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Non-viral gene delivery to neural progenitor cells in the SVZ

Non-viral gene delivery to neural progenitor cells in the SVZ
非病毒基因传递至 SVZ 神经祖细胞
批准号:
8215909
负责人:
Suzie H. Pun
金额:
$34.51万
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:
2009-02-15 至 2014-01-31
关键词:
3&apos Untranslated RegionsAdultAffectAlzheimer&aposs DiseaseAntibodiesBacterial DNABiocompatibleBiological AssayBrainBrain DiseasesBrain-Derived Neurotrophic FactorCell CycleCell LineCell ProliferationCell divisionCellsCentral Nervous System DiseasesChargeClinicalConfocal MicroscopyCytolysisDNADNA SequenceDataDevelopmentDiseaseDoseElementsEncapsulatedEngineeringEpidermal Growth FactorExtravasationFlow CytometryFluorescenceFluorescence Resonance Energy TransferFluorescent Antibody TechniqueGene DeliveryGene TransferGenerationsGenesGoalsGrowth FactorHuntington DiseaseImageImmunohistochemistryIn VitroInjection of therapeutic agentIntraventricularIntraventricular InjectionsKineticsLabelLiposomesLuciferasesMammalian CellMediatingMembraneMitogensModelingMolecular WeightMonitorMusNatural regenerationNervous system structureNeurodegenerative DisordersNeuronal DifferentiationNeuronsNon-Viral VectorNuclear Pore ComplexNucleic AcidsParkinson DiseaseParticle SizePatientsPeptidesPhenotypePhysical condensationPlasmid Cloning VectorPlasmidsPolyethylene GlycolsPolymersPopulationProceduresProliferatingPumpRecoveryRelative (related person)ReporterReporter GenesSafetyScreening procedureSeriesSiteSodium ChlorideStaining methodStainsStem cellsStrokeSurfaceSynthetic GenesSystemTechnologyTestingTimeToxic effectTransfectionTransgenesVentricularVertebral columnViralWorkbasebiocompatible polymerbiomaterial compatibilitybrain tissuecell motilitycell typedisulfide bondfluorophoreimprovedin vivointerestlateral ventriclelight scatteringmethacrylamidemigrationnanoparticulatenerve stem cellneurogenesisnon-viral gene deliveryoutcome forecastpalliativeparticlepromoterpublic health relevancerelating to nervous systemstemsubventricular zonetargeted deliverytherapeutic genetherapeutic targettraffickingtransgene expressionuptakevectorvector biodistribution

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中文摘要
翻译
描述(由申请人提供):大脑脑室下区(SVZ)中发现的神经干细胞和祖细胞(分别为NSCs和npc)由于其通过细胞分裂进行更新的能力,具有替代受损神经元群的潜力。因此,这些细胞是神经退行性疾病治疗操作的有趣靶点。虽然从SVZ产生新神经元是自然发生的,但很明显,为了达到与治疗相关的神经发生水平,需要一些机制,如生长因子的局部递送,以增加干细胞区新神经元的分化、迁移和存活。这项工作的目标是开发一种合成的、生物相容性的载体,用于有效地将基因传递给SVZ中的npc。该聚合载体将包含多种生物活性肽,以协助NPC靶向和细胞内运输。具体来说,肽功能化聚合物将包括:(i)用于DNA凝聚、细胞靶向和内体逃逸的生物活性肽,(ii)用于生物相容性的HPMA (N-(2-羟丙基)甲基丙烯酰胺)骨架,(iii)用于颗粒稳定的聚乙二醇(PEG),以及(iv)用于细胞内化后降解的二硫键。我们将通过体外转染筛选优化聚合物组成,并通过流式细胞术、共聚焦显微镜和FRET分析研究其传递机制。此外,质粒载体将被设计用于在npc中持续的转基因表达,在npc分化为成熟神经元后关闭。最具潜力的载体将通过小鼠脑室内给药进行评估,以进一步优化载体,使其在体内有效递送。双标记(质粒和聚合物)载体在给药后的分布将通过脑切片共聚焦显微镜成像。此外,通过脑切片荧光抗体染色确定转染后不同时间点表达所传递转基因的细胞类型。最后,通过局部传递生长因子来增加分裂细胞的数量,通过传递脑源性神经营养因子(BDNF)质粒来促进神经元的迁移和存活,进一步提高体内基因转移的效率。如果成功,这个项目的潜在影响是广泛的。所开发的载体可作为运载治疗基因的载体,用于治疗神经发生性中枢神经系统疾病。
英文摘要
DESCRIPTION (provided by applicant): The neural stem and progenitor cells (NSCs and NPCs, respectively) found in the subventricular zone (SVZ) of the brain have the potential to replace damaged neuronal populations due to their ability to renew through cell division. These cells are therefore interesting targets for therapeutic manipulation in treatment of neurodegenerative diseases. Although the generation of new neurons from the SVZ occurs naturally, it is clear that in order to achieve therapeutically-relevant levels of neurogenesis, mechanisms such as localized delivery of growth factors to increase differentiation, migration and survival of new neurons from stem cell zones is required. The goal of this work is to develop a synthetic, biocompatible vector for efficient gene delivery to NPCs in the SVZ. The polymeric vector will incorporate multiple bioactive peptides to assist in NPC targeting and intracellular trafficking. Specifically, the peptide-functionalized polymer will include: (i) bioactive peptides for DNA condensation, cell targeting and endosomal escape, (ii) HPMA (N-(2- hydroxypropyl)methacrylamide) backbone for biocompatibility (iii) polyethylene glycol (PEG) for particle stabilization, and (iv) disulfide bonds for degradation after cellular internalization. The polymer composition will be optimized for high efficiency gene delivery to NPCs through in vitro transfection screening, and the mechanism of delivery investigated through flow cytometry, confocal microscopy and FRET analyses. In addition, the plasmid vector will be engineered for sustained transgene expression in NPCs that shuts down after the NPCs differentiate into mature neurons. The most promising vectors will be evaluated by intraventricular administration to mice in order to further optimize vectors for efficient in vivo delivery. The distribution of dual-labeled (plasmid and polymer) vectors after administration will be imaged by confocal microscopy of brain sections. In addition, the type of cells expressing the delivered transgene at various time points after transfection will be determined by fluorescent antibody staining of brain sections. Finally, the efficiency of in vivo gene transfer will be further enhanced by amplifying the number of dividing cells through localized growth factor delivery and by promoting neuron migration and survival by delivery of the BDNF (brain- derived neurotrophic factor) plasmid. If successful, the potential impact of this project is broad. The developed vectors could be used as vehicles to deliver therapeutic genes for treatment of neurogenerative CNS disorders. PUBLIC HEALTH RELEVANCE: Neurogenerative diseases of the brain, such as Alzheimer's Disease, Huntington's Disease, and Parkinson's Disease, affect over 20 million people worldwide, and most current treatments for these diseases are palliative rather than restorative. One promising treatment approach to neurodegenerative disorders is the manipulation of neural stem and progenitor cells in the adult human nervous system to restore lost neuronal populations. The goal of this work is to develop synthetic gene delivery vectors that can be used to specifically deliver growth factors to neural progenitor cells in the brain in order to stimulate neurogenesis. The proposed approach involves incorporating bioactive peptides in the polymeric vector to promote targeting to the neural progenitor cells and efficient intracellular delivery. The developed technology would have broad significance as vehicles to deliver therapeutic genes for CNS disorders.
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