Regulation of UBE3A Imprinted Expression
Regulation of UBE3A Imprinted Expression
批准号:
10002033
负责人:
Stormy Jo Chamberlain
金额:
$42.51万
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:
2018-09-01 至 2023-08-31
关键词:
AllelesAngelman SyndromeAntisense OligonucleotidesBoundary ElementsCRISPR interferenceCell LineCerebrumChromosomesClustered Regularly Interspaced Short Palindromic RepeatsCodeDevelopmentDiseaseDistalElementsEngineeringEpigenetic ProcessExcisionExonsF2R geneGenesGenetic TranscriptionGenomeGenome engineeringGoalsHumanIn VitroIndividualInheritedInvestigationMapsMediatingNeuronsOrganoidsPatientsProcessProteinsPublic HealthRNARNA Polymerase IIRegulationRegulator GenesRegulatory ElementRepressionSNRPNTestingTherapeuticTissuesTranscriptTranscriptional RegulationUBE3A geneUntranslated RNAcis acting elementengineered stem cellsexperimental studyimprintinduced pluripotent stem cellmonolayerneurogenesisneurogeneticsnew therapeutic targetnovelpromoter
中文摘要
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英文摘要
SUMMARY
Imprinted expression of UBE3A is neuron-specific and occurs because the paternally-inherited allele is
silenced. A long non-coding antisense transcript, UBE3A-ATS, is expressed in a neuron-specific manner and
mediates UBE3A imprinting by an unknown mechanism. The overall goal of this proposal is to understand
the processes underlying the regulation of neuron-specific expression of UBE3A-ATS and repression
of paternal UBE3A in human neurons. We propose to investigate three different aspects regulating UBE3A
imprinted expression: 1) the regulation of coding versus non-coding SNRPN RNAs in human neurons; 2) the
tissue-specific regulation of UBE3A-ATS, the distal portion of the SNRPN ncRNA; and 3) the mechanism by
which UBE3A-ATS leads to the repression of paternal UBE3A. We will use patient-specific induced pluripotent
stem cells (iPSCs) derived from Angelman syndrome (AS) patients and their neuronal derivatives for these
studies. We will dissect the functional elements of the cis-acting boundary element restricting UBE3A-ATS
expression to neurons and determine the developmental timing of their removal. We will determine how
SNRPN coding versus non-coding RNA is produced and manipulate expression levels of UBE3A-ATS and
UBE3A to determine their effect on UBE3A imprinting. Finally, we will test the hypothesis that UBE3A-ATS
silences paternal UBE3A via a transcriptional interference mechanism. A thorough understanding of the
mechanisms underlying UBE3A imprinted expression may reveal novel gene regulatory mechanisms
applicable elsewhere in the genome, and may identify novel therapeutic targets for treating AS.
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