Computational Methods for Genome-Wide CRISPR Screens
Computational Methods for Genome-Wide CRISPR Screens
批准号:
9128287
负责人:
Xiaole Shirley Liu
金额:
$51.91万
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:
已结题
起止时间:
2016-09-09 至 2019-06-30
关键词:
AdoptedAdoptionAlgorithmsBase SequenceBehaviorBioinformaticsBiologicalBiological MarkersBiological ProcessBiologyCRISPR interferenceCRISPR screenCRISPR/Cas technologyCell LineCellsClustered Regularly Interspaced Short Palindromic RepeatsCommunitiesComputer AnalysisComputer SimulationComputer softwareComputing MethodologiesCustomDNA SequenceDataData AnalysesDevelopmentDiseaseDrug resistanceEssential GenesEvaluationExperimental DesignsGene ExpressionGene Expression RegulationGenerationsGenesGenomicsGoalsGuide RNAImageryKnock-outLabelLibrariesMammalian CellMethodologyMethodsModelingPathway interactionsPerformancePharmaceutical PreparationsPhenotypePhysiological ProcessesProteinsPublishingQuality ControlReadingRegulator GenesResearchSomatic CellSorting - Cell MovementStatistical MethodsStatistical ModelsSystemTechniquesTechnologyTimeValidationWorkbasecell growthcell motilitycomputer frameworkcost effectivedata visualizationdesigngenetic analysisgenome editinggenome-widegenome-wide analysisimprovedinterestmigrationnovelprototypepublic health relevanceresearch studyresponsescreeningsmall hairpin RNAstem cell differentiationtumorigenesisuser friendly softwareuser-friendly
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): The CRISPR/Cas9 system is a revolutionary approach for genome editing of mammalian cells. Recent developments in CRISPR/Cas9 knockout technology as well as dCas9 fused with effector proteins enable high throughput cost-effective gene functional screens but create computational challenges. We have developed a Model-based Analysis of Genome-wide CRISPR/Cas9 Knockout (MAGeCK) method for calling genes and pathways from genome-scale CRISPR/Cas9 screens. MAGeCK demonstrates better performance than previous methods and identify robust hits, including novel ones, from several published screens. In this proposal, we aim to develop the statistical and computational methods to improve the MAGeCK algorithm to enable quality control, data analysis, and interactive visualizations of CRISPR screen data. In one unified statistical model, the proposed method corrects batch effect at gRNA level, simultaneously estimates gRNA efficiency and gene selection, and identifies differential gene and pathway selection over multiple conditions, and considers sequencing bias and cell doubling time. Specifically, we propose to: Aim 1. Develop robust data normalization methods for CRISPR screens. Aim 2. Develop the statistical and computational framework to call cell- and condition-specific essential genes and pathways from multiple CRISPR screen experiments and conditions. Aim 3. Develop methods to mitigate outlier gRNA effects and use protein interaction network to enhance the performance of CRISPR screen gene calling. Aim 4. Develop user-friendly software features, such as quality control, visualization, design and analysis software for CRISPR screens. At the conclusion of these studies, we will have developed more versatile and reliable analysis algorithms for CRISPR screens under diverse experimental settings. These methods could be applied to CRISPR knockout screens, CRISPRi/a screens, sequencing-based si/shRNA screens, and the phenotype could be cell growth, migration, differentiation, or sorting of GFP-labeled gene expression. Our proposed methods will greatly facilitate the technology adoption to many experimental biology groups, so they can use the powerful genome-wide CRISPR screens under diverse experimental settings to answer important biological questions about gene regulation and drug response.
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依托单位:
Computational Methods for Genome-Wide CRISPR Screens
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