GLOBAL GENE REGULATORY NETWORKS FOR SPECIFIC CELL TYPES OF THE SEA URCHIN EMBRYO
GLOBAL GENE REGULATORY NETWORKS FOR SPECIFIC CELL TYPES OF THE SEA URCHIN EMBRYO
批准号:
8676840
负责人:
Isabelle S Peter
金额:
$58.57万
依托单位国家:
美国
项目类别:
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-09-30 至 2016-05-31
关键词:
AdultAnimalsBioinformaticsBiological ModelsBiological ProcessCell LineageCell physiologyCellsCellular biologyClinicalCodeComplementary DNAComplexConserved SequenceDevelopmentDevelopmental GeneDiseaseEffector CellEmbryoEndodermEndoderm CellExcisionFluorochromeGene ExpressionGene Expression ProfileGenesGenomicsImmuneInstructionIntergenic SequenceKnock-in MouseKnowledgeLearningLifeLinkMeasurementMediatingMesodermMethodsMorphogenesisNatural ImmunityOralPattern FormationPhysiologicalPopulationPrimitive foregut structureProblem SolvingProceduresProcessProteinsProxenRecoveryRegulator GenesResearchSea UrchinsSequence AnalysisSignaling MoleculeSiteSolidSolutionsStagingStructureSystemTechnologyTimeTo specifyValidationWorkabstractingblastomere structurecell typedeep sequencingeggembryo cellgastrulationgenome sequencinginterestnetwork modelsresearch studysuccesstranscription factortranscriptome sequencing
中文摘要
海洋特定细胞类型的全球基因调控网络
英文摘要
GLOBAL GENE REGULATORY NETWORKS FOR SPECIFIC CELL TYPES OF THE SEA
URCHIN EMBRYO
ABSTRACT
All developmental, morphogenetic, and differentiation functions of animal cells are executed by large,
specifically deployed batteries and cassettes of downstream protein coding genes. A major success of
bioscience in recent years has been system level elucidation of the upstream gene regulatory networks
(GRNs) that control pattern formation and determine development of the body plan. GRNs consist of genes
encoding transcription factors and signaling molecules, plus the transcriptional linkages among these
genes, and they determine the regulatory state of every cell at every point in developmental time. Therefore
they include the control inputs into all the downstream genes that do the work of the cell. But an enormously
important gap in understanding now separates the upstream GRNs that we are beginning to learn about
from the downstream effectors of cell function: What is the actual control circuitry that determines the
deployment of these downstream genes? How, exactly, are GRNs causally connected to cellular functions
of differentiation and morphogenesis? In principle, given knowledge of the upstream GRN and various
newly available technology, this gap can be closed, and the problem solved at a system level, and this is
the particular object of the present proposal. We will choose three cell types of the developing sea urchin
embryo, each of general interest. Knowledge of the upstream GRNs of this embryo is more advanced than
for any other system. The target cell types are the immune cells of the embryo, where the downstream
effector genes encode a great variety of innate immunity proteins; gastrulating endoderm cells, where the
downstream genes mediate gastrular invagination; and the totipotent set-aside cells of the embryonic
coelomic pouches that in larval stage produce the adult body plan, where the downstream effector cells
include those that maintain totipotency. Innate immunity, gastrular invagination, and totipotent cell lineages
are all pan-bilaterian features. The approach, briefly, will be isolation of each cell type using specific
regulatory gene expression and FACS; deep transcriptome sequencing; bioinformatic prediction; and
validation of causal regulatory connections to specifically expressed genes by high throughput cis-
regulatory analysis. This project will provide the first global upstream-downstream GRN for any developing
system. It will inform as to basic principles by which downstream gene cassettes are organized. It will also
serve as a technological demonstration project for similar approaches to mammalian systems.
期刊论文(3)
专著(0)
科研奖励(0)
会议论文
DOI:
10.1101/gr.167668.113
发表时间:
2014-05
期刊:
Genome research
影响因子:
7
作者:
[Barsi JC, Tu Q, Davidson EH]
通讯作者:
Davidson EH
Solving regulatory circuits controlling gut organogenesis
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批准号:9888387
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项目类别:
-
资助金额:$41.13万
-
财政年份:2019
-
负责人:Isabelle S Peter
-
依托单位:
海外基金