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placed on multi-omics data integration, statistical modeling, biomarker discovery, pathway/network analysis, and development of reproducible computational workflows. This position provides an excellent
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funded NIH R01 project dissecting the SOX4/SOX9 transcriptional regulatory network that governs biliary development in Alagille syndrome and advancing the therapeutic potential of targeting this network in
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, pneumonia, and tuberculosis. Functional/ mechanistic validation of regulatory elements and gene networks controlling inflammation, immune memory, and tissue repair will be implemented using CRISPR inhibition
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cancer. The Di Stefano Lab employs cutting-edge genomic and molecular approaches that includes ribosome profiling, eCLIP-seq, and single-cell multiomics—to define gene regulatory networks at systems-wide
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, and tuberculosis. Functional/ mechanistic validation of regulatory elements and gene networks controlling inflammation, immune memory, and tissue repair will be implemented using CRISPR inhibition and
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conferences, and build a strong professional network within a highly collaborative biomedical environment. About the Eagen Lab The Eagen Lab investigates how fusion oncoproteins drive aggressive cancers