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Mechanisms of neuronal network dysfunction in juvenile neuronal ceroid lipofuscinosis

Mechanisms of neuronal network dysfunction in juvenile neuronal ceroid lipofuscinosis
幼年神经元蜡质脂褐质沉积症神经元网络功能障碍的机制
批准号:
10248394
负责人:
Rebecca Clare Ahrens-Nicklas
金额:
$18.8万
依托单位国家:
美国
项目类别:
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-09-30 至 2023-08-31
关键词:
3-DimensionalAddressAdolescentAffectAfferent PathwaysAgeAutomobile DrivingAutopsyAwardBasic ScienceBiochemicalBiochemistryBlindnessBrainCLN3 geneCellsCessation of lifeChildChildhoodClinicalConfocal MicroscopyDataDefectDementiaDevelopmentDiseaseDisorder of neurometabolic regulationDoctor of PhilosophyElectroencephalogramElectrophysiology (science)Excitatory SynapseFunctional disorderFundingFutureGene therapy trialGenesGoalsHippocampus (Brain)HumanImageImaging TechniquesImmunohistochemistryIncidenceIndividualInvestigationLeadLearningLinkLongevityLysosomal Storage DiseasesMeasurementMeasuresMediatingMentorsMetabolicMetabolic DiseasesModelingMorphologyMusMutationNerve DegenerationNervous System PhysiologyNeuraxisNeurocognitiveNeurologicNeurologic SymptomsNeuronal Ceroid-LipofuscinosisNeuronsNeurosciencesOutcomePaperPathologyPatientsPerforant PathwayPhenotypePhysiciansPhysiologyPopulationPropertyPublicationsScientistSecondary toSeizuresSliceStructureSymptomsSynapsesTestingTherapeuticTimeLineTrainingTranslatingVariantWorkbasecareerdentate gyrusdrug discoveryenzyme replacement therapyexperiencegranule cellimaging studyimprovedimproved functioninginsightjuvenile neuronal ceroid lipofuscinosismouse modelnetwork dysfunctionneural circuitneurobiotinneuronal circuitryneuropathologynew therapeutic targetnovelnovel strategiesnovel therapeuticspatch clamppostnatalprotein expressionreconstructionresponserestorationskillssymptomatic improvementsynaptic functiontherapy developmenttranslational scientistvoltage sensitive dye

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PROJECT SUMMARY Most metabolic diseases, including two-thirds of lysosomal storage disorders (LSD) affect the brain. For many, including Juvenile Neuronal Ceroid Lipofuscinosis (JNCL), it is not known how the biochemical defect induces central nervous system dysfunction. Studies have focused on cellular-level pathology, with few investigations of how metabolic defects disrupt functional neuronal circuits. Ultimately, disruption of brain networks leads to the symptoms, such as seizures and neurocognitive regression, that are devastating to patients. JNCL results from biallelic mutations in CLN3. How loss of CLN3 protein disrupts neurologic function is unclear. In preliminary work, I have demonstrated that JNCL mice, like human patients, have abnormal electroencephalograms, suggesting mice are a suitable model for circuit-level studies. On autopsy, JNCL brains show neurodegeneration and lysosomal storage accumulation; the hippocampus is especially vulnerable. In my preliminary voltage-sensitive dye imaging (VSDI) studies of the JNCL mouse hippocampus, I have found progressive changes in excitability. Also, recent studies of late-stage JNCL show synaptic dysfunction in the mouse hippocampus. However, in studies of late-stage disease it is impossible to parse which changes are due to the primary loss of CLN3 protein or secondary to widespread neuropathology. Gene and/or enzyme replacement therapy is being developed for many LSDs. While this is exciting, moving to gene-based treatment before we know if replacement will fix the patients is problematic. Where and when to rescue protein expression is unclear. A major unanswered question is if correction of the biochemical defect underlying a metabolic disease will rescue the function of neuronal networks and improve symptoms. My central hypothesis is that in JNCL, hippocampal circuit pathology arises from synaptic dysfunction induced by loss of CLN3 protein. Because of the development of abnormal network dynamics, a vulnerable window may exist beyond which correction of single cell biochemistry will not correct functional defects. I will evaluate this by: 1) defining circuit level pathology using VSDI in two JNCL models; 2) exploring the synaptic and cellular changes driving network changes, and 3) assessing if rescue of CLN3 expression at different stages of disease can rescue circuit and synaptic dynamics. This work has important implications for future studies of the basic science of the CLN3 protein and novel therapies for JNCL. As an MD/PhD, I am passionate about translating basic science discoveries into new therapies for my patients with neurometabolic disorders. My mentors Dr. Eric Marsh, a physician-scientist neurogeneticist and electrophysiologist, and Dr. Beverly Davidson, a lysosomal storage disease expert, have devoted their careers to this goal. Under their guidance, I will use this 5-year experience to learn to apply my electrophysiology skills to studies of the brain and to prepare for a career as an independent R01-funded translational researcher.
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Network modulation to improve gene therapy in CLN3 disease
  • 批准号:
    10579621
  • 项目类别:
  • 资助金额:
    $48.76万
  • 财政年份:
    2023
  • 负责人:
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  • 批准号:
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  • 项目类别:
  • 资助金额:
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  • 财政年份:
    2022
  • 负责人:
    Rebecca Clare Ahrens-Nicklas
  • 依托单位:
Disease Severity Stratification in Multiple Sulfatase Deficiency
  • 批准号:
    10513906
  • 项目类别:
  • 资助金额:
    $23.25万
  • 财政年份:
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  • 负责人:
    Rebecca Clare Ahrens-Nicklas
  • 依托单位:
Network modulation to improve gene therapy in CLN3 disease
  • 批准号:
    10626675
  • 项目类别:
  • 资助金额:
    $47.18万
  • 财政年份:
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  • 负责人:
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  • 依托单位:
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