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Biology subjects

Scorrano, L.

Publications and source records attributed to Scorrano, L..

2 recordsLinked to original sources

Lipid utilization in skeletal muscle cells is modulated in vitro and in vivo by specific miRNAs

Skeletal muscle is composed by different myofiber types that can preferentially use glycolysis or lipids for ATP production. How fuel preference is specified in these post-mitotic cells is unknown. Here we show that miRNAs are important players in defining the myofiber metabolic profile. mRNA and miRNA signatures of all myofiber types obtained at single cell level unveiled fiber-specific regulatory networks and identified two master miRNAs that coordinately control myofiber fuel preference and mitochondrial morphology. Our work provides a complete and integrated myofiber type-specific catalogue of genes and miRNAs expressed and establishes miR-27a-3p and miR-142-3p as key regulators of lipid utilization in skeletal muscle.\n\nHIGHLIGHTSO_LITranscriptional networking in single cells distinguished myofibers based on glycolytic or oxidative metabolism, regulated by specific miRNAs\nC_LIO_LImiR-27a-3p and -142-3p influence mitochondrial morphology\nC_LIO_LImiR-27a-3p improves lipid utilization and increases glycogen storage both in vitro and in vivo\nC_LIO_LImiR-142-3p reduces lipid utilization both in vitro and in vivo\nC_LI

genomics

Mutational signatures reveal the role of RAD52 in p53-independent p21 driven genomic instability

BackgroundGenomic instability promotes evolution and heterogeneity of tumors. Unraveling its mechanistic basis is essential to design appropriate therapeutic strategies. In a recent study we reported an unexpected oncogenic property of p21WAF1/Cip1 showing that its chronic expression, in a p53-deficient environment, causes genomic instability by deregulating the replication licensing machinery.\n\nResultsExtending on this work we now demonstrate that p21WAF1/Cip1 can further fuel genomic instability by suppressing the repair capacity of low and high fidelity pathways that deal with nucleotide abnormalities. Consequently, fewer single nucleotide substitutions (SNSs) occur, while formation of highly deleterious DNA double-strand breaks (DSBs) is enhanced, crafting a characteristic mutational signature landscape. Guided by the mutational signatures formed, we found at the mechanistic level that the DSBs were repaired by Rad52-dependent Break-Induced Replication (BIR) and Single-Strand Annealing (SSA). Conversely, the error-free synthesis-dependent strand annealing (SDSA) repair route was deficient. Surprisingly, Rad52 was activated transcriptionally in an E2F1-dependent manner, rather than post-translationally as is common for DNA repair factor activation.\n\nConclusionsOur results signify the importance of mutational signatures as guides to disclose the \"repair history\" leading to genomic instability. In this vein, following this approach we unveiled how chronic p21WAF1/Cip1 expression rewires the repair process, identifying Rad52 as a source of genomic instability and a candidate therapeutic target.

cancer biology