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Mechanisms of SCI Recovery after hCNS Stem Cell Grafts

Mechanisms of SCI Recovery after hCNS Stem Cell Grafts
hCNS 干细胞移植后 SCI 恢复机制
批准号:
7418235
负责人:
Aileen J Anderson
金额:
$26.75万
依托单位国家:
美国
项目类别:
财政年份:
2004
资助国家:
美国
项目状态:
已结题
起止时间:
2004-08-02 至 2010-04-30
关键词:
AblationAcuteAdultAffectAllograftingAnimalsApoptosisAstrocytesAxonBehaviorBehavioralBrainBrain-Derived Neurotrophic FactorCALCA geneCalcitonin Gene-Related PeptideCell SurvivalCell TransplantationCell TransplantsCell surfaceCellsCerebellumChondroitin Sulfate ProteoglycanCicatrixContusionsDataDemyelinationsDepositionDevelopmentDiphtheria ToxinDistalDoseElectron MicroscopyEmbryoEngraftmentEnvironmentEventExerciseExtracellular MatrixFetal TissuesFiberFibroblastsFluorescence-Activated Cell SortingGray unit of radiation doseGrowthHumanImmune responseImmunodeficient MouseInjection of therapeutic agentInjuryInterventionInvestigationLabelLesionLocomotor RecoveryMeasuresMicroscopicModelingModificationMonoclonal AntibodiesMusMyelinMyelin Basic ProteinsNatural regenerationNeuraxisNeuronsNumbersOligodendrogliaOutcomeOutcome MeasurePathway interactionsPerformancePlayPrincipal InvestigatorProductionProteoglycanRateRattusRecoveryRecovery of FunctionReportingResearchRoleRunningS100A12 geneSchwann CellsSerotoninSiteSolidSpinal CordSpinal Cord ContusionsSpinal cord injuryStem cell transplantStem cellsTestingTherapeuticTimeTissuesTransplantationWalkingWeekXenograft procedureaxon regenerationbasecell bankcentral nervous system injurycombinatorialdaydysmyelinationembryonic stem cellextracellularfetalfetus cellfunctional outcomeshuman S100A12 proteinimmunocytochemistryimprovedin vivoinjuredinjury and repairinterestmouse modelneurogenesispermissivenessprogenitorprogramsrepairedresearch studyresponse to injurysuccesstissue culturetumorwhite matter

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DESCRIPTION (provided by applicant): A multitude of events contribute to the ultimate outcome following SCI, including neuron, oligodendrocyte and axonal loss, demyelination, glial scar formation and inhibitory molecule deposition, and endogenous capacity for regeneration. These events define critical points for investigation of the mechanism of action of interventions that affect functional recovery. The development of cell-based therapeutic strategies, including cultured Schwann and olfactory ensheathing cells, fetal spinal cord tissues, and embryonic stem cell (ES)-derived progenitors, is of strong current interest for SCI. In particular, CNS Stem Cells (CNS-SC), which have the ability to migrate and differentiate into neurons, oligodendrocytes and astrocytes upon transplantation could benefit the injured spinal cord in a variety of ways. These include differentiation and functional engraftment of new neurons and oligodendrocytes, modifying the regenerative or remyelination potential of host cells, and decreasing host glial scaring or deposition of inhibitory matrix molecules (e.g. proteoglycans). We have found that cells from CNS-SC banks initiated from prospectively isolated human fetal brain using monoclonal antibody based fluorescence activated cell sorting (FACS) survive and engraft in contusion-injured immunodeficient NOD-scid mice. Contusion-injured mice transplanted with human CNSSC neurospheres 9 days post-SCI show improved recovery of open field locomotor function. These highly enriched human CNS-SC can be reproducibly isolated, are capable of long term growth in culture as neurospheres, and our preliminary data suggest that they maintain their capacity to differentiate into neurons and oligodendrocytes in the injured spinal cord. The objective of this proposal is to experimentally test the basis for the observed functional recovery, testing the hypothesis that human CNS-SC either differentiate and functionally engraft or modify the host response to injury as described above. Further, we will also test the hypothesis that exercise will act synergistically with cell transplantation to improve locomotor recovery, based on its known role in promoting neurogenesis and our data demonstrating enhancement of locomotor outcome in contusion-injured mice in a voluntary wheel running paradigm.
期刊论文(4)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1016/j.stemcr.2014.03.005
发表时间: 2014-05-06
期刊: STEM CELL REPORTS
影响因子: 5.9
作者: [Sontag, Christopher J., Uchida, Nobuko, Cummings, Brian J., Anderson, Aileen J.]
通讯作者: Anderson, Aileen J.
DOI: 10.1016/j.stemcr.2017.04.009
发表时间: 2017-06-06
期刊: Stem cell reports
影响因子: 5.9
作者: [Piltti KM, Funes GM, Avakian SN, Salibian AA, Huang KI, Carta K, Kamei N, Flanagan LA, Monuki ES, Uchida N, Cummings BJ, Anderson AJ]
通讯作者: Anderson AJ
DOI: 10.1016/j.scr.2015.07.001
发表时间: 2015-09
期刊: Stem cell research
影响因子: 1.2
作者: [Piltti KM, Avakian SN, Funes GM, Hu A, Uchida N, Anderson AJ, Cummings BJ]
通讯作者: Cummings BJ
Investigating the role of CD44 and immune-neuro signaling mechanisms in neural stem cell responses after spinal cord injury
  • 批准号:
    10467915
  • 项目类别:
  • 资助金额:
    $45.03万
  • 财政年份:
    2022
  • 负责人:
    Aileen J Anderson
  • 依托单位:
Investigating the role of CD44 and immune-neuro signaling mechanisms in neural stem cell responses after spinal cord injury
  • 批准号:
    10650327
  • 项目类别:
  • 资助金额:
    $51.37万
  • 财政年份:
    2022
  • 负责人:
    Aileen J Anderson
  • 依托单位:
Multi-channeled Bridges for Promoting Chronic Spinal Cord Repair
Multi-channeled Bridges for Promoting Chronic Spinal Cord Repair
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