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Novel Approaches for Correcting Respiratory Insufficiency in Pompe Disease

Novel Approaches for Correcting Respiratory Insufficiency in Pompe Disease
纠正庞贝病呼吸功能不全的新方法
批准号:
8912059
负责人:
Mai ElMallah
金额:
$10.77万
依托单位国家:
美国
项目类别:
财政年份:
2014
资助国家:
美国
项目状态:
已结题
起止时间:
2014-09-15 至 2019-04-30
关键词:
AMPA ReceptorsAcidsAddressAffectAlpha-glucosidaseAutomobile DrivingAwardBiochemicalBloodBlood - brain barrier anatomyBrainBrain StemBreathingCaringChildhoodClinicalClinical TreatmentClinical TrialsCouplesDataDefectDependovirusDiseaseDisease ProgressionEducationEmployeeEnzymesEvaluationFDA approvedFailureFeedbackFellowshipFloridaFunctional disorderFundingGene DeliveryGenesGlycogenGlycogen Storage DiseaseGlycogen storage disease type IIGoalsGrantHealthHumanHypercapnic respiratory failureInfantInjection of therapeutic agentIntramuscular InjectionsK-Series Research Career ProgramsKnowledgeLaboratoriesLeadershipLearningLungMechanical VentilatorsMechanical ventilationMentorsMolecular NeurobiologyMorbidity - disease rateMotorMotor NeuronsMotor outputMusMuscleMutationNCI Scholars ProgramNeuraxisNeurobiologyNeuromuscular DiseasesNeuronsOpiatesOutputPathologyPatientsPediatricsPharmaceutical PreparationsPhasePublishingReportingResearchResearch MethodologyResearch PersonnelResearch Project GrantsResourcesRespirationRespiratory DiaphragmRespiratory InsufficiencyRespiratory MusclesRespiratory TherapyRespiratory physiologyScientistSeriesSignal TransductionSingle-Gene DefectSleepSpinal CordStagingStructureSynaptic TransmissionTechniquesTestingTextTherapeutic AgentsTimeTongueTrainingTranslatingTranslational ResearchTreatment EfficacyUnited States National Institutes of HealthUniversitiesViralWorkWritingbasecareerdesignenzyme deficiencyenzyme replacement therapygene therapyglucosidaseinnovationmeetingsmortalitymouse modelneuromechanismneuromuscularnovelnovel strategiesnovel therapeuticspediatric departmentpreclinical studyprofessorprogramsrelating to nervous systemresearch studyrespiratoryskills

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中文摘要
翻译
简介(申请人提供):El Mallah博士是佛罗里达大学儿科肺科儿科助理教授,75%的时间用于研究,25%用于临床。在拟议的奖项期间,她的职业发展和学习目标是:1)获得呼吸神经生物学和分子治疗方面的核心知识;2)获得研究方法、技术和科学写作方面的进一步专业知识;3)发展学术领导技能。El Mallah博士的长期职业目标是成为一名成功的独立儿科肺部临床医生科学家,重点是转化性研究。作为她的研究的结果,她发表了她的发现,在国家会议上展示了这些发现,并获得了几个奖项和赠款,包括帕克·B·弗朗西斯奖学金奖。环境:富勒博士和伯恩博士是杰出的导师,有成功导师的记录。富勒博士是呼吸神经生物学领域的领军人物,而伯恩博士则是国家基因治疗专家。他们都有大量的NIH资金,非常活跃和富有成效的实验室,并将提供资源,以帮助候选人的研究项目。佛罗里达大学(UF)儿科系提供一个结构化的学者项目,旨在提高研究和领导技能,并提供结构化的反馈和评估。UF还提供员工教育计划,以支持应聘者的课程工作。研究:本提案中的研究项目将建立在候选人先前针对庞培病呼吸功能障碍的研究基础上。此外,它还将探索一种新的治疗药物,用于刺激庞贝(GAA-/-)小鼠的呼吸驱动。Pompe病是一种致命的神经肌肉疾病,由酸性α-葡萄糖苷酶(GAA)基因突变引起,酸性α-葡萄糖苷酶是降解溶酶体糖原所必需的酶。患有庞培病的婴儿患有呼吸功能不全,经常需要机械通气。呼吸问题最初被归因于肌肉病理,但我们的小组最近显示出中枢神经系统的贡献。不幸的是,FDA批准的唯一一种治疗庞培病的方法(酶替代疗法)并不理想,因为它不能穿越血脑屏障。因此,许多接受酶替代治疗的患者仍然需要机械通气。我们提出了一系列临床前研究,直接解决庞培病中枢神经系统的治疗需求。具体地说,我们将评估Ampakines的治疗效果,Ampakines是一种能够增强呼吸神经元兴奋性谷氨酸能神经传递的化合物。此外,由于Ampakines不直接解决潜在的病理,我们将使用基因传递来纠正潜在的基因缺陷。单独来说,基因传递并不能传递整个运动神经元,而且似乎只能部分纠正神经功能障碍。因此,我们建议研究Ampakines对AAV基因治疗后Pompe小鼠呼吸功能的影响,以优化呼吸功能障碍的治疗。总体而言,这个项目将检验一个重要而新颖的假设,并将为候选人提供新的实验技术培训。支持这一建议的基本假设是,Ampakine治疗将增强Pompe病的呼吸运动输出,通过基于AAV的基因治疗提高CNS GAA活性后,这些药物的功能将进一步增强。这将通过两个特定的目标进行检验:目标1:检验安帕卡因治疗将刺激庞贝病小鼠模型呼吸驱动的假设。目的:验证以AAV为基础的基因治疗提高中枢神经系统GAA活性后,Ampakine治疗效果将进一步增强的假说。项目相关性:这项工作是创新的,因为这些兴奋剂Ampakines对呼吸功能障碍的影响尚未在神经肌肉疾病的背景下进行评估。此外,ampakine治疗肯定是通过神经机制起作用的,将用于强调神经对庞贝小鼠呼吸功能障碍的贡献,以及为了治疗这种致命疾病而以中枢神经系统为靶点的必要性。此外,由于Ampakines和AAV-GAA都已经进行了第一阶段和第二阶段的临床试验,对人类来说是安全的,这项工作有很大的潜力迅速转化为人类护理,并影响庞培病的临床治疗。
英文摘要
DESCRIPTION (provided by applicant): Dr. El Mallah is an Assistant Professor of Pediatrics, Pediatric Pulmonary Division, University of Florida, with 75% of time devoted to research, 25% to clinical. During the proposed award, her career development and learning objectives are to 1) acquire core knowledge in respiratory neurobiology and molecular therapy, 2) gain further expertise in research methodology, techniques, and scientific writing, and 3) develop academic leadership skills. Dr. El Mallah's long-term career goal is to become a successful independent pediatric pulmonary clinician scientist with an emphasis on translational research. As a result of her research she has published her findings, presented them at national meetings and has received several awards and grants, including the Parker B. Francis fellowship award. ENVIRONMENT: Drs. Fuller and Byrne are exceptional mentors, with a track record of successful mentees. Dr. Fuller is a leader in respiratory neurobiology, while Dr. Byrne is a national gene therapy expert. They both have extensive NIH funding, very active and productive laboratories, and will provide the resources to assist the candidate in her research project. The University of Florida (UF) Pediatric Department offers a structured scholars program designed to enhance research and leadership skills, and to give structured feedback and evaluations. UF also offers an employee education program to support coursework for the candidate. RESEARCH: The research project in this proposal will build on the candidate's prior research on targeting respiratory dysfunction in Pompe disease. In addition, it will explore a novel therapeutic agent for stimulating respiratory drive in a Pompe (Gaa-/-) mouse model. Pompe disease is a fatal neuromuscular disorder resulting from mutations in the gene for acid alpha- glucosidase (GAA) - an enzyme necessary to degrade lysosomal glycogen. Infants with Pompe disease suffer with respiratory insufficiency often leading to mechanical ventilation. Breathing problems have originally been attributed to muscle pathology but our group has recently shown a central nervous system contribution. Unfortunately, the only FDA approved therapy for Pompe disease (enzyme replacement therapy) is suboptimal because it does not cross the blood brain barrier. Therefore, many patients on enzyme replacement therapy still require mechanical ventilation. We propose a series of pre-clinical studies that directly address the need for treatment of the CNS in Pompe disease. Specifically, we will evaluate the therapeutic efficacy of ampakines, compounds that enhance excitatory glutaminergic neural transmission in respiratory neurons. In addition, since ampakines do not directly address the underlying pathology, we will use gene delivery to correct the underlying gene defect. Alone, gene delivery does not transduce the entire motoneuron pool and appears to only partially correct neural dysfunction. Therefore we propose to study the impact of ampakines on respiratory function following AAV gene therapy in Pompe mice in order to optimize therapy for respiratory dysfunction. Overall, this project will test an important and novel hypothesis and will provide the candidate with training in new experimental techniques. The fundamental hypothesis driving this proposal is that ampakine therapy will potentiate respiratory motor output in Pompe disease, and the function of these drugs will be further enhanced after CNS GAA activity is increased via AAV-based gene therapy. This will be examined using two specific aims: Aim 1: To test the hypothesis that ampakine therapy will stimulate respiratory drive in a mouse model of Pompe disease. Aim 2: To test the hypothesis that the efficacy of ampakine therapy will be further enhanced after CNS GAA activity is increased via AAV-based gene therapy. PROJECT RELEVANCE: This work is innovative because the impact of these excitatory agents, ampakines on respiratory dysfunction has not been evaluated in the context of neuromuscular disorders. Moreover, the ampakine treatments, which definitively work via a neural mechanism, will serve to emphasize the neural contribution to respiratory dysfunction in Pompe mice, and the necessity to target the CNS in order to treat this fatal disease. In addition, since both ampakines and AAV-GAA have already undergone phase I and II clinical trials and are safe for human use, this work has the strong potential to quickly translate to human care and to impact the clinical treatment of Pompe disease.
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