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Data analysis and integration How to get from a pile of unprocessed data to knowledge: The user’s perspective Guido Jenster, Ph.D. Professor of Experimental Urological Oncology Department of Urology Erasmus MC [email protected] Structure of Cancer Research Projects Functional Research Prevention Research Technology & Protocols Models & Biobanks Marker Research Therapy Research Datasets Bioinformatics & Statistics Organization & Management; Education; Outreach Prostate Cancer Molecular Medicine Clinical Research DATA QUERY VIEWING NEW KNOWLEDGE Imaging DATA INTEGRATION DATA PROCESSING DATA STORAGE DATA GENERATION Experimental Research Biobanking Prostate Cancer Molecular Medicine What do we want? Use case: Identify novel fusion genes from DNA and RNA sequencing data PUSH TO START Data analysis and integration Where is the Red Button? Why is it so difficult to make? - Different types of data Different platforms and their limitations Different data analysis tools Limitations in storage and compute power Analysis and integration is dependent on research question and the needs of the scientist Markers and therapy targets for prostate cancer Markers and therapy targets: An inventory of the differences between normal and cancer cells: DNA RNA Protein Metabolite Morphology Cellular behavior DNAseq Data Analysis Copy Number Abberations SNVs / InDels TF Binding B-Allele Frequency DNAseq data Chromatin Interactions Methylation Structural Variations Active Chromatin Identify Integration Sites Read Barcode RNAseq Data Analysis Differential expression SNVs / InDels RNAseq data Novel Transcripts Alternative splicing & Promoters Read-Through & Fusion Transcripts DNA and RNA analysis platforms DNA level: - Home made array CGH 1M SNP arrays (Illumina) Ion Proton low pass DNAseq Ion Proton exome DNAseq Complete Genomics whole genome DNAseq FAIREseq, ChIPseq, MeDIPseq, Methylation arrays (Illumina) RNA level: - Home made cDNA and oligo arrays Affymetrix Exon arrays Illumina RNAseq (small RNA and mRNA) Ion Proton RNAseq Data analysis and integration Where is the Red Button? Why is it so difficult to make? - Different types of data Different platforms and their limitations Different data analysis tools Limitations in storage and compute power Analysis and integration is dependent on research question and the needs of the scientist Prostate Cancer Molecular Medicine Clinical Research DATA QUERY VIEWING Imaging DATA INTEGRATION DATA PROCESSING NEW KNOWLEDGE DATA STORAGE DATA GENERATION Experimental Research Where is the Red Button? How to solve the issues? Biobanking TraIT subdivision into work packages Four data generating work packages Data integration & analysis across the four platforms Shared hardware and professional training & support The TraIT mansion requires good support Phenotype Database Chipster Workflow Galaxy tEPIS Logis Keosys coLIMS tranSMART TOP desk Alfresco Website Wiki Jira SurfConext XNAT Catalogue TTP Open Clinica Data storage + CPU power BMIA Data analysis and integration Where is the Red Button? How to solve the issues? DATA INTEGRATION DATA STORAGE & COMPUTE -Own (external hard drives) -Central CSC, CCBC, GEO, ENA -Commercial Clouds Adopt, Adapt, Create DATA PROCESSING -Own pipelines and tools -Commercial programs CLCBio, etc. -Central / Open Source tool platforms -Own (Access) -Commercial (NextBio) -Central Oracle TRC, tranSMART DATA MINING VIEWING Data Mining: Query & Viewing Tools Platform: Where do I get my data from? Level: Which level do I want to mine? Between-Study Level Study Level Patient/Sample Level Molecular Level Tool: What is the best query & viewing tool? cBioPortal Prostate Cancer Molecular Medicine What do we want? Use case: Identify novel fusion genes from DNA and RNA sequencing data PUSH TO START Andrew Stubbs http://www.erasmusmc.nl/bioinformatica/ Harmen van de Werken http://www.erasmusmc.nl/ccbc/ Please attend the monthly Bridge Meetings: http://www.molmed.nl/ (MolMed Lectures)