Stem cell- based studies of gene-environment interactions in PTEN- associated autism
Stem cell- based studies of gene-environment interactions in PTEN- associated autism
批准号:
9133215
负责人:
HARLEY IAN KORNBLUM
金额:
$26.03万
依托单位国家:
美国
项目类别:
财政年份:
2016
资助国家:
美国
项目状态:
已结题
起止时间:
2016-09-01 至 2018-08-31
关键词:
AffectAllelesAutistic DisorderBirthBrainCell physiologyCellsCharacteristicsClinicalDNA Sequence AlterationDevelopmentEarly InterventionEnvironmental Risk FactorEtiologyExposure toFRAP1 geneFunctional disorderGene MutationGeneticGenetic Predisposition to DiseaseGrowthHeterozygoteHumanIndividualInflammationInflammatoryInflammatory ResponseInterventionLeadLinkLymphocyteMacrocephalyMethodsModelingMolecularMusMutationNeuronsPI3K/AKTPTEN genePTEN proteinPathogenesisPathway interactionsPhenotypePopulationPredispositionProcessProductionProsencephalonReactive Oxygen SpeciesResearchResidual stateRisk FactorsSignal TransductionSigns and SymptomsStem cellsSymptomsSystemTSC1/2 geneTestingTherapeutic InterventionTumor Suppressor GenesTumor Suppressor ProteinsVariantautism spectrum disorderautistic childrenbasebrain abnormalitiesbrain overgrowthcell typecritical periodcytokinegene environment interactiongenetic risk factorimmune activationinduced pluripotent stem cellmTOR Signaling Pathwaymouse modelnerve stem cellneurogenesisnew therapeutic targetnovelprogenitorrelating to nervous systemresponseself-renewalstemtheories
中文摘要
虽然自闭症谱系障碍(ASD)是高度遗传的,但很明显,它也有很强的环境影响
英文摘要
While autism spectrum disorders (ASD) are highly heritable, it is clear that there is also a strong environmental
component to ASD pathogenesis. ASD is frequently associated with brain enlargement, which is often present
at birth and affects multiple cell types, suggesting that dysfunction in an early stem or progenitor population
contributes to ASD etiology. We hypothesize that brain enlargement is related to enhanced self-renewal of
neural stem cells (NSCs) leading in turn to increased neurogenesis and abnormal connectivity that has been
observed in ASD. Mutations in the tumor suppressor PTEN that are observed in association with the autism
macrocephaly phenotype are almost all heterozygous (HET), although HET mutations in mice produce few or
subtle brain abnormalities. PTEN HET mutations in humans may or may not contribute to autism with brain
overgrowth on their own but could act as a genetic susceptibility in combination with environmental factors that
affect their function. One known environmental risk factor for ASD that might interact with genetic risk factors is
the Maternal Inflammatory Response (MIR). Although MIR has been linked to both autism and to brain
overgrowth, the biologic mechanisms for its potential pathological effects remain undefined. We will test the
hypothesis that reactive oxygen species (ROS) generated by MIR exposure can increase stem cell self-
renewal and neurogenesis in human neural stem cells through the reversible oxidative inactivation of PTEN
protein and subsequent enhancement of PI3K pathway activation and that this effect is enhanced by
heterozygous PTEN mutation. To do this we will use state of the art methods to generate lymphocyte-derived
induced pluripotent stem cells (iPSCs) from our unique clinical population with identified PTEN HET mutations,
brain overgrowth, and autism and from unaffected relatives. We will then derive forebrain NSCs from the
iPSCs to test the hypothesis that PTEN mutations interact with ROS to promote an abnormal degree of self-
renewing proliferation and neurogenesis. This will be done by directly exposing cells to ROS as well as to
candidate inflammatory cytokines that are known to be produced by MIR, and, which, in turn could activate
ROS production. We will determine the molecular mechanisms underlying the altered cellular phenotypes that
we may observe through the analysis of the PI3K and other pathways that may interact with the PI3K pathway.
We will also determine whether different forms of PTEN HET mutations which may result in different levels of
residual PTEN function respond differently to ROS/cytokine stimulation. These studies will elucidate the
relationship between genetic susceptibility and exposure to MIR that could inform the development of novel
interventions by identifying mechanisms of susceptibility to a common environmental risk factor. The findings
obtained in this study will also have broader implications for susceptibility to environmental autism risk factors
due to the fact that there are many different genetic susceptibilities that may interact with MIR through final
common pathways which lead to altered neural stem cell function during critical periods in brain development.
.
期刊论文(0)
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科研奖励(0)
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资助金额:$15.29万
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资助金额:$15.29万
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依托单位:
UCLA IDDRC: Cells, Circuits and Systems Core
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批准号:10085984
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资助金额:$35.18万
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依托单位:
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批准号:8516544
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资助金额:$13.67万
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依托单位:
Stem Cells
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资助金额:$14.18万
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依托单位:
Stem Cells
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批准号:8033307
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资助金额:$12.5万
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Neural Progenitor Genes and Brain Tumors
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依托单位:
海外基金