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Garraway, Levi

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Garraway

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Levi

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Garraway, Levi

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Now showing 1 - 10 of 10
  • Publication

    Melanoma genome sequencing reveals frequent PREX2 mutations

    (2012) Berger, Michael F.; Hodis, Eran; Heffernan, Timothy P.; Deribe, Yonathan Lissanu; Lawrence, Michael S.; Protopopov, Alexei; Ivanova, Elena; Watson, Ian; Nickerson, Elizabeth; Ghosh, Papia; Zhang, Hailei; Zeid, Rhamy; Ren, Xiaojia; Cibulskis, Kristian; Sivachenko, Andrey Y.; Wagle, Nikhil; Sucker, Antje; Sougnez, Carrie; Onofrio, Roberto; Ambrogio, Lauren; Auclair, Daniel; Fennell, Timothy; Carter, Scott L.; Drier, Yotam; Stojanov, Petar; Singer, Meredith A.; Voet, Douglas; Jing, Rui; Saksena, Gordon; Barretina, Jordi; Ramos, Alex H.; Pugh, Trevor J.; Stransky, Nicolas; Parkin, Melissa Ann; Winckler, Wendy; Mahan, Scott; Ardlie, Kristin; Baldwin, Jennifer; Wargo, Jennifer Ann; Schadendorf, Dirk; Meyerson, Matthew; Gabriel, Stacey B.; Golub, Todd; Wagner, Stephan N.; Lander, Eric; Getz, Gad; Chin, Lynda; Garraway, Levi

    Melanoma is notable for its metastatic propensity, lethality in the advanced setting, and association with ultraviolet (UV) exposure early in life1. To obtain a comprehensive genomic view of melanoma, we sequenced the genomes of 25 metastatic melanomas and matched germline DNA. A wide range of point mutation rates was observed: lowest in melanomas whose primaries arose on non-UV exposed hairless skin of the extremities (3 and 14 per Mb genome), intermediate in those originating from hair-bearing skin of the trunk (range = 5 to 55 per Mb), and highest in a patient with a documented history of chronic sun exposure (111 per Mb). Analysis of whole-genome sequence data identified PREX2 - a PTEN-interacting protein and negative regulator of PTEN in breast cancer2 - as a significantly mutated gene with a mutation frequency of approximately 14% in an independent extension cohort of 107 human melanomas. PREX2 mutations are biologically relevant, as ectopic expression of mutant PREX2 accelerated tumor formation of immortalized human melanocytes in vivo. Thus, whole-genome sequencing of human melanoma tumors revealed genomic evidence of UV pathogenesis and discovered a new recurrently mutated gene in melanoma.

  • Publication

    Whole-exome sequencing and clinical interpretation of FFPE tumor samples to guide precision cancer medicine

    (2013) Allen, Eliezer M. Van; Wagle, Nikhil; Stojanov, Petar; Perrin, Danielle L.; Cibulskis, Kristian; Marlow, Sara; Jane-Valbuena, Judit; Friedrich, Dennis C.; Kryukov, Gregory; Carter, Scott L.; McKenna, Aaron; Sivachenko, Andrey; Rosenberg, Mara; Kiezun, Adam; Voet, Douglas; Lawrence, Michael; Lichtenstein, Lee T.; Gentry, Jeff G.; Huang, Franklin; Fostel, Jennifer; Farlow, Deborah; Barbie, David; Gandhi, Leena; Lander, Eric; Gray, Stacy; Joffe, Steven; Janne, Pasi; Garber, Judy; MacConaill, Laura; Lindeman, Neal; Rollins, Barrett; Kantoff, Philip; Fisher, Sheila A.; Gabriel, Stacey; Getz, Gad; Garraway, Levi

    Translating whole exome sequencing (WES) for prospective clinical use may impact the care of cancer patients; however, multiple innovations are necessary for clinical implementation. These include: (1) rapid and robust WES from formalin-fixed paraffin embedded (FFPE) tumor tissue, (2) analytical output similar to data from frozen samples, and (3) clinical interpretation of WES data for prospective use. Here, we describe a prospective clinical WES platform for archival FFPE tumor samples. The platform employs computational methods for effective clinical analysis and interpretation of WES data. When applied retrospectively to 511 exomes, the interpretative framework revealed a “long tail” of somatic alterations in clinically important genes. Prospective application of this approach identified clinically relevant alterations in 15/16 patients. In one patient, previously undetected findings guided clinical trial enrollment leading to an objective clinical response. Overall, this methodology may inform the widespread implementation of precision cancer medicine.

  • Publication

    Assessing the clinical utility of cancer genomic and proteomic data across tumor types

    (2014) Yuan, Yuan; Van Allen, Eliezer; Omberg, Larsson; Wagle, Nikhil; Amin-Mansour, Ali; Sokolov, Artem; Byers, Lauren A.; Xu, Yanxun; Hess, Kenneth R.; Diao, Lixia; Han, Leng; Huang, Xuelin; Lawrence, Michael S.; Weinstein, John N.; Stuart, Josh M.; Mills, Gordon B.; Garraway, Levi; Margolin, Adam A.; Getz, Gad; Liang, Han

    Molecular profiling of tumors promises to advance the clinical management of cancer, but the benefits of integrating molecular data with traditional clinical variables have not been systematically studied. Here we retrospectively predict patient survival using diverse molecular data (somatic copy-number alteration, DNA methylation and mRNA, miRNA and protein expression) from 953 samples of four cancer types from The Cancer Genome Atlas project. We found that incorporating molecular data with clinical variables yielded statistically significantly improved predictions (FDR < 0.05) for three cancers but those quantitative gains were limited (2.2–23.9%). Additional analyses revealed little predictive power across tumor types except for one case. In clinically relevant genes, we identified 10,281 somatic alterations across 12 cancer types in 2,928 of 3,277 patients (89.4%), many of which would not be revealed in single-tumor analyses. Our study provides a starting point and resources, including an open-access model evaluation platform, for building reliable prognostic and therapeutic strategies that incorporate molecular data.

  • Publication

    Mutational heterogeneity in cancer and the search for new cancer genes

    (2014) Lawrence, Michael S.; Stojanov, Petar; Polak, Paz; Kryukov, Gregory V.; Cibulskis, Kristian; Sivachenko, Andrey; Carter, Scott L.; Stewart, Chip; Mermel, Craig; Roberts, Steven A.; Kiezun, Adam; Hammerman, Peter S.; McKenna, Aaron; Drier, Yotam; Zou, Lihua; Ramos, Alex H.; Pugh, Trevor J.; Stransky, Nicolas; Helman, Elena; Kim, Jaegil; Sougnez, Carrie; Ambrogio, Lauren; Nickerson, Elizabeth; Shefler, Erica; Cortés, Maria L.; Auclair, Daniel; Saksena, Gordon; Voet, Douglas; Noble, Michael; DiCara, Daniel; Lin, Pei; Lichtenstein, Lee; Heiman, David I.; Fennell, Timothy; Imielinski, Marcin; Hernandez, Bryan; Hodis, Eran; Baca, Sylvan; Dulak, Austin M.; Lohr, Jens; Landau, Dan-Avi; Wu, Catherine; Melendez-Zajgla, Jorge; Hidalgo-Miranda, Alfredo; Koren, Amnon; McCarroll, Steven; Mora, Jaume; Crompton, Brian; Onofrio, Robert; Parkin, Melissa; Winckler, Wendy; Ardlie, Kristin; Gabriel, Stacey B.; Roberts, Charles W. M.; Biegel, Jaclyn A.; Stegmaier, Kimberly; Bass, Adam; Garraway, Levi; Meyerson, Matthew; Golub, Todd; Gordenin, Dmitry A.; Sunyaev, Shamil; Lander, Eric; Getz, Gad

    Major international projects are now underway aimed at creating a comprehensive catalog of all genes responsible for the initiation and progression of cancer. These studies involve sequencing of matched tumor–normal samples followed by mathematical analysis to identify those genes in which mutations occur more frequently than expected by random chance. Here, we describe a fundamental problem with cancer genome studies: as the sample size increases, the list of putatively significant genes produced by current analytical methods burgeons into the hundreds. The list includes many implausible genes (such as those encoding olfactory receptors and the muscle protein titin), suggesting extensive false positive findings that overshadow true driver events. Here, we show that this problem stems largely from mutational heterogeneity and provide a novel analytical methodology, MutSigCV, for resolving the problem. We apply MutSigCV to exome sequences from 3,083 tumor-normal pairs and discover extraordinary variation in (i) mutation frequency and spectrum within cancer types, which shed light on mutational processes and disease etiology, and (ii) mutation frequency across the genome, which is strongly correlated with DNA replication timing and also with transcriptional activity. By incorporating mutational heterogeneity into the analyses, MutSigCV is able to eliminate most of the apparent artefactual findings and allow true cancer genes to rise to attention.

  • Publication

    Reduced local mutation density in regulatory DNA of cancer genomes is linked to DNA repair

    (2014) Polak, Paz; Lawrence, Michael S.; Haugen, Eric; Stoletzki, Nina; Stojanov, Petar; Thurman, Robert E; Garraway, Levi; Mirkin, Sergei; Getz, Gad; Stamatoyannopoulos, John A.; Sunyaev, Shamil

    Carcinogenesis and neoplastic progression are mediated by the accumulation of somatic mutations. Here we report that the local density of somatic mutations in cancer genomes is highly reduced specifically in accessible regulatory DNA defined by DNase I hypersensitive sites. This reduction is independent of any known factors influencing somatic mutation density and is observed in diverse cancer types, suggesting a general mechanism. By analyzing individual cancer genomes1, we show that the reduced local mutation density within regulatory DNA is linked to intact global genome repair machinery, with nearly complete abrogation of the hypomutation phenomenon in individual cancers that possess mutations in multiple nucleotide excision repair components. Together, our results connect chromatin structure, gene regulation and cancer-associated somatic mutation.

  • Publication

    Discovery and saturation analysis of cancer genes across 21 tumor types

    (2014) Lawrence, Michael S.; Stojanov, Petar; Mermel, Craig; Garraway, Levi; Golub, Todd; Meyerson, Matthew; Gabriel, Stacey B.; Lander, Eric; Getz, Gad

    Summary While a few cancer genes are mutated in a high proportion of tumors of a given type (>20%), most are mutated at intermediate frequencies (2–20%). To explore the feasibility of creating a comprehensive catalog of cancer genes, we analyzed somatic point mutations in exome sequence from 4,742 tumor-normal pairs across 21 cancer types. We found that large-scale genomic analysis can identify nearly all known cancer genes in these tumor types. Our analysis also identified 33 genes not previously known to be significantly mutated, including genes related to proliferation, apoptosis, genome stability, chromatin regulation, immune evasion, RNA processing and protein homeostasis. Down-sampling analysis indicates that larger sample sizes will reveal many more genes, mutated at clinically important frequencies. We estimate that near-saturation may be achieved with 600–5000 samples per tumor type, depending on background mutation rate. The results help guide the next stage of cancer genomics.

  • Publication

    Long-term Benefit of PD-L1 Blockade in Lung Cancer Associated with JAK3 Activation

    (American Association for Cancer Research (AACR), 2015) Van Allen, Eliezer; Golay, H. G.; Liu, Yan; Koyama, S.; Wong, Kwok-Kin; Taylor-Weiner, Amaro; Giannakis, Marios; Harden, M.; Rojas-Rudilla, V.; Chevalier, A.; Thai, T.; Lydon, C.; Mach, S.; Wong, J. A.; Rabin, A. R.; Helmkamp, J.; Sholl, Lynette; Carter, Scott; Oxnard, Geoffrey; Janne, Pasi; Getz, Gad; Lindeman, Neal; Hammerman, Peter S.; Garraway, Levi; Hodi, Frank; Rodig, Scott; Dranoff, Glenn; Barbie, David

    PD-1 immune checkpoint blockade occasionally results in durable clinical responses in advanced metastatic cancers. However, mechanism-based predictors of response to this immunotherapy remain incompletely characterized. We performed comprehensive genomic profiling on a tumor and germline sample from a patient with refractory lung adenocarcinoma who achieved marked long-term clinical benefit from anti-PD-L1 therapy. We discovered activating somatic and germline amino acid variants in JAK3 that promoted PD-L1 induction in lung cancer cells and in the tumor immune microenvironment. These findings suggest that genomic alterations that deregulate cytokine receptor signal transduction could contribute to PD-L1 activation and engagement of the PD-1 immune checkpoint in lung cancer.

  • Publication

    Systematic genomic and translational efficiency studies of uveal melanoma

    (Public Library of Science, 2017) Johnson, Chelsea Place; Kim, Ivana; Esmaeli, Bita; Amin-Mansour, Ali; Treacy, Daniel J.; Carter, Scott; Hodis, Eran; Wagle, Nikhil; Seepo, Sara; Yu, Xiaoxing; Lane, Anne Marie; Gragoudas, Evangelos; Vazquez, Francisca; Nickerson, Elizabeth; Cibulskis, Kristian; McKenna, Aaron; Gabriel, Stacey B.; Getz, Gad; Van Allen, Eliezer; ‘t Hoen, Peter A. C.; Garraway, Levi; Woodman, Scott E.

    To further our understanding of the somatic genetic basis of uveal melanoma, we sequenced the protein-coding regions of 52 primary tumors and 3 liver metastases together with paired normal DNA. Known recurrent mutations were identified in GNAQ, GNA11, BAP1, EIF1AX, and SF3B1. The role of mutated EIF1AX was tested using loss of function approaches including viability and translational efficiency assays. Knockdown of both wild type and mutant EIF1AX was lethal to uveal melanoma cells. We probed the function of N-terminal tail EIF1AX mutations by performing RNA sequencing of polysome-associated transcripts in cells expressing endogenous wild type or mutant EIF1AX. Ribosome occupancy of the global translational apparatus was sensitive to suppression of wild type but not mutant EIF1AX. Together, these studies suggest that cells expressing mutant EIF1AX may exhibit aberrant translational regulation, which may provide clonal selective advantage in the subset of uveal melanoma that harbors this mutation.

  • Publication

    Scalable whole-exome sequencing of cell-free DNA reveals high concordance with metastatic tumors

    (Nature Publishing Group UK, 2017) Adalsteinsson, Viktor A.; Ha, Gavin; Freeman, Sam; Choudhury, Atish D.; Stover, Daniel G.; Parsons, Heather; Gydush, Gregory; Reed, Sarah C.; Rotem, Denisse; Rhoades, Justin; Loginov, Denis; Livitz, Dimitri; Rosebrock, Daniel; Leshchiner, Ignaty; Kim, Jaegil; Stewart, Chip; Rosenberg, Mara; Francis, Joshua M.; Zhang, Cheng-Zhong; Cohen, Ofir; Oh, Coyin; Ding, Huiming; Polak, Paz; Lloyd, Max; Mahmud, Sairah; Helvie, Karla; Merrill, Margaret S.; Santiago, Rebecca A.; O’Connor, Edward P.; Jeong, Seong H.; Leeson, Rachel; Barry, Rachel M.; Kramkowski, Joseph F.; Zhang, Zhenwei; Polacek, Laura; Lohr, Jens; Schleicher, Molly; Lipscomb, Emily; Saltzman, Andrea; Oliver, Nelly M.; Marini, Lori; Waks, Adrienne; Harshman, Lauren C.; Tolaney, Sara M.; Van Allen, Eliezer; Winer, Eric P.; Lin, Nancy U.; Nakabayashi, Mari; Taplin, Mary-Ellen; Johannessen, Cory M.; Garraway, Levi; Golub, Todd; Boehm, Jesse S.; Wagle, Nikhil; Getz, Gad; Love, J. Christopher; Meyerson, Matthew

    Whole-exome sequencing of cell-free DNA (cfDNA) could enable comprehensive profiling of tumors from blood but the genome-wide concordance between cfDNA and tumor biopsies is uncertain. Here we report ichorCNA, software that quantifies tumor content in cfDNA from 0.1× coverage whole-genome sequencing data without prior knowledge of tumor mutations. We apply ichorCNA to 1439 blood samples from 520 patients with metastatic prostate or breast cancers. In the earliest tested sample for each patient, 34% of patients have ≥10% tumor-derived cfDNA, sufficient for standard coverage whole-exome sequencing. Using whole-exome sequencing, we validate the concordance of clonal somatic mutations (88%), copy number alterations (80%), mutational signatures, and neoantigens between cfDNA and matched tumor biopsies from 41 patients with ≥10% cfDNA tumor content. In summary, we provide methods to identify patients eligible for comprehensive cfDNA profiling, revealing its applicability to many patients, and demonstrate high concordance of cfDNA and metastatic tumor whole-exome sequencing.

  • Publication

    Mutational patterns in chemotherapy resistant muscle-invasive bladder cancer

    (Nature Publishing Group UK, 2017) Liu, David; Abbosh, Philip; Keliher, Daniel; Reardon, Brendan; Miao, Diana; Mouw, Kent; Weiner-Taylor, Amaro; Wankowicz, Stephanie; Han, Garam; Teo, Min Yuen; Cipolla, Catharine; Kim, Jaegil; Iyer, Gopa; Al-Ahmadie, Hikmat; Dulaimi, Essel; Chen, David Y. T.; Alpaugh, R. Katherine; Hoffman-Censits, Jean; Garraway, Levi; Getz, Gad; Carter, Scott; Bellmunt, Joaquim; Plimack, Elizabeth R.; Rosenberg, Jonathan E.; Van Allen, Eliezer

    Despite continued widespread use, the genomic effects of cisplatin-based chemotherapy and implications for subsequent treatment are incompletely characterized. Here, we analyze whole exome sequencing of matched pre- and post-neoadjuvant cisplatin-based chemotherapy primary bladder tumor samples from 30 muscle-invasive bladder cancer patients. We observe no overall increase in tumor mutational burden post-chemotherapy, though a significant proportion of subclonal mutations are unique to the matched pre- or post-treatment tumor, suggesting chemotherapy-induced and/or spatial heterogeneity. We subsequently identify and validate a novel mutational signature in post-treatment tumors consistent with known characteristics of cisplatin damage and repair. We find that post-treatment tumor heterogeneity predicts worse overall survival, and further observe alterations in cell-cycle and immune checkpoint regulation genes in post-treatment tumors. These results provide insight into the clinical and genomic dynamics of tumor evolution with cisplatin-based chemotherapy, suggest mechanisms of clinical resistance, and inform development of clinically relevant biomarkers and trials of combination therapies.