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Biology subjects

Berico, P.

Publications and source records attributed to Berico, P..

2 recordsLinked to original sources

TFIIH kinase CDK7 antagonizes phenotype switching and emergence of drug tolerance in melanoma

Melanoma cells switch back-and-forth between phenotypes of proliferation and invasion in response to changing microenvironment, driving metastatic progression. We show that inhibition of the TFIIH kinase CDK7 (CDK7i) results in a melanocytic to mesenchymal phenotype switching and acquisition of targeted therapy tolerance. We identify a gene expression program controlled by the transcription factor GATA6, which participates in drug tolerance in mesenchymal-like cells and which is antagonized by CDK7 in melanocytic-like cells. This program emerges concomitantly with loss of melanocyte lineage-specific MITF protein following CDK7i. By dissecting the underlying mechanism, we observe that CDK7 accumulates at the super-enhancer regulating MITF to drive its expression. MITF itself binds to a intronic region of GATA6 to transcriptionally repress it. This molecular cascade antagonizes expression of the GATA6 regulon that only emerges in MITF-low cells of metastatic melanoma. Our work reveals a role for CDK7 in counteracting phenotype switching and activation of a gene expression program mediating multidrug tolerance in melanoma cells.

cell biology

An early Sox2-dependent gene expression program required for hippocampal dentate gyrus development

The hippocampus is a brain area central for cognition. Mutations in the human SOX2 transcription factor cause neurodevelopmental defects, leading to intellectual disability and seizures, together with hippocampal dysplasia. We generated an allelic series of Sox2 conditional mutations in mouse, deleting Sox2 at different developmental stages. Late Sox2 deletion (from E11.5, via Nestin-Cre) affects only postnatal hippocampal development; earlier deletion (from E10.5, Emx1-Cre) significantly reduces the dentate gyrus, and the earliest deletion (from E9.5, FoxG1-Cre) causes drastic abnormalities, with almost complete absence of the dentate gyrus. We identify a set of functionally interconnected genes (Gli3, Wnt3a, Cxcr4, p73 and Tbr2), known to play essential roles in hippocampal embryogenesis, which are downregulated in early Sox2 mutants, and (Gli3 and Cxcr4) directly controlled by SOX2; their downregulation provides plausible molecular mechanisms contributing to the defect. Electrophysiological studies of the Emx1Cre mouse model reveal altered excitatory transmission in CA1 and CA3 regions.

developmental biology