Adeno-associated Viral Vector Modification for Targeted Motor Neuron Therapy
Adeno-associated Viral Vector Modification for Targeted Motor Neuron Therapy
批准号:
7892423
负责人:
NICHOLAS M BOULIS
金额:
$22.6万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-07-15 至 2011-12-30
关键词:
Adverse effectsAffectAffinityAmyotrophic Lateral SclerosisApoptosisApoptoticBindingBlood - brain barrier anatomyCapsidCapsid ProteinsCell DeathCell membraneCessation of lifeCharacteristicsClinical TreatmentClinical TrialsComputer SimulationDataDevelopmentDiseaseEngineeringEpitopesExhibitsFoundationsGene DeliveryGene ExpressionGenerationsGenesGrantGrowth FactorGrowth Factor GeneHalf-LifeHindlimbHumanInjection of therapeutic agentInjuryInsulin-Like Growth Factor IIntra-Arterial InjectionsIntramuscularIntramuscular InjectionsIntrathecal InjectionsLeadMediatingModelingModificationMolecularMotor Neuron DiseaseMotor NeuronsMusMuscleMutationNervous system structureNeurodegenerative DisordersNeuronsParentsPathway interactionsPeptidesPeripheral NervesPhase I Clinical TrialsPresynaptic TerminalsPrimatesProcessProductionProgressive Muscular AtrophyProteinsRattusResearch PersonnelRouteSafetySerotypingSite-Directed MutagenesisSkeletal MuscleSourceSpecificitySpinal CordTestingTetanus Helper PeptideTherapeuticTranslatingTropismVariantViralViral VectorVirusadeno-associated viral vectorbasedisabilitygene therapyimprovedin vivomotor neuron degenerationmouse modelmutantneural growthneuroprotectionnovelpre-clinicalpreventpublic health relevancerespiratoryretrograde transporttherapeutic developmenttherapeutic genetherapeutic proteinuptakevector
中文摘要
描述(由申请人提供):运动神经元疾病(MND),如肌萎缩性侧索硬化症(ALS)和脊髓性肌萎缩症(SMA),是进行性神经退行性疾病,具有上和/或下运动神经元(MN)变性的共同特征。尽管MND的分子机制尚不完全清楚,但所有形式最终都会导致运动神经元凋亡。无论损伤的具体机制如何,使用营养因子或抗凋亡蛋白的MND治疗策略都可以赋予MN保护作用。目前,使用慢病毒和腺相关病毒(AAV)载体的基因治疗是最有希望在MND中提供这些治疗的候选方法之一。由于AAV载体有吸引力的安全性,各种临床试验正在进行或计划应用于包括ALS在内的神经退行性疾病。尽管具有吸引人的特性,但AAV载体对骨骼肌具有高亲和力,对轴突终末的趋向性有限,这阻碍了IM注射后MN基因的传递。这些限制阻碍了通过肌内AAV治疗ALS的临床试验的积极发展。IGF-I注入。为了克服这一障碍,我们通过插入一种具有高MN亲和力和逆行转运的新型肽(Tet1)来修饰载体的衣壳,增加AAV介导的MN基因传递。目前的拨款旨在支持确定最佳靶向AAV载体,以增强MN基因传递,并证明与上一代载体相比,ALS大鼠模型中的存活率提高。逆行分娩的显著改善将促使ALS基因治疗临床试验的积极发展。我们的应用程序将尝试演示:1。AAV Cap基因的衣壳突变,将新的神经元结合肽整合到病毒外壳中,可以提高MN基因传递的效率和特异性。2. 靶向aav介导的igf - 1基因表达可保护SOD1大鼠的MNs。3. 肽的插入可能会增强神经传递的替代途径,如动脉内和鞘内注射。
英文摘要
DESCRIPTION (provided by applicant): Motor neuron diseases (MND), such as Amyotrophic Lateral Sclerosis (ALS) and Spinal Muscular Atrophy (SMA), are progressive neurodegenerative disorders that share the common characteristic of upper and/or lower motor neuron (MN) degeneration. Although the molecular mechanisms underlying MND are not entirely clear, all forms ultimately lead to apoptotic motor neuron death. Therapeutic strategies for MND, using trophic factors, or anti-apoptotic proteins can confer MN protection regardless of the specific mechanism of injury. Currently, gene therapy is one of the most promising candidates to deliver these treatments in MND, using lentiviral and adeno-associated viral (AAV) vectors. Because of the attractive safety profile of AAV vectors a variety of clinical trials are ongoing or planned for application to neurodegenerative diseases including ALS. Despite their appealing characteristics, AAV vectors have high affinity for skeletal muscle, as well as limited tropism for axon terminals, impeding MN gene delivery after IM injection. These limitations halted the aggressive development of a clinical trial for the treatment of ALS through intramuscular AAV.IGF-I injection. To overcome this barrier, we have modified the vector's capsid through the insertion of a novel peptide (Tet1) with high MN affinity and retrograde transport, increasing AAV mediated MN gene delivery. The present grant seeks support to identify the optimal targeted AAV vector for enhanced MN gene delivery, and demonstrate improved survival in the rat model of ALS compared to the earlier generation vector. Substantially improved retrograde delivery will prompt a return to the aggressive development of a clinical trial for ALS gene therapy. Our application will attempt to demonstrate that: 1. Capsid Mutation of the AAV Cap gene, incorporating novel neuronal binding peptides into the virus' coat, can increase the efficiency and specificity of MN gene delivery. 2. Targeted AAV-mediated IGF-I gene expression will protect MNs in SOD1 rats. 3. Peptide insertion may enhance neuronal delivery following alternative delivery routes, such as intra-arterial and intrathecal injections.
PUBLIC HEALTH RELEVANCE: Death and disability in Motor neuron diseases (MND), such as Amyotrophic Lateral Sclerosis (ALS), result from death of cells in the nervous system called motor neurons (MN). In the present application, we will engineer viruses for safe and enhanced delivery of therapeutic genes to motor neurons. These viruses will be capable of delivering genes to the spinal cord after simple muscle injection, providing a safe approach to gene therapy for ALS.
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