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Verhaak, R.

Publications and source records attributed to Verhaak, R..

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Glioma Through the Looking GLASS: the Glioma Longitudinal Analysis consortium, molecular evolution of diffuse gliomas

Adult diffuse glioma are a diverse group of intracranial neoplasms associated with a disproportional large number of productive life years lost, thus imposing a highly emotional and significant financial burden on society. Patient death is the result of an aggressive course of disease following diagnosis. The Cancer Genome Atlas and similar projects have provided a comprehensive understanding of the somatic alterations and molecular subtypes of glioma at diagnosis. However, gliomas undergo significant molecular evolution during the malignant transformation. We review current knowledge on genomic, epigenomic and transcriptomic abnormalities before and after disease recurrence. We outline an effort to systemically catalogue the longitudinal changes in gliomas, the Glioma Longitudinal Analysis Consortium. The GLASS initiative will provide essential insights into the evolution of glioma towards a lethal phenotype with the potential to reveal targetable vulnerabilities, and ultimately, improved outcomes for a patient population in need.

cancer biology

Reconstructing the Molecular Life History of Gliomas

At the time of clinical presentation, the very heterogeneous group of pediatric and adult gliomas carry a wide range of diverse somatic genomic alterations. These include chromosome-sized gains and losses, focal amplification and deletions, rearrangements resulting in transcript fusions, small insertions/deletions, and point mutations. Tumor cells pay a penalty for maintaining these abnormalities which therefore must provide cells with a competitive advantage to become engrained into the glioma genome. Here, we propose a model for gliomagenesis consisting of five consecutive phases that glioma cells have traversed prior to diagnosis. Tumor growth is repressed by activated DNA damage response pathways and dysfunctional telomeres in physiological conditions. Disruption of the p16-RB-p53 pathway and the acquisition of a telomere maintenance mechanism can bypass these bottlenecks. We relate somatic alterations to each of these steps, in order to reconstruct the life history of glioma. Understanding the story that each glioma tells at presentation may facilitate the design of novel, more effective therapeutic approaches.\n\nKey ConceptsGlioma initiating event: The first event that initiates the clonal expansion of cells\n\nOncogene-induced senescence: Durable growth arrest triggered by continued oncogene exposure\n\nReplicative senescence: Durable growth arrest triggered via telomere dysfunction and activated DNA damage pathways\n\nCrisis: Widespread cell death triggered via telomere dysfunction\n\nSenescence bypass event: Any molecular alteration that bypasses or suppresses oncogene-induced senescence\n\nSenescence-associated secretory phenotype (SASP): Senescent cells secrete various immunogenic cytokines, growth factors and proteases into the microenvironment\n\nFunctional redundancy: Used to describe two or more genomic changes that provide overlapping functional effect\n\nNeutral evolution: changes due to stochastic allelic variation that do not affect fitness\n\nSelective sweep: The elimination of genetic variation following strong positive selection effectively reducing the tumor to a single clone\n\nClonal event: Somatic mutation or copy number event that is conserved across all tumor cells\n\nSubclonal event: Somatic mutation or copy number event that is only present in a subset (subclone) of tumor cells\n\nChromothripsis: A punctuated shattering of genomic DNA\n\nKataegis: Clustered regions of hypermutation\n\nPolyploidization: The multiplication of chromosome content in a cell\n\nBreakage fusion bridge (BFB) cycle: Cyclic fusion of uncapped telomeres, bridge formation during anaphase and subsequent breakage leading to unequal inheritance of DNA\n\nDicentric chromosome: Two fused chromosomes span across the mitotic spindle in anaphase, called dicentric because it has two centromeres\n\nDouble minute (DM) chromosome: Extra-chromosomal circular DNA segment lacking centromere(s) and telomeres\n\nImmortalization event: The last straw in the immortalization process that directly leads to telomere stabilization

cancer biology

TumorFusions: an integrative resource for reporting cancer-associated transcript fusions in 33 tumor types

Fusion genes, particularly those involving kinases, have been demonstrated as drivers and are frequent therapeutic targets in cancer1. Here, we describe our results on detecting transcript fusions across 33 cancer types from The Cancer Genome Atlas (TCGA), totaling 9,966 cancer samples and 648 normal samples2. Preprocessing, including read alignment to both genome and transcriptome, and fusion detection were carried out using a uniform pipeline3. To validate the resultant fusions, we also called somatic structural variations for 561 cancers from whole genome sequencing data. A summary of the data used in this study is provided in Table S1. Our results can be accessed per our portal at http://www.tumorfusions.org.

cancer biology

Extrachromosal DNA elements can drive disease evolution in glioblastoma

To understand how genomic heterogeneity of glioblastoma (GBM) contributes to the poor response to therapy, which is characteristic of this disease, we performed DNA and RNA sequencing on GBM tumor samples and the neurospheres and orthotopic xenograft models derived from them. We used the resulting data set to show that somatic driver alterations including single nucleotide variants, focal DNA alterations, and oncogene amplification in extrachromosomal DNA (ecDNA) elements were in majority propagated from tumor to model systems. In several instances, ecDNAs and chromosomal alterations demonstrated divergent inheritance patterns and clonal selection dynamics during cell culture and xenografting. Longitudinal patient tumor profiling showed that oncogenic ecDNAs are frequently retained after disease recurrence. Our analysis shows that extrachromosomal elements increase the genomic heterogeneity during tumor evolution of glioblastoma, independent of chromosomal DNA alterations.

cancer biology