ABSTRACT
Cancer evolves dynamically as clonal expansions supersede one another driven by shifting selective pressures, mutational processes, and disrupted cancer genes. These processes mark the genome, such that a cancer's life history is encrypted in the somatic mutations present. We developed algorithms to decipher this narrative and applied them to 21 breast cancers. Mutational processes evolve across a cancer's lifespan, with many emerging late but contributing extensive genetic variation. Subclonal diversification is prominent, and most mutations are found in just a fraction of tumor cells. Every tumor has a dominant subclonal lineage, representing more than 50% of tumor cells. Minimal expansion of these subclones occurs until many hundreds to thousands of mutations have accumulated, implying the existence of long-lived, quiescent cell lineages capable of substantial proliferation upon acquisition of enabling genomic changes. Expansion of the dominant subclone to an appreciable mass may therefore represent the final rate-limiting step in a breast cancer's development, triggering diagnosis.
Subject(s)
Breast Neoplasms/genetics , Cell Transformation, Neoplastic , Clonal Evolution , Mutation , Algorithms , Chromosome Aberrations , Female , Humans , Point MutationABSTRACT
All cancers carry somatic mutations. The patterns of mutation in cancer genomes reflect the DNA damage and repair processes to which cancer cells and their precursors have been exposed. To explore these mechanisms further, we generated catalogs of somatic mutation from 21 breast cancers and applied mathematical methods to extract mutational signatures of the underlying processes. Multiple distinct single- and double-nucleotide substitution signatures were discernible. Cancers with BRCA1 or BRCA2 mutations exhibited a characteristic combination of substitution mutation signatures and a distinctive profile of deletions. Complex relationships between somatic mutation prevalence and transcription were detected. A remarkable phenomenon of localized hypermutation, termed "kataegis," was observed. Regions of kataegis differed between cancers but usually colocalized with somatic rearrangements. Base substitutions in these regions were almost exclusively of cytosine at TpC dinucleotides. The mechanisms underlying most of these mutational signatures are unknown. However, a role for the APOBEC family of cytidine deaminases is proposed.
Subject(s)
Breast Neoplasms/genetics , DNA Mutational Analysis , Genome-Wide Association Study , Mutation , APOBEC-1 Deaminase , BRCA2 Protein/genetics , Cytidine Deaminase/metabolism , Female , Genes, BRCA1 , High-Throughput Nucleotide Sequencing , HumansABSTRACT
Cancer is driven by somatically acquired point mutations and chromosomal rearrangements, conventionally thought to accumulate gradually over time. Using next-generation sequencing, we characterize a phenomenon, which we term chromothripsis, whereby tens to hundreds of genomic rearrangements occur in a one-off cellular crisis. Rearrangements involving one or a few chromosomes crisscross back and forth across involved regions, generating frequent oscillations between two copy number states. These genomic hallmarks are highly improbable if rearrangements accumulate over time and instead imply that nearly all occur during a single cellular catastrophe. The stamp of chromothripsis can be seen in at least 2%-3% of all cancers, across many subtypes, and is present in â¼25% of bone cancers. We find that one, or indeed more than one, cancer-causing lesion can emerge out of the genomic crisis. This phenomenon has important implications for the origins of genomic remodeling and temporal emergence of cancer.
Subject(s)
Chromosome Aberrations , Neoplasms/genetics , Neoplasms/pathology , Bone Neoplasms/genetics , Cell Line, Tumor , Chromosome Painting , Female , Gene Rearrangement , Humans , Leukemia, Lymphocytic, Chronic, B-Cell/genetics , Middle AgedABSTRACT
The somatic mutations present in the genome of a cell accumulate over the lifetime of a multicellular organism. These mutations can provide insights into the developmental lineage tree, the number of divisions that each cell has undergone and the mutational processes that have been operative. Here we describe whole genomes of clonal lines derived from multiple tissues of healthy mice. Using somatic base substitutions, we reconstructed the early cell divisions of each animal, demonstrating the contributions of embryonic cells to adult tissues. Differences were observed between tissues in the numbers and types of mutations accumulated by each cell, which likely reflect differences in the number of cell divisions they have undergone and varying contributions of different mutational processes. If somatic mutation rates are similar to those in mice, the results indicate that precise insights into development and mutagenesis of normal human cells will be possible.
Subject(s)
Cell Lineage/genetics , Clone Cells/cytology , Clone Cells/metabolism , Genome/genetics , Mutagenesis/genetics , Mutation/genetics , Animals , Biological Clocks/genetics , Cell Division , Cells, Cultured , Embryo, Mammalian/cytology , Humans , Male , Mice , Mice, Inbred C57BL , Mutation Rate , Organoids/cytology , Organoids/metabolism , Phylogeny , Sequence Analysis, DNA , Tail/cytologyABSTRACT
BACKGROUND: Recent studies have provided a detailed census of genes that are mutated in acute myeloid leukemia (AML). Our next challenge is to understand how this genetic diversity defines the pathophysiology of AML and informs clinical practice. METHODS: We enrolled a total of 1540 patients in three prospective trials of intensive therapy. Combining driver mutations in 111 cancer genes with cytogenetic and clinical data, we defined AML genomic subgroups and their relevance to clinical outcomes. RESULTS: We identified 5234 driver mutations across 76 genes or genomic regions, with 2 or more drivers identified in 86% of the patients. Patterns of co-mutation compartmentalized the cohort into 11 classes, each with distinct diagnostic features and clinical outcomes. In addition to currently defined AML subgroups, three heterogeneous genomic categories emerged: AML with mutations in genes encoding chromatin, RNA-splicing regulators, or both (in 18% of patients); AML with TP53 mutations, chromosomal aneuploidies, or both (in 13%); and, provisionally, AML with IDH2(R172) mutations (in 1%). Patients with chromatin-spliceosome and TP53-aneuploidy AML had poor outcomes, with the various class-defining mutations contributing independently and additively to the outcome. In addition to class-defining lesions, other co-occurring driver mutations also had a substantial effect on overall survival. The prognostic effects of individual mutations were often significantly altered by the presence or absence of other driver mutations. Such gene-gene interactions were especially pronounced for NPM1-mutated AML, in which patterns of co-mutation identified groups with a favorable or adverse prognosis. These predictions require validation in prospective clinical trials. CONCLUSIONS: The driver landscape in AML reveals distinct molecular subgroups that reflect discrete paths in the evolution of AML, informing disease classification and prognostic stratification. (Funded by the Wellcome Trust and others; ClinicalTrials.gov number, NCT00146120.).
Subject(s)
Leukemia, Myeloid, Acute/genetics , Mutation , Adult , DNA (Cytosine-5-)-Methyltransferases/genetics , DNA Methyltransferase 3A , DNA Mutational Analysis , Epistasis, Genetic , Gene Fusion , Genotype , Humans , Intracellular Signaling Peptides and Proteins/genetics , Leukemia, Myeloid, Acute/mortality , Leukemia, Myeloid, Acute/therapy , Middle Aged , Nuclear Proteins/genetics , Nucleophosmin , Prognosis , Proportional Hazards Models , Prospective Studies , RNA Splicing , Survival AnalysisABSTRACT
All cancers carry somatic mutations in their genomes. A subset, known as driver mutations, confer clonal selective advantage on cancer cells and are causally implicated in oncogenesis, and the remainder are passenger mutations. The driver mutations and mutational processes operative in breast cancer have not yet been comprehensively explored. Here we examine the genomes of 100 tumours for somatic copy number changes and mutations in the coding exons of protein-coding genes. The number of somatic mutations varied markedly between individual tumours. We found strong correlations between mutation number, age at which cancer was diagnosed and cancer histological grade, and observed multiple mutational signatures, including one present in about ten per cent of tumours characterized by numerous mutations of cytosine at TpC dinucleotides. Driver mutations were identified in several new cancer genes including AKT2, ARID1B, CASP8, CDKN1B, MAP3K1, MAP3K13, NCOR1, SMARCD1 and TBX3. Among the 100 tumours, we found driver mutations in at least 40 cancer genes and 73 different combinations of mutated cancer genes. The results highlight the substantial genetic diversity underlying this common disease.
Subject(s)
Breast Neoplasms/genetics , Cell Transformation, Neoplastic/genetics , Mutagenesis/genetics , Mutation/genetics , Oncogenes/genetics , Age Factors , Breast Neoplasms/classification , Breast Neoplasms/pathology , Cytosine/metabolism , DNA Mutational Analysis , Female , Humans , JNK Mitogen-Activated Protein Kinases/metabolism , Neoplasm Grading , Reproducibility of Results , Signal Transduction/geneticsABSTRACT
The genetics of renal cancer is dominated by inactivation of the VHL tumour suppressor gene in clear cell carcinoma (ccRCC), the commonest histological subtype. A recent large-scale screen of â¼3,500 genes by PCR-based exon re-sequencing identified several new cancer genes in ccRCC including UTX (also known as KDM6A), JARID1C (also known as KDM5C) and SETD2 (ref. 2). These genes encode enzymes that demethylate (UTX, JARID1C) or methylate (SETD2) key lysine residues of histone H3. Modification of the methylation state of these lysine residues of histone H3 regulates chromatin structure and is implicated in transcriptional control. However, together these mutations are present in fewer than 15% of ccRCC, suggesting the existence of additional, currently unidentified cancer genes. Here, we have sequenced the protein coding exome in a series of primary ccRCC and report the identification of the SWI/SNF chromatin remodelling complex gene PBRM1 (ref. 4) as a second major ccRCC cancer gene, with truncating mutations in 41% (92/227) of cases. These data further elucidate the somatic genetic architecture of ccRCC and emphasize the marked contribution of aberrant chromatin biology.
Subject(s)
Carcinoma, Renal Cell/genetics , Kidney Neoplasms/genetics , Mutation/genetics , Nuclear Proteins/genetics , Nuclear Proteins/metabolism , Transcription Factors/genetics , Transcription Factors/metabolism , Animals , Cell Line, Tumor , DNA-Binding Proteins , Disease Models, Animal , Gene Expression Regulation , Gene Knockdown Techniques , Humans , Mice , Pancreatic Neoplasms/geneticsABSTRACT
Multifocal breast cancer (MFBC), defined as multiple synchronous unilateral lesions of invasive breast cancer, is relatively frequent and has been associated with more aggressive features than unifocal cancer. Here, we aimed to investigate the genomic heterogeneity between MFBC lesions sharing similar histopathological parameters. Characterization of different lesions from 36 patients with ductal MFBC involved the identification of non-silent coding mutations in 360 protein-coding genes (171 tumour and 36 matched normal samples). We selected only patients with lesions presenting the same grade, ER, and HER2 status. Mutations were classified as 'oncogenic' in the case of recurrent substitutions reported in COSMIC or truncating mutations affecting tumour suppressor genes. All mutations identified in a given patient were further interrogated in all samples from that patient through deep resequencing using an orthogonal platform. Whole-genome rearrangement screen was further conducted in 8/36 patients. Twenty-four patients (67%) had substitutions/indels shared by all their lesions, of which 11 carried the same mutations in all lesions, and 13 had lesions with both common and private mutations. Three-quarters of those 24 patients shared oncogenic variants. The remaining 12 patients (33%) did not share any substitution/indels, with inter-lesion heterogeneity observed for oncogenic mutation(s) in genes such as PIK3CA, TP53, GATA3, and PTEN. Genomically heterogeneous lesions tended to be further apart in the mammary gland than homogeneous lesions. Genome-wide analyses of a limited number of patients identified a common somatic background in all studied MFBCs, including those with no mutation in common between the lesions. To conclude, as the number of molecular targeted therapies increases and trials driven by genomic screening are ongoing, our findings highlight the presence of genomic inter-lesion heterogeneity in one-third, despite similar pathological features. This implies that deeper molecular characterization of all MFBC lesions is warranted for the adequate management of those cancers.
Subject(s)
Biomarkers, Tumor/genetics , Breast Neoplasms/genetics , Breast Neoplasms/pathology , Carcinoma, Ductal, Breast/genetics , Carcinoma, Ductal, Breast/pathology , Carcinoma, Intraductal, Noninfiltrating/genetics , Carcinoma, Intraductal, Noninfiltrating/pathology , Mutation , Neoplasms, Multiple Primary/genetics , Neoplasms, Multiple Primary/pathology , Adult , Aged , Biomarkers, Tumor/analysis , Breast Neoplasms/chemistry , Carcinoma, Ductal, Breast/chemistry , Carcinoma, Intraductal, Noninfiltrating/chemistry , DNA Mutational Analysis , Female , Genetic Predisposition to Disease , Genome-Wide Association Study , High-Throughput Nucleotide Sequencing , Humans , Middle Aged , Neoplasm Grading , Neoplasms, Multiple Primary/chemistry , Phenotype , Predictive Value of Tests , Receptor, ErbB-2/analysis , Receptors, Estrogen/analysis , Retrospective StudiesABSTRACT
Pancreatic cancer is an aggressive malignancy with a five-year mortality of 97-98%, usually due to widespread metastatic disease. Previous studies indicate that this disease has a complex genomic landscape, with frequent copy number changes and point mutations, but genomic rearrangements have not been characterized in detail. Despite the clinical importance of metastasis, there remain fundamental questions about the clonal structures of metastatic tumours, including phylogenetic relationships among metastases, the scale of ongoing parallel evolution in metastatic and primary sites, and how the tumour disseminates. Here we harness advances in DNA sequencing to annotate genomic rearrangements in 13 patients with pancreatic cancer and explore clonal relationships among metastases. We find that pancreatic cancer acquires rearrangements indicative of telomere dysfunction and abnormal cell-cycle control, namely dysregulated G1-to-S-phase transition with intact G2-M checkpoint. These initiate amplification of cancer genes and occur predominantly in early cancer development rather than the later stages of the disease. Genomic instability frequently persists after cancer dissemination, resulting in ongoing, parallel and even convergent evolution among different metastases. We find evidence that there is genetic heterogeneity among metastasis-initiating cells, that seeding metastasis may require driver mutations beyond those required for primary tumours, and that phylogenetic trees across metastases show organ-specific branches. These data attest to the richness of genetic variation in cancer, brought about by the tandem forces of genomic instability and evolutionary selection.
Subject(s)
Genomic Instability/genetics , Mutagenesis/genetics , Neoplasm Metastasis/genetics , Pancreatic Neoplasms/genetics , Pancreatic Neoplasms/pathology , Adenocarcinoma/genetics , Adenocarcinoma/pathology , Cell Cycle/genetics , Cell Lineage/genetics , Clone Cells/metabolism , Clone Cells/pathology , DNA Mutational Analysis , Disease Progression , Evolution, Molecular , Genes, Neoplasm/genetics , Humans , Liver Neoplasms/genetics , Liver Neoplasms/secondary , Lung Neoplasms/genetics , Lung Neoplasms/secondary , Neoplasm Metastasis/pathology , Organ Specificity , Telomere/genetics , Telomere/pathologyABSTRACT
Cancer is driven by mutation. Worldwide, tobacco smoking is the principal lifestyle exposure that causes cancer, exerting carcinogenicity through >60 chemicals that bind and mutate DNA. Using massively parallel sequencing technology, we sequenced a small-cell lung cancer cell line, NCI-H209, to explore the mutational burden associated with tobacco smoking. A total of 22,910 somatic substitutions were identified, including 134 in coding exons. Multiple mutation signatures testify to the cocktail of carcinogens in tobacco smoke and their proclivities for particular bases and surrounding sequence context. Effects of transcription-coupled repair and a second, more general, expression-linked repair pathway were evident. We identified a tandem duplication that duplicates exons 3-8 of CHD7 in frame, and another two lines carrying PVT1-CHD7 fusion genes, indicating that CHD7 may be recurrently rearranged in this disease. These findings illustrate the potential for next-generation sequencing to provide unprecedented insights into mutational processes, cellular repair pathways and gene networks associated with cancer.
Subject(s)
Lung Neoplasms/etiology , Lung Neoplasms/genetics , Mutation/genetics , Nicotiana/adverse effects , Small Cell Lung Carcinoma/etiology , Small Cell Lung Carcinoma/genetics , Smoking/adverse effects , Carcinogens/toxicity , Cell Line, Tumor , DNA Copy Number Variations/drug effects , DNA Copy Number Variations/genetics , DNA Damage/genetics , DNA Helicases/genetics , DNA Mutational Analysis , DNA Repair/genetics , DNA-Binding Proteins/genetics , Exons/genetics , Gene Expression Regulation, Neoplastic/drug effects , Genome, Human/drug effects , Genome, Human/genetics , Humans , Mutagenesis, Insertional/drug effects , Mutagenesis, Insertional/genetics , Mutation/drug effects , Promoter Regions, Genetic/genetics , Sequence Deletion/geneticsABSTRACT
Clear cell renal cell carcinoma (ccRCC) is the most common form of adult kidney cancer, characterized by the presence of inactivating mutations in the VHL gene in most cases, and by infrequent somatic mutations in known cancer genes. To determine further the genetics of ccRCC, we have sequenced 101 cases through 3,544 protein-coding genes. Here we report the identification of inactivating mutations in two genes encoding enzymes involved in histone modification-SETD2, a histone H3 lysine 36 methyltransferase, and JARID1C (also known as KDM5C), a histone H3 lysine 4 demethylase-as well as mutations in the histone H3 lysine 27 demethylase, UTX (KMD6A), that we recently reported. The results highlight the role of mutations in components of the chromatin modification machinery in human cancer. Furthermore, NF2 mutations were found in non-VHL mutated ccRCC, and several other probable cancer genes were identified. These results indicate that substantial genetic heterogeneity exists in a cancer type dominated by mutations in a single gene, and that systematic screens will be key to fully determining the somatic genetic architecture of cancer.
Subject(s)
Carcinoma, Renal Cell/genetics , Genes, Neurofibromatosis 2 , Histone-Lysine N-Methyltransferase/genetics , Histones/metabolism , Kidney Neoplasms/genetics , Nuclear Proteins/genetics , Oxidoreductases, N-Demethylating/genetics , Carcinoma, Renal Cell/pathology , Cell Hypoxia/genetics , Chromatin/metabolism , Gene Expression Regulation, Neoplastic , Histone Demethylases , Humans , Kidney Neoplasms/pathology , Mutation/genetics , Sequence Analysis, DNAABSTRACT
All cancers carry somatic mutations. A subset of these somatic alterations, termed driver mutations, confer selective growth advantage and are implicated in cancer development, whereas the remainder are passengers. Here we have sequenced the genomes of a malignant melanoma and a lymphoblastoid cell line from the same person, providing the first comprehensive catalogue of somatic mutations from an individual cancer. The catalogue provides remarkable insights into the forces that have shaped this cancer genome. The dominant mutational signature reflects DNA damage due to ultraviolet light exposure, a known risk factor for malignant melanoma, whereas the uneven distribution of mutations across the genome, with a lower prevalence in gene footprints, indicates that DNA repair has been preferentially deployed towards transcribed regions. The results illustrate the power of a cancer genome sequence to reveal traces of the DNA damage, repair, mutation and selection processes that were operative years before the cancer became symptomatic.
Subject(s)
Genes, Neoplasm/genetics , Genome, Human/genetics , Mutation/genetics , Neoplasms/genetics , Adult , Cell Line, Tumor , DNA Damage/genetics , DNA Mutational Analysis , DNA Repair/genetics , Gene Dosage/genetics , Humans , Loss of Heterozygosity/genetics , Male , Melanoma/etiology , Melanoma/genetics , MicroRNAs/genetics , Mutagenesis, Insertional/genetics , Neoplasms/etiology , Polymorphism, Single Nucleotide/genetics , Precision Medicine , Sequence Deletion/genetics , Ultraviolet RaysABSTRACT
Myelodysplastic syndromes (MDS) are a heterogeneous group of chronic hematological malignancies characterized by dysplasia, ineffective hematopoiesis and a variable risk of progression to acute myeloid leukemia. Sequencing of MDS genomes has identified mutations in genes implicated in RNA splicing, DNA modification, chromatin regulation, and cell signaling. We sequenced 111 genes across 738 patients with MDS or closely related neoplasms (including chronic myelomonocytic leukemia and MDS-myeloproliferative neoplasms) to explore the role of acquired mutations in MDS biology and clinical phenotype. Seventy-eight percent of patients had 1 or more oncogenic mutations. We identify complex patterns of pairwise association between genes, indicative of epistatic interactions involving components of the spliceosome machinery and epigenetic modifiers. Coupled with inferences on subclonal mutations, these data suggest a hypothesis of genetic "predestination," in which early driver mutations, typically affecting genes involved in RNA splicing, dictate future trajectories of disease evolution with distinct clinical phenotypes. Driver mutations had equivalent prognostic significance, whether clonal or subclonal, and leukemia-free survival deteriorated steadily as numbers of driver mutations increased. Thus, analysis of oncogenic mutations in large, well-characterized cohorts of patients illustrates the interconnections between the cancer genome and disease biology, with considerable potential for clinical application.
Subject(s)
Mutation , Myelodysplastic Syndromes/genetics , Aged , Aged, 80 and over , Cohort Studies , Disease Progression , Epistasis, Genetic , Female , Humans , Leukemia, Myeloid, Acute/genetics , Leukemia, Myelomonocytic, Chronic/genetics , Male , Middle Aged , Myelodysplastic-Myeloproliferative Diseases/genetics , Oncogenes , Prognosis , RNA Splicing/genetics , Spliceosomes/geneticsABSTRACT
Multiple somatic rearrangements are often found in cancer genomes; however, the underlying processes of rearrangement and their contribution to cancer development are poorly characterized. Here we use a paired-end sequencing strategy to identify somatic rearrangements in breast cancer genomes. There are more rearrangements in some breast cancers than previously appreciated. Rearrangements are more frequent over gene footprints and most are intrachromosomal. Multiple rearrangement architectures are present, but tandem duplications are particularly common in some cancers, perhaps reflecting a specific defect in DNA maintenance. Short overlapping sequences at most rearrangement junctions indicate that these have been mediated by non-homologous end-joining DNA repair, although varying sequence patterns indicate that multiple processes of this type are operative. Several expressed in-frame fusion genes were identified but none was recurrent. The study provides a new perspective on cancer genomes, highlighting the diversity of somatic rearrangements and their potential contribution to cancer development.
Subject(s)
Breast Neoplasms/genetics , Chromosome Aberrations , Gene Rearrangement/genetics , Genome, Human/genetics , Cell Line, Tumor , Cells, Cultured , DNA Breaks , Female , Genomic Library , Humans , Sequence Analysis, DNAABSTRACT
In a previous study, we identified somatic mutations of SF3B1, a gene encoding a core component of RNA splicing machinery, in patients with myelodysplastic syndrome (MDS). Here, we define the clinical significance of these mutations in MDS and myelodysplastic/myeloproliferative neoplasms (MDS/MPN). The coding exons of SF3B1 were screened using massively parallel pyrosequencing in patients with MDS, MDS/MPN, or acute myeloid leukemia (AML) evolving from MDS. Somatic mutations of SF3B1 were found in 150 of 533 (28.1%) patients with MDS, 16 of 83 (19.3%) with MDS/MPN, and 2 of 38 (5.3%) with AML. There was a significant association of SF3B1 mutations with the presence of ring sideroblasts (P < .001) and of mutant allele burden with their proportion (P = .002). The mutant gene had a positive predictive value for ring sideroblasts of 97.7% (95% confidence interval, 93.5%-99.5%). In multivariate analysis including established risk factors, SF3B1 mutations were found to be independently associated with better overall survival (hazard ratio = 0.15, P = .025) and lower risk of evolution into AML (hazard ratio = 0.33, P = .049). The close association between SF3B1 mutations and disease phenotype with ring sideroblasts across MDS and MDS/MPN is consistent with a causal relationship. Furthermore, SF3B1 mutations are independent predictors of favorable clinical outcome, and their incorporation into stratification systems might improve risk assessment in MDS.
Subject(s)
Mutation , Myelodysplastic Syndromes/genetics , Myelodysplastic Syndromes/physiopathology , Myelodysplastic-Myeloproliferative Diseases/genetics , Myelodysplastic-Myeloproliferative Diseases/physiopathology , Phosphoproteins/genetics , Ribonucleoprotein, U2 Small Nuclear/genetics , Aged , Alleles , Codon , DNA Mutational Analysis , Erythroblasts/pathology , Female , Follow-Up Studies , Genetic Association Studies , Humans , Leukemia, Myeloid, Acute/diagnosis , Leukemia, Myeloid, Acute/etiology , Leukemia, Myeloid, Acute/genetics , Leukemia, Myeloid, Acute/pathology , Male , Middle Aged , Myelodysplastic Syndromes/diagnosis , Myelodysplastic Syndromes/pathology , Myelodysplastic-Myeloproliferative Diseases/diagnosis , Myelodysplastic-Myeloproliferative Diseases/pathology , Prognosis , RNA Splicing Factors , Sex Characteristics , Survival AnalysisABSTRACT
Detection of recurrent somatic rearrangements routinely allows monitoring of residual disease burden in leukemias, but is not used for most solid tumors. However, next-generation sequencing now allows rapid identification of patient-specific rearrangements in solid tumors. We mapped genomic rearrangements in three cancers and showed that PCR assays for rearrangements could detect a single copy of the tumor genome in plasma without false positives. Disease status, drug responsiveness, and incipient relapse could be serially assessed. In future, this strategy could be readily established in diagnostic laboratories, with major impact on monitoring of disease status and personalizing treatment of solid tumors.
Subject(s)
Breast Neoplasms/genetics , Gene Rearrangement , Osteosarcoma/genetics , Adult , Breast Neoplasms/drug therapy , Breast Neoplasms/pathology , Female , Humans , Middle Aged , Osteosarcoma/drug therapy , Osteosarcoma/pathologyABSTRACT
In multiple myeloma, next-generation sequencing (NGS) has expanded our knowledge of genomic lesions, and highlighted a dynamic and heterogeneous composition of the tumor. Here we used NGS to characterize the genomic landscape of 418 multiple myeloma cases at diagnosis and correlate this with prognosis and classification. Translocations and copy number abnormalities (CNAs) had a preponderant contribution over gene mutations in defining the genotype and prognosis of each case. Known and novel independent prognostic markers were identified in our cohort of proteasome inhibitor and immunomodulatory drug-treated patients with long follow-up, including events with context-specific prognostic value, such as deletions of the PRDM1 gene. Taking advantage of the comprehensive genomic annotation of each case, we used innovative statistical approaches to identify potential novel myeloma subgroups. We observed clusters of patients stratified based on the overall number of mutations and number/type of CNAs, with distinct effects on survival, suggesting that extended genotype of multiple myeloma at diagnosis may lead to improved disease classification and prognostication.
Subject(s)
Biomarkers, Tumor/genetics , Multiple Myeloma/genetics , DNA Copy Number Variations/genetics , Female , Gene Expression Regulation, Neoplastic/genetics , Genomics/methods , Genotype , High-Throughput Nucleotide Sequencing/methods , Humans , Male , Middle Aged , Multiple Myeloma/pathology , Mutation/genetics , Positive Regulatory Domain I-Binding Factor 1/genetics , Prognosis , Translocation, Genetic/geneticsABSTRACT
Patterns of genomic evolution between primary and metastatic breast cancer have not been studied in large numbers, despite patients with metastatic breast cancer having dismal survival. We sequenced whole genomes or a panel of 365 genes on 299 samples from 170 patients with locally relapsed or metastatic breast cancer. Several lines of analysis indicate that clones seeding metastasis or relapse disseminate late from primary tumors, but continue to acquire mutations, mostly accessing the same mutational processes active in the primary tumor. Most distant metastases acquired driver mutations not seen in the primary tumor, drawing from a wider repertoire of cancer genes than early drivers. These include a number of clinically actionable alterations and mutations inactivating SWI-SNF and JAK2-STAT3 pathways.
Subject(s)
Biomarkers, Tumor/genetics , Breast Neoplasms/genetics , Breast Neoplasms/pathology , Evolution, Molecular , Mutation , Neoplasm Recurrence, Local/genetics , Adult , Aged , Aged, 80 and over , Chromosomal Proteins, Non-Histone/antagonists & inhibitors , Chromosomal Proteins, Non-Histone/genetics , Female , Humans , Janus Kinase 2/antagonists & inhibitors , Janus Kinase 2/genetics , Male , Middle Aged , Neoplasm Metastasis/genetics , STAT3 Transcription Factor/antagonists & inhibitors , STAT3 Transcription Factor/genetics , Transcription Factors/antagonists & inhibitors , Transcription Factors/geneticsABSTRACT
The sequencing of cancer genomes may enable tailoring of therapeutics to the underlying biological abnormalities driving a particular patient's tumor. However, sequencing-based strategies rely heavily on representative sampling of tumors. To understand the subclonal structure of primary breast cancer, we applied whole-genome and targeted sequencing to multiple samples from each of 50 patients' tumors (303 samples in total). The extent of subclonal diversification varied among cases and followed spatial patterns. No strict temporal order was evident, with point mutations and rearrangements affecting the most common breast cancer genes, including PIK3CA, TP53, PTEN, BRCA2 and MYC, occurring early in some tumors and late in others. In 13 out of 50 cancers, potentially targetable mutations were subclonal. Landmarks of disease progression, such as resistance to chemotherapy and the acquisition of invasive or metastatic potential, arose within detectable subclones of antecedent lesions. These findings highlight the importance of including analyses of subclonal structure and tumor evolution in clinical trials of primary breast cancer.
Subject(s)
Breast Neoplasms/genetics , Breast Neoplasms/pathology , Genetic Variation , High-Throughput Nucleotide Sequencing/methods , Adult , Aged , Aged, 80 and over , Antineoplastic Agents/therapeutic use , Breast Neoplasms/drug therapy , Cell Proliferation , Clone Cells , Cohort Studies , DNA Copy Number Variations/genetics , Female , Genomics , Humans , Middle Aged , Mutation/geneticsABSTRACT
Genome-wide DNA sequencing was used to decrypt the phylogeny of multiple samples from distinct areas of cancer and morphologically normal tissue taken from the prostates of three men. Mutations were present at high levels in morphologically normal tissue distant from the cancer, reflecting clonal expansions, and the underlying mutational processes at work in morphologically normal tissue were also at work in cancer. Our observations demonstrate the existence of ongoing abnormal mutational processes, consistent with field effects, underlying carcinogenesis. This mechanism gives rise to extensive branching evolution and cancer clone mixing, as exemplified by the coexistence of multiple cancer lineages harboring distinct ERG fusions within a single cancer nodule. Subsets of mutations were shared either by morphologically normal and malignant tissues or between different ERG lineages, indicating earlier or separate clonal cell expansions. Our observations inform on the origin of multifocal disease and have implications for prostate cancer therapy in individual cases.