Development of a Humanized Pig Model of Cystic Fibrosis
Development of a Humanized Pig Model of Cystic Fibrosis
批准号:
8052899
负责人:
Christopher Rogers
金额:
$62.36万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2008
资助国家:
美国
项目状态:
已结题
起止时间:
2008-09-15 至 2011-12-14
关键词:
Animal ModelBacterial Artificial ChromosomesBiochemicalBiochemistryCell AgingCell CountCell Culture TechniquesCell membraneCell surfaceCellsChloride ChannelsChronicCommunitiesCystic FibrosisCystic Fibrosis Transmembrane Conductance RegulatorDefectDeteriorationDevelopmentDiseaseDrug Delivery SystemsEmbryoEpithelial CellsEventExhibitsFailureFamily suidaeFibroblastsFluorescent in Situ HybridizationGenerationsGoalsHumanImplantIn VitroInfectionInflammationInterventionIonsKnock-outLifeLiposomesLongevityLungLung InflammationLung diseasesMeasuresMediatingModelingMolecularMolecular ProfilingMorbidity - disease rateMusMutationNoseNuclearOocytesPathogenesisPatientsPharmaceutical PreparationsPhasePhenylalaninePhysiologyProcessProteinsRegulator GenesRespiratory physiologySiteSouthern BlottingStructureTestingTherapeuticTissuesTransfectionTransgenesTransgenic OrganismsValidationWorkairway surface liquidcystic fibrosis patientsdesigneffective therapyfetalhuman tissuein vivomortalitymouse modelnovelnovel therapeuticsnuclear transferoffspringpig genomepreventpublic health relevancesomatic cell nuclear transfertherapeutic targettoolvoltage
中文摘要
描述(由申请人提供):囊性纤维化(CF)是由囊性纤维化跨膜传导调节因子(CFTR)基因突变引起的。CFTR基因编码一个氯离子通道,该通道调节上皮细胞膜上的离子流。大多数CF患者有一个突变,删除苯丙氨酸508(?F508),并阻止CFTR被正确加工和递送到细胞膜。CFTR未能到达肺中的细胞表面破坏了气道表面液体的组成和数量,并且通过尚未完全理解的机制,开始了导致慢性气道感染和炎症以及肺破坏的级联事件。尽管CF患者的生活有所改善,但它仍然是一种致命的疾病,目前的治疗方法主要针对继发性表现,而不是潜在的缺陷。一些研究表明,?F508-CFTR通道在实验性地递送至细胞膜时保留氯离子通道功能。因此,?F508-CFTR通道已成为药物干预的重要治疗靶点。然而,两个障碍限制了新疗法的进展。首先,缺乏发展肺部疾病的动物模型是理解疾病发病机制和开发有效疗法的主要障碍。CFTR敲除小鼠和?F508突变已被开发出来,但他们没有表现出气道感染和炎症,导致大多数患者的发病率和死亡率。第二,?来自其他物种的F508-CFTR蛋白与人类相比在其加工过程中显示出差异。F508-CFTR。因此,研究重点是了解CF和开发新的治疗方法需要一个新的动物模型表达人类?F508-CFTR。在本申请中,我们建议生成这样的模型。我们将在这个项目中使用猪,因为与小鼠相比,它们的肺和气道的结构,生理学和生物化学与人类非常相似。该项目的最终目标是开发和商业化的猪模型CF携带人类CFTR转基因轴承共同?F508突变。“人性化”?F508猪将是开发和测试CF药物的理想模型,也是回答关于CF发病机制的持久问题的有价值的工具。这项建议概述了这样的猪的发展,首先稳定地引入整个人类CFTR基因轴承?F508突变进入缺乏内源性猪CFTR表达的猪细胞的基因组。然后将转基因细胞用作体细胞核移植的核供体。由此产生的猪将其特征在于分子,生化,和电生理,以确定?F508-CFTR表达和功能。为了证明人类的存在?F508-CFTR转基因猪作为一个相关的模型,在其中测试新的疗法,猪气道文化将建立,和化合物已知部分救援的处理?将检测人体组织中的F508-CFTR。该项目将产生一个动物模型,为CF工业和学术界提供一个机会,以更好地了解疾病及其发病机制,并开发和测试新的治疗和预防策略。因此,这项工作将加速发现这种致命疾病的新疗法。公共卫生相关性:该项目将产生一个动物模型,为囊性纤维化学术界和工业界提供一个机会,以更好地了解疾病及其发病机制,并开发和测试新的治疗和预防策略。因此,这项工作将加速发现这种致命疾病的新疗法。
英文摘要
DESCRIPTION (provided by applicant): Cystic fibrosis (CF) is caused by mutations in the cystic fibrosis transmembrane conductance regulator (CFTR) gene. The CFTR gene encodes a chloride channel that regulates ion flow across epithelial cell membranes. Most CF patients have a mutation that deletes phenylalanine 508 (?F508) and prevents CFTR from being properly processed and delivered to cell membranes. Failure of CFTR to reach the cell surface in the lung disrupts the composition and quantity of the airway surface liquid, and through mechanisms not yet fully understood, begins a cascade of events that leads to chronic airway infection and inflammation and lung destruction. Despite improvements in the lives of patients with CF, it remains a lethal disease, and current treatments are directed at secondary manifestations rather than the underlying defect. Several studies have demonstrated that the ?F508-CFTR channel retains chloride channel function when it is experimentally delivered to the cell membrane. Thus, the ?F508-CFTR channel has become an important therapeutic target for pharmacological intervention. However, two barriers limit progress toward new treatments. First, lack of an animal model that develops lung disease is a major impediment to understanding disease pathogenesis and the development of effective therapies. Mice with CFTR knockouts and with the ?F508 mutation have been developed, but they fail to exhibit the airway infection and inflammation that cause most of the morbidity and mortality in patients. Second, the ?F508-CFTR protein from other species shows differences in its processing compared to human ?F508-CFTR. Thus, studies focused on understanding CF and developing new treatments require a new animal model expressing the human ?F508-CFTR. In this application, we propose to produce such a model. We will use pigs for this project, because in contrast to mice, the structure, physiology, and biochemistry of their lungs and airways closely resemble those of humans. The ultimate goal of this project is to develop and commercialize a porcine model of CF carrying a human CFTR transgene bearing the common ?F508 mutation. A "humanized" ?F508 pig would be the ideal model in which to develop and test CF drugs and a valuable tool for answering persistent questions about CF pathogenesis. This proposal outlines the development of such a pig by first stably introducing the entire human CFTR gene bearing the ?F508 mutation into the genome of pig cells lacking endogenous pig CFTR expression. The transgenic cells will then be used as nuclear donors for somatic cell nuclear transfer. The resulting pigs will be characterized molecularly, biochemically, and electrophysiologically to determine ?F508-CFTR expression and function. To validate the human ?F508-CFTR transgenic pig as a relevant model in which to test new therapies, pig airway cultures will be established, and compounds known to partially rescue the processing of ?F508-CFTR in human tissues will be tested. This project will generate an animal model that will provide the CF industrial and academic community with an opportunity to better understand the disease and its pathogenesis and to develop and test new therapeutics and preventative strategies. Thus, this work will accelerate the discovery of novel therapies for this lethal disease. PUBLIC HEALTH RELEVANCE: This project will generate an animal model that will provide the cystic fibrosis academic and industrial community with an opportunity to better understand the disease and its pathogenesis and to develop and test new therapeutics and preventative strategies. Thus, this work will accelerate the discovery of novel therapies for this lethal disease.
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