Genomic analyses of gynaecologic carcinosarcomas reveal frequent mutations in chromatin remodelling genes
NATURE COMMUNICATIONS
Authors: Jones, Sian; Stransky, Nicolas; McCord, Christine L.; Cerami, Ethan; Lagowski, James; Kelly, Devon; Angiuoli, Samuel V.; Sausen, Mark; Kann, Lisa; Shukla, Manish; Makar, Rosemary; Wood, Laura D.; Diaz, Luis A., Jr.; Lengauer, Christoph; Velculescu, Victor E.
Abstract
Malignant mixed Mullerian tumours, also known as carcinosarcomas, are rare tumours of gynaecological origin. Here we perform whole-exome analyses of 22 tumours using massively parallel sequencing to determine the mutational landscape of this tumour type. On average, we identify 43 mutations per tumour, excluding four cases with a mutator phenotype that harboured inactivating mutations in mismatch repair genes. In addition to mutations in TP53 and KRAS, we identify genetic alterations in chromatin remodelling genes, ARID1A and ARID1B, in histone methyltransferase MLL3, in histone deacetylase modifier SPOP and in chromatin assembly factor BAZ1A, in nearly two thirds of cases. Alterations in genes with potential clinical utility are observed in more than three quarters of the cases and included members of the PI3-kinase and homologous DNA repair pathways. These findings highlight the importance of the dysregulation of chromatin remodelling in carcinosarcoma tumorigenesis and suggest new avenues for personalized therapy.
Complex structural variants in Mendelian disorders: identification and breakpoint resolution using short- and long-read genome sequencing
GENOME MEDICINE
Authors: Sanchis-Juan, Alba; Stephens, Jonathan; French, Courtney E.; Gleadall, Nicholas; Megy, Karyn; Penkett, Christopher; Shamardina, Olga; Stirrups, Kathleen; Delon, Isabelle; Dewhurst, Eleanor; Dolling, Helen; Erwood, Marie; Grozeva, Detelina; Stefanucci, Luca; Arno, Gavin; Webster, Andrew R.; Cole, Trevor; Austin, Topun; Branco, Ricardo Garcia; Ouwehand, Willem H.; Raymond, F. Lucy; Carss, Keren J.
Abstract
BackgroundStudies have shown that complex structural variants (cxSVs) contribute to human genomic variation and can cause Mendelian disease. We aimed to identify cxSVs relevant to Mendelian disease using short-read whole-genome sequencing (WGS), resolve the precise variant configuration and investigate possible mechanisms of cxSV formation.MethodsWe performed short-read WGS and analysis of breakpoint junctions to identify cxSVs in a cohort of 1324 undiagnosed rare disease patients. Long-read WGS and gene expression analysis were used to resolve one case.ResultsWe identified three pathogenic cxSVs: a de novo duplication-inversion-inversion-deletion affecting ARID1B, a de novo deletion-inversion-duplication affecting HNRNPU and a homozygous deletion-inversion-deletion affecting CEP78. Additionally, a de novo duplication-inversion-duplication overlapping CDKL5 was resolved by long-read WGS demonstrating the presence of both a disrupted and an intact copy of CDKL5 on the same allele, and gene expression analysis showed both parental alleles of CDKL5 were expressed. Breakpoint analysis in all the cxSVs revealed both microhomology and longer repetitive elements.ConclusionsOur results corroborate that cxSVs cause Mendelian disease, and we recommend their consideration during clinical investigations. We show that resolution of breakpoints can be critical to interpret pathogenicity and present evidence of replication-based mechanisms in cxSV formation.