Integration of functional data and GWAS to elucidate genetic basis of diseases
Integration of functional data and GWAS to elucidate genetic basis of diseases
批准号:
10163891
负责人:
JONATHAN K PRITCHARD
金额:
$69.59万
依托单位:
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:
未结题
起止时间:
2016-06-23 至 2025-03-31
关键词:
AffectAutoimmuneAutoimmune DiseasesBiological ModelsCRISPR screenCell CountCellsClustered Regularly Interspaced Short Palindromic RepeatsCommunitiesComplexComplex Genetic TraitComputer softwareComputing MethodologiesDataData AnalysesDevelopmentDiseaseDisease OutcomeFundingGene ProteinsGenesGeneticGenetic VariationGrantGuide RNAImmuneInformation NetworksKnock-outLeadLightLinkLiteratureMapsMeasuresMethodologyMethodsMolecularPathway interactionsProcessPropertyProtocols documentationRNARNA libraryRegulationRegulator GenesRegulatory T-LymphocyteResearch PersonnelRibonucleoproteinsSignal TransductionSupervisionT-LymphocyteTechniquesTechnologyVariantWorkbasecell typecostdesigneffector T cellexperienceexperimental studygenetic variantgenome wide association studyinterestknockout genemethod developmentsingle-cell RNA sequencingtooltraittranscriptome sequencing
中文摘要
点击翻译按钮获取中文摘要
英文摘要
ABSTRACT
The GWAS community has now identified many thousands of variants that affect complex traits, but there is
still a critical gap in our ability to interpret why these variants matter. While some signals affect genes that are
directly involved in the relevant disease processes, many other signals likely arise due to indirect trans-
regulatory effects on core disease genes and pathways. There has been huge progress in recent years on
methods to identify variants that affect cis-regulation of nearby genes, but it remains extremely difficult to
measure and interpret how and whether those associated genes may affect disease processes directly or via
trans-acting effects on other genes. In this grant we propose to develop new experimental and computational
methods to help bridge this critical gap. We have recently developed two complementary experimental
techniques that use CRISPR-perturbations to map out the upstream regulators and downstream targets of a
gene of interest. We will work on methodological improvements for these methods, and apply them in effector
T cells and regulatory T cells to map out gene regulatory networks in these important immune cell types. We
will develop new computational methods for inferring gene networks using these data. Finally, we will develop
and implement new methods for interpreting autoimmune disease loci in light of the network information. This
project will establish new high throughput techniques for elucidating regulatory relationships among genes and
for using these to interpret GWAS data.
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