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Dive into the research topics where Ted Liefeld is active.

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Featured researches published by Ted Liefeld.


Nature | 2012

The Cancer Cell Line Encyclopedia enables predictive modelling of anticancer drug sensitivity.

Jordi Barretina; Giordano Caponigro; Nicolas Stransky; Kavitha Venkatesan; Adam A. Margolin; Sungjoon Kim; Christopher J. Wilson; Joseph Lehar; Gregory V. Kryukov; Dmitriy Sonkin; Anupama Reddy; Manway Liu; Lauren Murray; Michael F. Berger; John E. Monahan; Paula Morais; Jodi Meltzer; Adam Korejwa; Judit Jané-Valbuena; Felipa A. Mapa; Joseph Thibault; Eva Bric-Furlong; Pichai Raman; Aaron Shipway; Ingo H. Engels; Jill Cheng; Guoying K. Yu; Jianjun Yu; Peter Aspesi; Melanie de Silva

The systematic translation of cancer genomic data into knowledge of tumour biology and therapeutic possibilities remains challenging. Such efforts should be greatly aided by robust preclinical model systems that reflect the genomic diversity of human cancers and for which detailed genetic and pharmacological annotation is available. Here we describe the Cancer Cell Line Encyclopedia (CCLE): a compilation of gene expression, chromosomal copy number and massively parallel sequencing data from 947 human cancer cell lines. When coupled with pharmacological profiles for 24 anticancer drugs across 479 of the cell lines, this collection allowed identification of genetic, lineage, and gene-expression-based predictors of drug sensitivity. In addition to known predictors, we found that plasma cell lineage correlated with sensitivity to IGF1 receptor inhibitors; AHR expression was associated with MEK inhibitor efficacy in NRAS-mutant lines; and SLFN11 expression predicted sensitivity to topoisomerase inhibitors. Together, our results indicate that large, annotated cell-line collections may help to enable preclinical stratification schemata for anticancer agents. The generation of genetic predictions of drug response in the preclinical setting and their incorporation into cancer clinical trial design could speed the emergence of ‘personalized’ therapeutic regimens.


Nature | 2010

The landscape of somatic copy-number alteration across human cancers

Rameen Beroukhim; Craig H. Mermel; Dale Porter; Guo Wei; Soumya Raychaudhuri; Jerry Donovan; Jordi Barretina; Jesse S. Boehm; Jennifer Dobson; Mitsuyoshi Urashima; Kevin T. Mc Henry; Reid M. Pinchback; Azra H. Ligon; Yoon-Jae Cho; Leila Haery; Heidi Greulich; Michael R. Reich; Wendy Winckler; Michael S. Lawrence; Barbara A. Weir; Kumiko Tanaka; Derek Y. Chiang; Adam J. Bass; Alice Loo; Carter Hoffman; John R. Prensner; Ted Liefeld; Qing Gao; Derek Yecies; Sabina Signoretti

A powerful way to discover key genes with causal roles in oncogenesis is to identify genomic regions that undergo frequent alteration in human cancers. Here we present high-resolution analyses of somatic copy-number alterations (SCNAs) from 3,131 cancer specimens, belonging largely to 26 histological types. We identify 158 regions of focal SCNA that are altered at significant frequency across several cancer types, of which 122 cannot be explained by the presence of a known cancer target gene located within these regions. Several gene families are enriched among these regions of focal SCNA, including the BCL2 family of apoptosis regulators and the NF-κΒ pathway. We show that cancer cells containing amplifications surrounding the MCL1 and BCL2L1 anti-apoptotic genes depend on the expression of these genes for survival. Finally, we demonstrate that a large majority of SCNAs identified in individual cancer types are present in several cancer types.


Nature Genetics | 2006

GenePattern 2.0

Michael Reich; Ted Liefeld; Joshua Gould; Jim Lerner; Pablo Tamayo; Jill P. Mesirov

Stephen J Chapman1,2, Chiea C Khor1, Fredrik O Vannberg1, Nicholas A Maskell2, Christopher WH Davies3, Emma L Hedley2, Shelley Segal4, Catrin E Moore4, Kyle Knox5, Nicholas P Day6, Stephen H Gillespie7, Derrick W Crook5, Robert JO Davies2 & Adrian VS Hill1 1The Wellcome Trust Centre for Human Genetics, University of Oxford, Oxford OX3 7BN, UK. 2Oxford Centre for Respiratory Medicine, Churchill Hospital Site, Oxford Radcliffe Hospital, Oxford OX3 7LJ, UK. 3Department of Respiratory Medicine, Royal Berkshire Hospital, Reading RG1 5AN, UK. 4Department of Paediatrics, John Radcliffe Hospital, Oxford OX3 9DU, UK. 5Department of Microbiology, John Radcliffe Hospital, Oxford OX3 9DU, UK. 6Centre for Clinical Vaccinology and Tropical Medicine, Oxford OX3 9DU, UK. 7Centre for Medical Microbiology, Department of Infection, University College London, London NW1 2BU, UK. e-mail: [email protected]


Nature | 2011

Initial genome sequencing and analysis of multiple myeloma

Michael Chapman; Michael S. Lawrence; Jonathan J. Keats; Kristian Cibulskis; Carrie Sougnez; Anna C. Schinzel; Christina L. Harview; Jean Philippe Brunet; Gregory J. Ahmann; Mazhar Adli; Kenneth C. Anderson; Kristin Ardlie; Daniel Auclair; Angela Baker; P. Leif Bergsagel; Bradley E. Bernstein; Yotam Drier; Rafael Fonseca; Stacey B. Gabriel; Craig C. Hofmeister; Sundar Jagannath; Andrzej J. Jakubowiak; Amrita Krishnan; Joan Levy; Ted Liefeld; Sagar Lonial; Scott Mahan; Bunmi Mfuko; Stefano Monti; Louise M. Perkins

Multiple myeloma is an incurable malignancy of plasma cells, and its pathogenesis is poorly understood. Here we report the massively parallel sequencing of 38 tumour genomes and their comparison to matched normal DNAs. Several new and unexpected oncogenic mechanisms were suggested by the pattern of somatic mutation across the data set. These include the mutation of genes involved in protein translation (seen in nearly half of the patients), genes involved in histone methylation, and genes involved in blood coagulation. In addition, a broader than anticipated role of NF-κB signalling was indicated by mutations in 11 members of the NF-κB pathway. Of potential immediate clinical relevance, activating mutations of the kinase BRAF were observed in 4% of patients, suggesting the evaluation of BRAF inhibitors in multiple myeloma clinical trials. These results indicate that cancer genome sequencing of large collections of samples will yield new insights into cancer not anticipated by existing knowledge.


Cell | 2011

Densely Interconnected Transcriptional Circuits Control Cell States in Human Hematopoiesis

Noa Novershtern; Aravind Subramanian; Lee N. Lawton; Raymond H. Mak; W. Nicholas Haining; Marie McConkey; Naomi Habib; Nir Yosef; Cindy Y. Chang; Tal Shay; Garrett M. Frampton; Adam Drake; Ilya B. Leskov; Björn Nilsson; Fred Preffer; David Dombkowski; John W. Evans; Ted Liefeld; John S. Smutko; Jianzhu Chen; Nir Friedman; Richard A. Young; Todd R. Golub; Aviv Regev; Benjamin L. Ebert

Though many individual transcription factors are known to regulate hematopoietic differentiation, major aspects of the global architecture of hematopoiesis remain unknown. Here, we profiled gene expression in 38 distinct purified populations of human hematopoietic cells and used probabilistic models of gene expression and analysis of cis-elements in gene promoters to decipher the general organization of their regulatory circuitry. We identified modules of highly coexpressed genes, some of which are restricted to a single lineage but most of which are expressed at variable levels across multiple lineages. We found densely interconnected cis-regulatory circuits and a large number of transcription factors that are differentially expressed across hematopoietic states. These findings suggest a more complex regulatory system for hematopoiesis than previously assumed.


Cell | 2013

An Interactive Resource to Identify Cancer Genetic and Lineage Dependencies Targeted by Small Molecules

Amrita Basu; Nicole E. Bodycombe; Jaime H. Cheah; Edmund V. Price; Ke Liu; Giannina Ines Schaefer; Richard Yon Ebright; Michelle L. Stewart; Daisuke Ito; Stephanie Wang; Abigail L. Bracha; Ted Liefeld; Mathias J. Wawer; Joshua C. Gilbert; Andrew J. Wilson; Nicolas Stransky; Gregory V. Kryukov; Vlado Dančík; Jordi Barretina; Levi A. Garraway; C. Suk-Yee Hon; Benito Munoz; Joshua Bittker; Brent R. Stockwell; Dineo Khabele; Paul A. Clemons; Alykhan F. Shamji; Stuart L. Schreiber

The high rate of clinical response to protein-kinase-targeting drugs matched to cancer patients with specific genomic alterations has prompted efforts to use cancer cell line (CCL) profiling to identify additional biomarkers of small-molecule sensitivities. We have quantitatively measured the sensitivity of 242 genomically characterized CCLs to an Informer Set of 354 small molecules that target many nodes in cell circuitry, uncovering protein dependencies that: (1) associate with specific cancer-genomic alterations and (2) can be targeted by small molecules. We have created the Cancer Therapeutics Response Portal (http://www.broadinstitute.org/ctrp) to enable users to correlate genetic features to sensitivity in individual lineages and control for confounding factors of CCL profiling. We report a candidate dependency, associating activating mutations in the oncogene β-catenin with sensitivity to the Bcl-2 family antagonist, navitoclax. The resource can be used to develop novel therapeutic hypotheses and to accelerate discovery of drugs matched to patients by their cancer genotype and lineage.


Scientific Data | 2014

Parallel genome-scale loss of function screens in 216 cancer cell lines for the identification of context-specific genetic dependencies

Glenn S. Cowley; Barbara A. Weir; Francisca Vazquez; Pablo Tamayo; Justine A. Scott; Scott F. Rusin; Alexandra East-Seletsky; Levi D. Ali; William F.J. Gerath; Sarah E. Pantel; Patrick H. Lizotte; Guozhi Jiang; Jessica Hsiao; Aviad Tsherniak; Elizabeth Dwinell; Simon Aoyama; Michael Okamoto; William F. Harrington; Ellen Gelfand; Thomas M. Green; Mark J. Tomko; Shuba Gopal; Terrence C. Wong; Hubo Li; Sara Howell; Nicolas Stransky; Ted Liefeld; Dongkeun Jang; Jonathan Bistline; Barbara Hill Meyers

Using a genome-scale, lentivirally delivered shRNA library, we performed massively parallel pooled shRNA screens in 216 cancer cell lines to identify genes that are required for cell proliferation and/or viability. Cell line dependencies on 11,000 genes were interrogated by 5 shRNAs per gene. The proliferation effect of each shRNA in each cell line was assessed by transducing a population of 11M cells with one shRNA-virus per cell and determining the relative enrichment or depletion of each of the 54,000 shRNAs after 16 population doublings using Next Generation Sequencing. All the cell lines were screened using standardized conditions to best assess differential genetic dependencies across cell lines. When combined with genomic characterization of these cell lines, this dataset facilitates the linkage of genetic dependencies with specific cellular contexts (e.g., gene mutations or cell lineage). To enable such comparisons, we developed and provided a bioinformatics tool to identify linear and nonlinear correlations between these features.


Cancer Discovery | 2015

Harnessing Connectivity in a Large-Scale Small-Molecule Sensitivity Dataset

Brinton Seashore-Ludlow; Matthew G. Rees; Jaime H. Cheah; Murat Cokol; Edmund V. Price; Matthew E. Coletti; Victor Victor Jones; Nicole E. Bodycombe; Christian K. Soule; Joshua Gould; Benjamin Alexander; Ava Li; Philip Montgomery; Mathias J. Wawer; Nurdan Kuru; Joanne Kotz; C. Suk-Yee Hon; Benito Munoz; Ted Liefeld; Vlado Dančík; Joshua Bittker; Michelle Palmer; James E. Bradner; Alykhan F. Shamji; Paul A. Clemons; Stuart L. Schreiber

UNLABELLED Identifying genetic alterations that prime a cancer cell to respond to a particular therapeutic agent can facilitate the development of precision cancer medicines. Cancer cell-line (CCL) profiling of small-molecule sensitivity has emerged as an unbiased method to assess the relationships between genetic or cellular features of CCLs and small-molecule response. Here, we developed annotated cluster multidimensional enrichment analysis to explore the associations between groups of small molecules and groups of CCLs in a new, quantitative sensitivity dataset. This analysis reveals insights into small-molecule mechanisms of action, and genomic features that associate with CCL response to small-molecule treatment. We are able to recapitulate known relationships between FDA-approved therapies and cancer dependencies and to uncover new relationships, including for KRAS-mutant cancers and neuroblastoma. To enable the cancer community to explore these data, and to generate novel hypotheses, we created an updated version of the Cancer Therapeutic Response Portal (CTRP v2). SIGNIFICANCE We present the largest CCL sensitivity dataset yet available, and an analysis method integrating information from multiple CCLs and multiple small molecules to identify CCL response predictors robustly. We updated the CTRP to enable the cancer research community to leverage these data and analyses.


Nature Chemical Biology | 2016

Correlating chemical sensitivity and basal gene expression reveals mechanism of action

Matthew G. Rees; Brinton Seashore-Ludlow; Jaime H. Cheah; Drew J. Adams; Edmund Price; Shubhroz Gill; Sarah Javaid; Matthew E. Coletti; Victor Victor Jones; Nicole E Bodycombe; Christian K. Soule; Benjamin Alexander; Ava Li; Philip Montgomery; Joanne Kotz; C. Suk-Yee Hon; Benito Munoz; Ted Liefeld; Vlado Dančík; Daniel A. Haber; Clary B. Clish; Joshua Bittker; Michelle Palmer; Bridget K. Wagner; Paul A. Clemons; Alykhan F. Shamji; Stuart L. Schreiber

Changes in cellular gene expression in response to small-molecule or genetic perturbations have yielded signatures that can connect unknown mechanisms of action (MoA) to ones previously established. We hypothesized that differential basal gene expression could be correlated with patterns of small-molecule sensitivity across many cell lines to illuminate the actions of compounds whose MoA are unknown. To test this idea, we correlated the sensitivity patterns of 481 compounds with ~19,000 basal transcript levels across 823 different human cancer cell lines and identified selective outlier transcripts. This process yielded many novel mechanistic insights, including the identification of activation mechanisms, cellular transporters, and direct protein targets. We found that ML239, originally identified in a phenotypic screen for selective cytotoxicity in breast cancer stem-like cells, most likely acts through activation of fatty acid desaturase 2 (FADS2). These data and analytical tools are available to the research community through the Cancer Therapeutics Response Portal.


Bioinformatics | 2005

GeneCruiser: a web service for the annotation of microarray data

Ted Liefeld; Michael Reich; Joshua Gould; Peili Zhang; Pablo Tamayo; Jill P. Mesirov

SUMMARY GeneCruiser is a web service allowing users to annotate their genomic data by mapping microarray feature identifiers to gene identifiers from databases, such as UniGene, while providing links to web resources, such as the UCSC Genome Browser. It relies on a regularly updated database that retrieves and indexes the mappings between microarray probes and genomic databases. Genes are identified using the Life Sciences Identifier standard. AVAILABILITY GeneCruiser is freely available in the following forms: Web service and Web application, http://www.genecruiser.org; GenePattern, GeneCruiser access has been integrated into our microarray analysis platform, GenePattern. http://www.genepattern.org.

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Thorin Tabor

University of California

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