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Biology subjects

Favero, F.

Publications and source records attributed to Favero, F..

2 recordsLinked to original sources

QuickSeg: A fast, versatile and accurate algorithm for genomic copy number segmentation using dynamic programming

Copy number alterations are among the most common genomic aberrations in cancer and their accurate identification relies on robust segmentation of sequencing read-depth signals. Existing segmentation methods typically balance computational efficiency against segmentation accuracy and remain sensitive to technical artifacts present in sequencing data. Here, we present QuickSeg, a fast and versatile methodology that uses an exact dynamic programming algorithm to detect copy number segments using median-based error function. Motivated by the observation that sequencing depth distributions contain a small but pervasive population of outlying observations, this approach provides increased robustness to technical noise while simultaneously reducing the computational complexity of the segmentation problem. Across whole-genome sequencing of cancer cohorts, using breakpoint-supported somatic copy number alterations, we demonstrate improved segmentation precision over two widely used baseline methods, Circular Binary Segmentation (CBS) and Piecewise Constant Fitting (PCF), across a broad range of sensitivity thresholds. QuickSeg also consistently outperformed both methods with respect to runtime and memory usage. Collectively, our results show that robust median-based optimization provides both biological and computational advantages for copy number segmentation, enabling accurate analysis of large sequencing cohorts with minimal computational requirements.

bioinformatics↗

Enzyme family-centred approach identifies helicases as recurrent hemizygous tumour suppressor genes

An important goal in cancer research is to identify driver genes and mutations. Reasoning that such mutations often alter enzymatic functions, we investigated the cancer driver role of enzyme families. Using pan-cancer genomic data and established driver mutation catalogues, we found an unexpectedly high rate of mutations in helicases, making helicases the most frequently mutated enzyme family in cancer. Based on both functional perturbation screens and cancer genomic analyses, we provide evidence that cancers with mutated helicases converge on increased genomic instability and faulty DNA repair. We identify a striking phenotype in cells with loss of the helicase Aquarius (AQR). AQR was exclusively hemizygous lost in cancer genomes, which was associated with elevated levels of structural variants and point mutation signatures indicative of homologous recombination deficiency. Finally, we leverage large dependency maps to show that hemizygous loss is a common tumour suppression mechanism among helicases. In summary, we uncover a striking frequency of mutated helicases with key roles in genomic maintenance, and we nominate novel hemizygous cancer driver genes including AQR.

cancer biology↗