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Difilippo, V.

Publications and source records attributed to Difilippo, V..

2 recordsLinked to original sources

CDK4 is co-amplified with either TP53 promoter gene fusions or MDM2 through distinct mechanisms in osteosarcoma

Amplification of the MDM2 and CDK4 genes on chromosome 12 is commonly associated with low-grade osteosarcomas. In this study, we conducted high-resolution genomic and transcriptomic analyses on 33 samples from 25 osteosarcomas, encompassing both high- and low-grade cases with MDM2 and/or CDK4 amplification. We identified four major subgroups: (i) low-grade osteosarcoma with chromosome 12 amplicons as the sole acquired alteration, (ii) high- and low-grade tumours with CDK4 and MDM2 amplification along with few changes affecting other chromosomes, (iii) high-grade osteosarcomas with heavily rearranged genomes including either CDK4 and MDM2 amplification or (iv) CDK4 amplification and TP53 structural alterations. The amplicons involving MDM2 exhibited signs of an initial chromothripsis event affecting chromosome 12. In contrast, there was no indication of a chromothripsis event on chromosome 12 in TP53-rearranged cases. Instead, the initial disruption of the TP53 locus resulted in breakage and repair processes that co-amplified the CDK4 locus. Furthermore, our investigation revealed recurring promoter swapping events that involved the regulatory regions of the FRS2, PLEKHA5, and TP53 genes. These events led to the ectopic expression of partner genes, with the ELF1 gene being upregulated by the FRS2 and TP53 promoter regions, respectively, in two distinct cases.

cancer biology↗

CRAFT: a bioinformatics software for custom prediction of circular RNA functions

Circular RNAs (circRNAs), transcripts generated by backsplicing, are particularly stable and pleiotropic molecules, whose dysregulation drives human diseases and cancer by modulating gene expression and signaling pathways. CircRNAs can regulate cellular processes by different mechanisms, including interaction with microRNAs (miRNAs) and RNA-binding proteins (RBP), and encoding specific peptides. The prediction of circRNA functions is instrumental to interpret their impact in diseases, and to prioritize circRNAs for functional investigation. Currently, circRNA functional predictions are provided by web databases that do not allow custom analyses, while self-standing circRNA prediction tools are mostly limited to predict only one type of function, mainly focusing on the miRNA sponge activity of circRNAs. To solve these issues, we developed CRAFT (CircRNA Function prediction Tool), a freely available computational pipeline that predicts circRNA sequence and molecular interactions with miRNAs and RBP, along with their coding potential. Analysis of a set of circRNAs with known functions has been used to appraise CRAFT predictions and to optimize its setting. CRAFT provides a comprehensive graphical visualization of the results, links to several knowledge databases, and extensive functional enrichment analysis. Moreover, it originally combines the predictions for different circRNAs. CRAFT is a useful tool to help the user explore the potential regulatory networks involving the circRNAs of interest and generate hypotheses about the cooperation of circRNAs into the modulation of biological processes. Key pointsO_LICRAFT is a self standing tool for comprehensive circRNA function prediction. C_LIO_LICRAFT functions include circRNA sequence reconstruction, microRNA and RNA-binding protein response elements and coding potential prediction. C_LIO_LIPredictions for multiple circRNAs are connected to infer possible cooperation networks and illustrate the potential impact of circRNAs on biological and disease processes. C_LI

bioinformatics↗