvolutionFamily suidaeFatty acid glycerol estersFunctional ImagingFunctional disorderGenetic TranscriptionGlucoseGoalsHealth ProfessionalHumanHypertensionImaging DeviceImaging TechniquesIn VitroInflammationInjectableInjection of therapeutic agentInjuryInsulin ResistanceInterventionIschemiaKidneyKidney DiseasesLigandsLinkMagnetic Resonance ImagingMediatingMembraneMesenchymal Stem CellsMessenger RNAMetabolic DiseasesMetabolic syndromeMethodsMicroRNAsMicrocirculationMissionModelingMolecular AnalysisMonitorNational Institute of Diabetes and Digestive and Kidney DiseasesObesityOutcomeParentsPatientsPatternPhysiologicalPrevalencePropertyReagentRegenerative MedicineRenal functionResolutionRiskSignal TransductionStem cellsStructureTestingTherapeuticTranslational ResearchTubular formationX-Ray Computed Tomographybasecardiovascular risk factorclinical applicationclinically relevantextracellularhemodynamicshuman diseaseimprovedin vivoinnovationkidney vascular structuremicrovesiclesnotch proteinnovelparacrinepublic health relevanceregenerativeregenerative therapytooltranscriptome sequencingtranslational studytreatment strategy
中文摘要
描述(由申请人提供):本申请响应FOA PAR-13-114,“干细胞为基础的再生医学动物模型的改进”,它鼓励R01申请,旨在表征动物干细胞,改进现有的,并创建新的人类疾病动物模型。该倡议的目的是促进以干细胞为基础的疗法用于再生医学,包括展示特定干细胞或其衍生物的功能及其在改进的AIMA模型中的有效性。代谢综合征(METS)是一系列心血管危险因素,它会导致肾脏损伤,并增加慢性肾脏疾病的风险,部分原因是使其容易受到缺血的影响。事实上,与肾血管疾病(RVD)共存的METS与血运重建后较差的预后有关,可能是由于METS的炎症特征。然而,减弱其肾脏影响的工具尚未确定,部分原因是缺乏甲硫氨酸的翻译动物模型和临床适用的治疗工具。脂肪组织来源的间充质干细胞(MSC)具有强大的旁分泌抗炎特性,最近的研究将其归因于它们释放的细胞外微囊(EV)。然而,EV的有效性还没有在大型动物模型中进行测试。当前建议的目标是开发和评估这一新平台在我们最近开发的一种新的甲硫氨酸和RVD猪模型中提高肾脏存活率的能力,该模型紧密模拟人类的病理生理学,并允许与人类临床医学相关的转译研究和干预。该项目的假设是,与其亲本MSC相似,MSC来源的EV在减少MET合并单侧RVD时的肾脏损害方面明显且有效。我们将初步比较EV与其亲本MSC的mRNA和Micro-RNA的表达模式,然后评估它们在肾内注射后的效果。为此,我们将采用我们开发和改进的尖端生理成像技术,这些技术特别适合研究单个肾脏,包括计算机断层扫描和磁共振成像。此外,我们将研究电动汽车调解其母公司MSC赋予的利益的机制。将追求三个特定的目标:特定目标1将测试MSC来源的EV显示出不同的mRNA和Micro-RNA表达模式的假设,其中包括富含促血管生成的货物。特定目标2将检验EV将减轻Mets-RVD肾脏损伤的假设。具体目标3将验证EVS通过Delta-like-4信号介导其亲本MSC的旁分泌血管生成效应的假设。在拟议的研究中开发和使用的新工具提供了一个独特的机会,可以评估使用创新的和临床适用的干预措施和治疗平台来改变METS/RVD患者肾脏结局的可行性,这可能有助于制定RVD和METS患者的管理战略。
英文摘要
DESCRIPTION (provided by applicant): This application responds to FOA PAR-13-114, "Improvement of Animal Models for Stem Cell-Based Regenerative Medicine", which encourages R01 applications aimed at characterizing animal stem cells and improving existing, and creating new, animal models for human disease. The intent of that initiative is to facilitate the use of stem cell-based therapies for regenerative medicine, including demonstration of the functionality of specific stem cells or their derivatives and their effectiveness in improved anima models. The metabolic syndrome (MetS) is a constellation of cardiovascular risk factors, which induces kidney damage and raises the risk for chronic kidney disease, partly by rendering it vulnerable to ischemia. Indeed, MetS co- existing with renovascular disease (RVD) is linked to poorer outcomes after revascularization, possibly due to inflammation that characterizes MetS. However, tools to blunt its renal effects are yet to be identified, partly due to the lack of translational animal models of MetS and clinically applicable therapeutic tools. Adipose tissue-derived Mesenchymal stem cells (MSC) have potent paracrine anti-inflammatory properties, which recent studies have attributed to extracellular microvesicles (EV) that they release. Yet, the efficacy of EV delivery has not been tested in a large animal model. The goal of the current proposal is to develop and evaluate the capability of this novel platform to improve kidney viability in a novel swine model of MetS and RVD that we recently developed which closely mimics human pathophysiology and allows translational studies and interventions relevant to human clinical medicine. The hypothesis underlying this project is that similar to their parent MSC, MSC-derived EV is distinct and effective in decreasing damage in the kidney in MetS complicated by unilateral RVD. We will initially characterize the mRNA and micro-RNA expression pattern of EV in comparison to their parent MSC, and then assess their effects after intra-renal injection. To this end we will employ cutting-edge physiologic imaging techniques that we developed and refined, which are uniquely suited for studying the single kidney, including computed tomography and magnetic resonance imaging. Moreover, we will study the mechanism by which EVs mediate the benefits conferred by their parent MSC. Three specific aims will be pursued: Specific Aim 1 will test the hypothesis that MSC-derived EV show distinct patterns of mRNA and micro-RNA expression, which include enrichment with pro-angiogenic cargo. Specific Aim 2 will test the hypothesis that EV will attenuate injury of MetS-RVD kidneys. Specific Aim 3 will test the hypothesis that EVs mediate the paracrine angiogenic effects of their parent MSC via delta-like-4 signaling. The novel tools developed and employed in the proposed studies provide a unique opportunity to assess the feasibility of modifying renal outcomes in MetS/RVD using innovative and clinically applicable interventions and treatment platforms, which will likely contribute towards management strategies for patients with RVD & MetS.
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会议论文
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