Molecular mechanisms underlying spatial patterning of mammalian skin
Molecular mechanisms underlying spatial patterning of mammalian skin
批准号:
10685791
负责人:
Matthew Johnson
金额:
$3.59万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2020
资助国家:
美国
项目状态:
已结题
起止时间:
2020-09-01 至 2023-02-28
关键词:
ATAC-seqAfricanBioinformaticsBiologicalBiological AssayBiological ModelsCRISPR/Cas technologyCandidate Disease GeneCellsChromatinColorComplexCoupledData SetDefectDevelopmentDevelopmental BiologyDevelopmental ProcessDisciplineDiseaseElementsEmbryoEmbryonic DevelopmentEnhancersFlow CytometryFunctional disorderGene ExpressionGene Expression ProfileGenesGenomicsGenotypeGrowthHairHealthHistonesHumanIn Situ HybridizationIn VitroInjectionsKnowledgeLaboratory miceLacZ GenesLeadLearningLightLiteratureLocationLuciferasesMapsModelingMolecularMusNucleic Acid Regulatory SequencesPatternPattern FormationPeriodicityPhenotypePigmentation physiologic functionPigmentsPositioning AttributePostdoctoral FellowProcessRegulationRegulator GenesRegulatory ElementReporterResolutionResourcesRoleScienceSignal TransductionSkinSpecific qualifier valueSpottingsTechniquesTestingTissue-Specific Gene ExpressionTissuesTrainingTranslatingUniversitiesWorkcareer developmentcell typedevelopmental diseasedevelopmental embryologydifferential expressionexperimental studyhuman diseasein uteroin vivoinnovationinsightmalformationnovelpostnatalpromotersingle-cell RNA sequencingtranscriptome sequencingtranscriptomicsultrasound
中文摘要
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英文摘要
Project Summary/Abstract
The precise spatial and temporal patterning mechanisms that coordinate early embryonic development
represent a fundamental question in developmental biology. While such complex regulation is ultimately
determined at the genotypic level, the molecular mechanisms that connect genotype to phenotype remain
poorly understood. Elucidation of these mechanisms is of critical importance to human health, as errors in
these processes often lead to various developmental defects and diseased states. In this proposal, I will study
the formation of periodic pigment patterns (e.g., stripes and spots) to uncover the mechanisms by which
positional information is encoded in mammalian skin during embryogenesis. Periodic pigment patterns arise
from nonrandom developmental processes that are programmed to be spatially constrained, and thereby
represent an excellent model for understanding how a tissue acquires positional information. Specifically, I will
take advantage of the naturally evolved pigment pattern seen in the African striped mouse (Rhabdomys
pumilio), an emerging mammalian model system. I will combine a variety of genomic, transcriptomic, and
functional approaches to dissect the molecular and developmental mechanisms by which positional information
is acquired and interpreted in developing tissues, a long-standing question in developmental biology. First, I
will use novel chromatin profiling strategies coupled to functional approaches to identify the cis-regulatory
regions and their associated factors that control the spatially restricted expression of pigmentation genes.
Second, I will use single-cell RNA sequencing to reconstruct the developmental trajectories of the different cell
types of the embryonic skin and identify the signal(s) that establish the pattern boundary early in
embryogenesis. I will then modulate candidate gene expression to functionally test their effects on pigment
pattern formation. Taken together, this work will substantially advance our understanding of the mechanisms
that both establish and implement spatial patterns during early mammalian development. Through the
combined use of a novel mammalian model system and innovative, cutting-edge approaches, these
mechanisms will be investigated in a level of detail non-existent in the current literature. This work will generate
insights into the basic processes governing the development of mammalian skin, will provide a framework for
understanding the mechanistic basis of developmental disorders, and generate a more comprehensive
overview of the mechanisms regulating differential gene expression, a process at the forefront of various
human diseases and dysfunctions. Furthermore, the combined expertise of my advisor and co-advisor,
coupled with the abundant resources available at Princeton University (e.g., flow cytometry core and advanced
genomics core), will allow me to substantially expand my scientific training; from learning new skillsets (e.g.,
advanced genomic/transcriptomic techniques and bioinformatics) to career development.
期刊论文(2)
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会议论文
Molecular mechanisms underlying spatial patterning of mammalian skin
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批准号:10066183
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项目类别:
-
资助金额:$6.53万
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财政年份:2020
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负责人:Matthew Johnson
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依托单位:
Molecular mechanisms underlying spatial patterning of mammalian skin
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批准号:10231076
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项目类别:
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资助金额:$6.86万
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财政年份:2020
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负责人:Matthew Johnson
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依托单位:
海外基金