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Dive into the research topics where Matthew J. Walter is active.

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Featured researches published by Matthew J. Walter.


The New England Journal of Medicine | 2009

Recurring Mutations Found by Sequencing an Acute Myeloid Leukemia Genome

Elaine R. Mardis; Li Ding; David J. Dooling; David E. Larson; Michael D. McLellan; Ken Chen; Daniel C. Koboldt; Robert S. Fulton; Kim D. Delehaunty; Sean McGrath; Lucinda A. Fulton; Devin P. Locke; Vincent Magrini; Rachel Abbott; Tammi L. Vickery; Jerry S. Reed; Jody S. Robinson; Todd Wylie; Scott M. Smith; Lynn K. Carmichael; James M. Eldred; Christopher C. Harris; Jason Walker; Joshua B. Peck; Feiyu Du; Adam F. Dukes; Gabriel E. Sanderson; Anthony M. Brummett; Eric Clark; Joshua F. McMichael

BACKGROUNDnThe full complement of DNA mutations that are responsible for the pathogenesis of acute myeloid leukemia (AML) is not yet known.nnnMETHODSnWe used massively parallel DNA sequencing to obtain a very high level of coverage (approximately 98%) of a primary, cytogenetically normal, de novo genome for AML with minimal maturation (AML-M1) and a matched normal skin genome.nnnRESULTSnWe identified 12 acquired (somatic) mutations within the coding sequences of genes and 52 somatic point mutations in conserved or regulatory portions of the genome. All mutations appeared to be heterozygous and present in nearly all cells in the tumor sample. Four of the 64 mutations occurred in at least 1 additional AML sample in 188 samples that were tested. Mutations in NRAS and NPM1 had been identified previously in patients with AML, but two other mutations had not been identified. One of these mutations, in the IDH1 gene, was present in 15 of 187 additional AML genomes tested and was strongly associated with normal cytogenetic status; it was present in 13 of 80 cytogenetically normal samples (16%). The other was a nongenic mutation in a genomic region with regulatory potential and conservation in higher mammals; we detected it in one additional AML tumor. The AML genome that we sequenced contains approximately 750 point mutations, of which only a small fraction are likely to be relevant to pathogenesis.nnnCONCLUSIONSnBy comparing the sequences of tumor and skin genomes of a patient with AML-M1, we have identified recurring mutations that may be relevant for pathogenesis.


Nature | 2013

Mutational landscape and significance across 12 major cancer types

Cyriac Kandoth; Michael D. McLellan; Fabio Vandin; Kai Ye; Beifang Niu; Charles Lu; Mingchao Xie; Qunyuan Zhang; Joshua F. McMichael; Matthew A. Wyczalkowski; Mark D. M. Leiserson; Christopher A. Miller; John S. Welch; Matthew J. Walter; Michael C. Wendl; Timothy J. Ley; Richard Wilson; Benjamin J. Raphael; Li Ding

The Cancer Genome Atlas (TCGA) has used the latest sequencing and analysis methods to identify somatic variants across thousands of tumours. Here we present data and analytical results for point mutations and small insertions/deletions from 3,281 tumours across 12 tumour types as part of the TCGA Pan-Cancer effort. We illustrate the distributions of mutation frequencies, types and contexts across tumour types, and establish their links to tissues of origin, environmental/carcinogen influences, and DNA repair defects. Using the integrated data sets, we identified 127 significantly mutated genes from well-known (for example, mitogen-activated protein kinase, phosphatidylinositol-3-OH kinase, Wnt/β-catenin and receptor tyrosine kinase signalling pathways, and cell cycle control) and emerging (for example, histone, histone modification, splicing, metabolism and proteolysis) cellular processes in cancer. The average number of mutations in these significantly mutated genes varies across tumour types; most tumours have two to six, indicating that the number of driver mutations required during oncogenesis is relatively small. Mutations in transcriptional factors/regulators show tissue specificity, whereas histone modifiers are often mutated across several cancer types. Clinical association analysis identifies genes having a significant effect on survival, and investigations of mutations with respect to clonal/subclonal architecture delineate their temporal orders during tumorigenesis. Taken together, these results lay the groundwork for developing new diagnostics and individualizing cancer treatment.


Nature | 2012

Clonal evolution in relapsed acute myeloid leukaemia revealed by whole-genome sequencing

Li Ding; Timothy J. Ley; David E. Larson; Christopher A. Miller; Daniel C. Koboldt; John S. Welch; Julie Ritchey; Margaret A. Young; Tamara Lamprecht; Michael D. McLellan; Joshua F. McMichael; John W. Wallis; Charles Lu; Dong Shen; Christopher C. Harris; David J. Dooling; Robert S. Fulton; Lucinda Fulton; Ken Chen; Heather K. Schmidt; Joelle Kalicki-Veizer; Vincent Magrini; Lisa Cook; Sean McGrath; Tammi L. Vickery; Michael C. Wendl; Sharon Heath; Mark A. Watson; Daniel C. Link; Michael H. Tomasson

Most patients with acute myeloid leukaemia (AML) die from progressive disease after relapse, which is associated with clonal evolution at the cytogenetic level. To determine the mutational spectrum associated with relapse, we sequenced the primary tumour and relapse genomes from eight AML patients, and validated hundreds of somatic mutations using deep sequencing; this allowed us to define clonality and clonal evolution patterns precisely at relapse. In addition to discovering novel, recurrently mutated genes (for example, WAC, SMC3, DIS3, DDX41 and DAXX) in AML, we also found two major clonal evolution patterns during AML relapse: (1) the founding clone in the primary tumour gained mutations and evolved into the relapse clone, or (2) a subclone of the founding clone survived initial therapy, gained additional mutations and expanded at relapse. In all cases, chemotherapy failed to eradicate the founding clone. The comparison of relapse-specific versus primary tumour mutations in all eight cases revealed an increase in transversions, probably due to DNA damage caused by cytotoxic chemotherapy. These data demonstrate that AML relapse is associated with the addition of new mutations and clonal evolution, which is shaped, in part, by the chemotherapy that the patients receive to establish and maintain remissions.


Nature | 2008

DNA sequencing of a cytogenetically normal acute myeloid leukaemia genome

Timothy J. Ley; Elaine R. Mardis; Li Ding; Bob Fulton; Michael D. McLellan; Ken Chen; David J. Dooling; Brian H. Dunford-Shore; Sean McGrath; Matthew Hickenbotham; Lisa Cook; Rachel Abbott; David E. Larson; Dan Koboldt; Craig S. Pohl; Scott M. Smith; Amy Hawkins; Scott Abbott; Devin P. Locke; LaDeana W. Hillier; Tracie L. Miner; Lucinda Fulton; Vincent Magrini; Todd Wylie; Jarret Glasscock; Joshua J. Conyers; Nathan Sander; Xiaoqi Shi; John R. Osborne; Patrick Minx

Acute myeloid leukaemia is a highly malignant haematopoietic tumour that affects about 13,000 adults in the United States each year. The treatment of this disease has changed little in the past two decades, because most of the genetic events that initiate the disease remain undiscovered. Whole-genome sequencing is now possible at a reasonable cost and timeframe to use this approach for the unbiased discovery of tumour-specific somatic mutations that alter the protein-coding genes. Here we present the results obtained from sequencing a typical acute myeloid leukaemia genome, and its matched normal counterpart obtained from the same patient’s skin. We discovered ten genes with acquired mutations; two were previously described mutations that are thought to contribute to tumour progression, and eight were new mutations present in virtually all tumour cells at presentation and relapse, the function of which is not yet known. Our study establishes whole-genome sequencing as an unbiased method for discovering cancer-initiating mutations in previously unidentified genes that may respond to targeted therapies.


Cell | 2012

The origin and evolution of mutations in acute myeloid leukemia.

John S. Welch; Timothy J. Ley; Daniel C. Link; Christopher A. Miller; David E. Larson; Daniel C. Koboldt; Lukas D. Wartman; Tamara Lamprecht; Fulu Liu; Jun Xia; Cyriac Kandoth; Robert S. Fulton; Michael D. McLellan; David J. Dooling; John W. Wallis; Ken Chen; Christopher C. Harris; Heather K. Schmidt; Joelle Kalicki-Veizer; Charles Lu; Qunyuan Zhang; Ling Lin; Michelle O’Laughlin; Joshua F. McMichael; Kim D. Delehaunty; Lucinda A. Fulton; Vincent Magrini; Sean McGrath; Ryan Demeter; Tammi L. Vickery

Most mutations in cancer genomes are thought to be acquired after the initiating event, which may cause genomic instability and drive clonal evolution. However, for acute myeloid leukemia (AML), normal karyotypes are common, and genomic instability is unusual. To better understand clonal evolution in AML, we sequenced the genomes of M3-AML samples with a known initiating event (PML-RARA) versus the genomes of normal karyotype M1-AML samples and the exomes of hematopoietic stem/progenitor cells (HSPCs) from healthy people. Collectively, the data suggest that most of the mutations found in AML genomes are actually random events that occurred in HSPCs before they acquired the initiating mutation; the mutational history of that cell is captured as the clone expands. In many cases, only one or two additional, cooperating mutations are needed to generate the malignant founding clone. Cells from the founding clone can acquire additional cooperating mutations, yielding subclones that can contribute to disease progression and/or relapse.


The New England Journal of Medicine | 2012

Clonal Architecture of Secondary Acute Myeloid Leukemia

Matthew J. Walter; Dong Shen; Li Ding; Jin Shao; Daniel C. Koboldt; Ken Chen; David E. Larson; Michael D. McLellan; David J. Dooling; Rachel Abbott; Robert S. Fulton; Vincent Magrini; Heather K. Schmidt; Joelle Kalicki-Veizer; Michelle O'Laughlin; Xian Fan; Marcus Grillot; Sarah Witowski; Sharon Heath; John L. Frater; William C. Eades; Michael H. Tomasson; Peter Westervelt; John F. DiPersio; Daniel C. Link; Elaine R. Mardis; Timothy J. Ley; Richard Wilson; Timothy A. Graubert

BACKGROUNDnThe myelodysplastic syndromes are a group of hematologic disorders that often evolve into secondary acute myeloid leukemia (AML). The genetic changes that underlie progression from the myelodysplastic syndromes to secondary AML are not well understood.nnnMETHODSnWe performed whole-genome sequencing of seven paired samples of skin and bone marrow in seven subjects with secondary AML to identify somatic mutations specific to secondary AML. We then genotyped a bone marrow sample obtained during the antecedent myelodysplastic-syndrome stage from each subject to determine the presence or absence of the specific somatic mutations. We identified recurrent mutations in coding genes and defined the clonal architecture of each pair of samples from the myelodysplastic-syndrome stage and the secondary-AML stage, using the allele burden of hundreds of mutations.nnnRESULTSnApproximately 85% of bone marrow cells were clonal in the myelodysplastic-syndrome and secondary-AML samples, regardless of the myeloblast count. The secondary-AML samples contained mutations in 11 recurrently mutated genes, including 4 genes that have not been previously implicated in the myelodysplastic syndromes or AML. In every case, progression to acute leukemia was defined by the persistence of an antecedent founding clone containing 182 to 660 somatic mutations and the outgrowth or emergence of at least one subclone, harboring dozens to hundreds of new mutations. All founding clones and subclones contained at least one mutation in a coding gene.nnnCONCLUSIONSnNearly all the bone marrow cells in patients with myelodysplastic syndromes and secondary AML are clonally derived. Genetic evolution of secondary AML is a dynamic process shaped by multiple cycles of mutation acquisition and clonal selection. Recurrent gene mutations are found in both founding clones and daughter subclones. (Funded by the National Institutes of Health and others.).


Nature Medicine | 2014

Age-related mutations associated with clonal hematopoietic expansion and malignancies.

Mingchao Xie; Charles Lu; Jiayin Wang; Michael D. McLellan; Kimberly J. Johnson; Michael C. Wendl; Joshua F. McMichael; Heather K. Schmidt; Venkata Yellapantula; Christopher A. Miller; Bradley A. Ozenberger; John S. Welch; Daniel C. Link; Matthew J. Walter; Elaine R. Mardis; John F. DiPersio; Feng Chen; Richard Wilson; Timothy J. Ley; Li Ding

Several genetic alterations characteristic of leukemia and lymphoma have been detected in the blood of individuals without apparent hematological malignancies. The Cancer Genome Atlas (TCGA) provides a unique resource for comprehensive discovery of mutations and genes in blood that may contribute to the clonal expansion of hematopoietic stem/progenitor cells. Here, we analyzed blood-derived sequence data from 2,728 individuals from TCGA and discovered 77 blood-specific mutations in cancer-associated genes, the majority being associated with advanced age. Remarkably, 83% of these mutations were from 19 leukemia and/or lymphoma-associated genes, and nine were recurrently mutated (DNMT3A, TET2, JAK2, ASXL1, TP53, GNAS, PPM1D, BCORL1 and SF3B1). We identified 14 additional mutations in a very small fraction of blood cells, possibly representing the earliest stages of clonal expansion in hematopoietic stem cells. Comparison of these findings to mutations in hematological malignancies identified several recurrently mutated genes that may be disease initiators. Our analyses show that the blood cells of more than 2% of individuals (5–6% of people older than 70 years) contain mutations that may represent premalignant events that cause clonal hematopoietic expansion.


Leukemia | 2011

Recurrent DNMT3A mutations in patients with myelodysplastic syndromes

Matthew J. Walter; Li Ding; Dong Shen; Jin Shao; Marcus Grillot; Michael D. McLellan; Robert S. Fulton; Heather K. Schmidt; Joelle Kalicki-Veizer; Michelle O'Laughlin; Cyriac Kandoth; Jack Baty; Peter Westervelt; John F. DiPersio; Elaine R. Mardis; Richard Wilson; Timothy J. Ley; Timothy A. Graubert

Alterations in DNA methylation have been implicated in the pathogenesis of myelodysplastic syndromes (MDS), although the underlying mechanism remains largely unknown. Methylation of CpG dinucleotides is mediated by DNA methyltransferases, including DNMT1, DNMT3A and DNMT3B. DNMT3A mutations have recently been reported in patients with de novo acute myeloid leukemia (AML), providing a rationale for examining the status of DNMT3A in MDS samples. In this study, we report the frequency of DNMT3A mutations in patients with de novo MDS, and their association with secondary AML. We sequenced all coding exons of DNMT3A using DNA from bone marrow and paired normal cells from 150 patients with MDS and identified 13 heterozygous mutations with predicted translational consequences in 12/150 patients (8.0%). Amino acid R882, located in the methyltransferase domain of DNMT3A, was the most common mutation site, accounting for 4/13 mutations. DNMT3A mutations were expressed in the majority of cells in all tested mutant samples regardless of myeloblast counts, suggesting that DNMT3A mutations occur early in the course of MDS. Patients with DNMT3A mutations had worse overall survival compared with patients without DNMT3A mutations (P=0.005) and more rapid progression to AML (P=0.007), suggesting that DNMT3A mutation status may have prognostic value in de novo MDS.


Nature Genetics | 2012

RECURRENT MUTATIONS IN THE U2AF1 SPLICING FACTOR IN MYELODYSPLASTIC SYNDROMES

Timothy A. Graubert; Dong Shen; Li Ding; Theresa Okeyo-Owuor; Cara L Lunn; Jin Shao; Kilannin Krysiak; Christopher C. Harris; Daniel C. Koboldt; David E. Larson; Michael D. McLellan; David J. Dooling; Rachel Abbott; Robert S. Fulton; Heather K. Schmidt; Joelle Kalicki-Veizer; Michelle O'Laughlin; Marcus Grillot; Jack Baty; Sharon Heath; John L. Frater; Talat Nasim; Daniel C. Link; Michael H. Tomasson; Peter Westervelt; John F. DiPersio; Elaine R. Mardis; Timothy J. Ley; Richard Wilson; Matthew J. Walter

Myelodysplastic syndromes (MDS) are hematopoietic stem cell disorders that often progress to chemotherapy-resistant secondary acute myeloid leukemia (sAML). We used whole-genome sequencing to perform an unbiased comprehensive screen to discover the somatic mutations in a sample from an individual with sAML and genotyped the loci containing these mutations in the matched MDS sample. Here we show that a missense mutation affecting the serine at codon 34 (Ser34) in U2AF1 was recurrently present in 13 out of 150 (8.7%) subjects with de novo MDS, and we found suggestive evidence of an increased risk of progression to sAML associated with this mutation. U2AF1 is a U2 auxiliary factor protein that recognizes the AG splice acceptor dinucleotide at the 3′ end of introns, and the alterations in U2AF1 are located in highly conserved zinc fingers of this protein. Mutant U2AF1 promotes enhanced splicing and exon skipping in reporter assays in vitro. This previously unidentified, recurrent mutation in U2AF1 implicates altered pre-mRNA splicing as a potential mechanism for MDS pathogenesis.


Nature | 2015

Role of TP53 mutations in the origin and evolution of therapy-related acute myeloid leukaemia

Terrence N. Wong; Giridharan Ramsingh; Andrew L. Young; Christopher A. Miller; Waseem Touma; John S. Welch; Tamara Lamprecht; Dong Shen; Jasreet Hundal; Robert S. Fulton; Sharon Heath; Jack Baty; Jeffery M. Klco; Li Ding; Elaine R. Mardis; Peter Westervelt; John F. DiPersio; Matthew J. Walter; Timothy A. Graubert; Timothy J. Ley; Todd E. Druley; Daniel C. Link; Richard Wilson

Therapy-related acute myeloid leukaemia (t-AML) and therapy-related myelodysplastic syndrome (t-MDS) are well-recognized complications of cytotoxic chemotherapy and/or radiotherapy. There are several features that distinguish t-AML from de novo AML, including a higher incidence of TP53 mutations, abnormalities of chromosomes 5 or 7, complex cytogenetics and a reduced response to chemotherapy. However, it is not clear how prior exposure to cytotoxic therapy influences leukaemogenesis. In particular, the mechanism by which TP53 mutations are selectively enriched in t-AML/t-MDS is unknown. Here, by sequencing the genomes of 22 patients with t-AML, we show that the total number of somatic single-nucleotide variants and the percentage of chemotherapy-related transversions are similar in t-AML and de novo AML, indicating that previous chemotherapy does not induce genome-wide DNA damage. We identified four cases of t-AML/t-MDS in which the exact TP53 mutation found at diagnosis was also present at low frequencies (0.003–0.7%) in mobilized blood leukocytes or bone marrow 3–6 years before the development of t-AML/t-MDS, including two cases in which the relevant TP53 mutation was detected before any chemotherapy. Moreover, functional TP53 mutations were identified in small populations of peripheral blood cells of healthy chemotherapy-naive elderly individuals. Finally, in mouse bone marrow chimaeras containing both wild-type and Tp53+/− haematopoietic stem/progenitor cells (HSPCs), the Tp53+/− HSPCs preferentially expanded after exposure to chemotherapy. These data suggest that cytotoxic therapy does not directly induce TP53 mutations. Rather, they support a model in which rare HSPCs carrying age-related TP53 mutations are resistant to chemotherapy and expand preferentially after treatment. The early acquisition of TP53 mutations in the founding HSPC clone probably contributes to the frequent cytogenetic abnormalities and poor responses to chemotherapy that are typical of patients with t-AML/t-MDS.

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Timothy J. Ley

Washington University in St. Louis

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Robert S. Fulton

Washington University in St. Louis

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Daniel C. Link

Washington University in St. Louis

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Christopher A. Miller

Washington University in St. Louis

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John F. DiPersio

Washington University in St. Louis

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Richard Wilson

Washington University in St. Louis

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Peter Westervelt

Washington University in St. Louis

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John S. Welch

Washington University in St. Louis

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Jin Shao

Washington University in St. Louis

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