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Comprehensive RNA-seq Data Analysis

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eventPubliée le 02 sept. 2026 · verifiedNous avons confirmé le 02 sept. 2026 qu'elle est toujours active

₹ 400 – ₹ 750 par projet

À propos de l'offre

I have a set of raw FASTQ files from a personal research project and I want to take them all the way through to biological insight. My primary goal is to identify differentially expressed genes, and I already have both the reference genome and its matching GTF/GFF annotation ready for you. Here is the pipeline I want to see implemented: • Initial quality check with FastQC followed by an aggregated MultiQC summary. • Adapter and low-quality base trimming. • Alignment to the reference (or transcript-level quantification if you prefer Salmon/kallisto) under a well-documented, reproducible Linux environment. • Gene-level count matrix generation, then differential expression with DESeq2 in R. • Exploratory visualisations: PCA, heatmap, and a volcano plot highlighting key DE genes. • Functional interpretation through GO and KEGG pathway enrichment. Deliverables must include: • All processed result files and figure images in publication-ready resolution. • Tidy tables of counts, normalised expression values, and DESeq2 outputs (padj, log2FC, etc.). • The exact shell, R, and/or Python scripts or notebooks you ran, with comments. • A concise, step-by-step report (Markdown, R Markdown, or Jupyter) so I can reproduce every step on my own workstation. Please use standard RNA-seq tools—the typical stack would be FastQC, Cutadapt/Trim Galore, STAR or HISAT2, Salmon/kallisto, DESeq2, and clusterProfiler—but feel free to suggest sensible alternatives if they improve accuracy or speed. I work comfortably in Linux, so command-line oriented solutions are welcome, and I expect the code to run under a recent Ubuntu or CentOS environment without extensive tweaking. If this matches your expertise in bioinformatics and you can turn around clear, reproducible results, I’d love to collaborate.

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