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Dive into the research topics where William C. Hahn is active.

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Featured researches published by William C. Hahn.


Nature | 1999

Creation of Human Tumour Cells with Defined Genetic Elements

William C. Hahn; Christopher M. Counter; Ante S. Lundberg; Roderick L. Beijersbergen; Mary W. Brooks; Robert A. Weinberg

During malignant transformation, cancer cells acquire genetic mutations that override the normal mechanisms controlling cellular proliferation. Primary rodent cells are efficiently converted into tumorigenic cells by the coexpression of cooperating oncogenes,. However, similar experiments with human cells have consistently failed to yield tumorigenic transformants, indicating a fundamental difference in the biology of human and rodent cells. The few reported successes in the creation of human tumour cells have depended on the use of chemical or physical agents to achieve immortalization, the selection of rare, spontaneously arising immortalized cells, or the use of an entire viral genome. We show here that the ectopic expression of the telomerase catalytic subunit (hTERT) in combination with two oncogenes (the simian virus 40 large-T oncoprotein and an oncogenic allele of H-ras) results in direct tumorigenic conversion of normal human epithelial and fibroblast cells. These results demonstrate that disruption of the intracellular pathways regulated by large-T, oncogenic ras and telomerase suffices to create a human tumor cell.


Cell | 2011

BET Bromodomain Inhibition as a Therapeutic Strategy to Target c-Myc

Jake Delmore; Ghayas C Issa; Madeleine E. Lemieux; Peter B. Rahl; Junwei Shi; Hannah M. Jacobs; Efstathios Kastritis; Timothy Gilpatrick; Ronald M. Paranal; Jun Qi; Marta Chesi; Anna C. Schinzel; Michael R. McKeown; Timothy P. Heffernan; Christopher R. Vakoc; P. Leif Bergsagel; Irene M. Ghobrial; Paul G. Richardson; Richard A. Young; William C. Hahn; Kenneth C. Anderson; Andrew L. Kung; James E. Bradner; Constantine S. Mitsiades

MYC contributes to the pathogenesis of a majority of human cancers, yet strategies to modulate the function of the c-Myc oncoprotein do not exist. Toward this objective, we have targeted MYC transcription by interfering with chromatin-dependent signal transduction to RNA polymerase, specifically by inhibiting the acetyl-lysine recognition domains (bromodomains) of putative coactivator proteins implicated in transcriptional initiation and elongation. Using a selective small-molecule bromodomain inhibitor, JQ1, we identify BET bromodomain proteins as regulatory factors for c-Myc. BET inhibition by JQ1 downregulates MYC transcription, followed by genome-wide downregulation of Myc-dependent target genes. In experimental models of multiple myeloma, a Myc-dependent hematologic malignancy, JQ1 produces a potent antiproliferative effect associated with cell-cycle arrest and cellular senescence. Efficacy of JQ1 in three murine models of multiple myeloma establishes the therapeutic rationale for BET bromodomain inhibition in this disease and other malignancies characterized by pathologic activation of c-Myc.


Cell | 2006

A Lentiviral RNAi Library for Human and Mouse Genes Applied to an Arrayed Viral High-Content Screen

Jason Moffat; Dorre A. Grueneberg; Xiaoping Yang; So Young Kim; Angela M. Kloepfer; Gregory Hinkle; Bruno Piqani; Thomas Eisenhaure; Biao Luo; Jennifer K. Grenier; Anne E. Carpenter; Shi Yin Foo; Sheila A. Stewart; Brent R. Stockwell; Nir Hacohen; William C. Hahn; Eric S. Lander; David M. Sabatini; David E. Root

To enable arrayed or pooled loss-of-function screens in a wide range of mammalian cell types, including primary and nondividing cells, we are developing lentiviral short hairpin RNA (shRNA) libraries targeting the human and murine genomes. The libraries currently contain 104,000 vectors, targeting each of 22,000 human and mouse genes with multiple sequence-verified constructs. To test the utility of the library for arrayed screens, we developed a screen based on high-content imaging to identify genes required for mitotic progression in human cancer cells and applied it to an arrayed set of 5,000 unique shRNA-expressing lentiviruses that target 1,028 human genes. The screen identified several known and approximately 100 candidate regulators of mitotic progression and proliferation; the availability of multiple shRNAs targeting the same gene facilitated functional validation of putative hits. This work provides a widely applicable resource for loss-of-function screens, as well as a roadmap for its application to biological discovery.


Nature | 2010

COT drives resistance to RAF inhibition through MAP kinase pathway reactivation

Cory M. Johannessen; Jesse S. Boehm; So Young Kim; Sapana Thomas; Leslie Wardwell; Laura A. Johnson; Caroline Emery; Nicolas Stransky; Alexandria P. Cogdill; Jordi Barretina; Giordano Caponigro; Haley Hieronymus; Ryan R. Murray; Kourosh Salehi-Ashtiani; David E. Hill; Marc Vidal; Jean Zhao; Xiaoping Yang; Ozan Alkan; Sungjoon Kim; Jennifer L. Harris; Christopher J. Wilson; Vic E. Myer; Peter Finan; David E. Root; Thomas M. Roberts; Todd R. Golub; Keith T. Flaherty; Reinhard Dummer; Barbara Weber

Oncogenic mutations in the serine/threonine kinase B-RAF (also known as BRAF) are found in 50–70% of malignant melanomas. Pre-clinical studies have demonstrated that the B-RAF(V600E) mutation predicts a dependency on the mitogen-activated protein kinase (MAPK) signalling cascade in melanoma—an observation that has been validated by the success of RAF and MEK inhibitors in clinical trials. However, clinical responses to targeted anticancer therapeutics are frequently confounded by de novo or acquired resistance. Identification of resistance mechanisms in a manner that elucidates alternative ‘druggable’ targets may inform effective long-term treatment strategies. Here we expressed ∼600 kinase and kinase-related open reading frames (ORFs) in parallel to interrogate resistance to a selective RAF kinase inhibitor. We identified MAP3K8 (the gene encoding COT/Tpl2) as a MAPK pathway agonist that drives resistance to RAF inhibition in B-RAF(V600E) cell lines. COT activates ERK primarily through MEK-dependent mechanisms that do not require RAF signalling. Moreover, COT expression is associated with de novo resistance in B-RAF(V600E) cultured cell lines and acquired resistance in melanoma cells and tissue obtained from relapsing patients following treatment with MEK or RAF inhibitors. We further identify combinatorial MAPK pathway inhibition or targeting of COT kinase activity as possible therapeutic strategies for reducing MAPK pathway activation in this setting. Together, these results provide new insights into resistance mechanisms involving the MAPK pathway and articulate an integrative approach through which high-throughput functional screens may inform the development of novel therapeutic strategies.


Nature | 2006

Transformation from committed progenitor to leukaemia stem cell initiated by MLL–AF9

Andrei V. Krivtsov; David Twomey; Zhaohui Feng; Matthew C. Stubbs; Yingzi Wang; Joerg Faber; Jason E. Levine; Jing Wang; William C. Hahn; D. Gary Gilliland; Todd R. Golub; Scott A. Armstrong

Leukaemias and other cancers possess a rare population of cells capable of the limitless self-renewal necessary for cancer initiation and maintenance. Eradication of these cancer stem cells is probably a critical part of any successful anti-cancer therapy, and may explain why conventional cancer therapies are often effective in reducing tumour burden, but are only rarely curative. Given that both normal and cancer stem cells are capable of self-renewal, the extent to which cancer stem cells resemble normal tissue stem cells is a critical issue if targeted therapies are to be developed. However, it remains unclear whether cancer stem cells must be phenotypically similar to normal tissue stem cells or whether they can retain the identity of committed progenitors. Here we show that leukaemia stem cells (LSC) can maintain the global identity of the progenitor from which they arose while activating a limited stem-cell- or self-renewal-associated programme. We isolated LSC from leukaemias initiated in committed granulocyte macrophage progenitors through introduction of the MLL–AF9 fusion protein encoded by the t(9;11)(p22;q23). The LSC were capable of transferring leukaemia to secondary recipient mice when only four cells were transferred, and possessed an immunophenotype and global gene expression profile very similar to that of normal granulocyte macrophage progenitors. However, a subset of genes highly expressed in normal haematopoietic stem cells was re-activated in LSC. LSC can thus be generated from committed progenitors without widespread reprogramming of gene expression, and a leukaemia self-renewal-associated signature is activated in the process. Our findings define progression from normal progenitor to cancer stem cell, and suggest that targeting a self-renewal programme expressed in an abnormal context may be possible.


Nature Medicine | 1999

Inhibition of telomerase limits the growth of human cancer cells

William C. Hahn; Sheila A. Stewart; Mary W. Brooks; Shoshana G. York; Elinor Ng Eaton; Akiko Kurachi; Roderick L. Beijersbergen; Joan H. M. Knoll; Matthew Meyerson; Robert A. Weinberg

Telomerase is a ribonucleoprotein enzyme that maintains the protective structures at the ends of eukaryotic chromosomes, called telomeres. In most human somatic cells, telomerase expression is repressed, and telomeres shorten progressively with each cell division. In contrast, most human tumors express telomerase, resulting in stabilized telomere length. These observations indicate that telomere maintenance is essential to the proliferation of tumor cells. We show here that expression of a mutant catalytic subunit of human telomerase results in complete inhibition of telomerase activity, reduction in telomere length and death of tumor cells. Moreover, expression of this mutant telomerase eliminated tumorigenicity in vivo. These observations demonstrate that disruption of telomere maintenance limits cellular lifespan in human cancer cells, thus validating human telomerase reverse transcriptase as an important target for the development of anti-neoplastic therapies.


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.


Nature Reviews Cancer | 2002

Modelling the molecular circuitry of cancer

William C. Hahn; Robert A. Weinberg

Cancer arises from a stepwise accumulation of genetic changes that liberates neoplastic cells from the homeostatic mechanisms that govern normal cell proliferation. In humans, at least four to six mutations are required to reach this state, but fewer seem to be required in mice. By rationalizing the shared and unique elements of human and mouse models of cancer, we should be able to identify the molecular circuits that function differently in humans and mice, and use this knowledge to improve existing models of cancer.


Nature | 2009

Systematic RNA interference reveals that oncogenic KRAS -driven cancers require TBK1

David A. Barbie; Pablo Tamayo; Jesse S. Boehm; So Young Kim; Susan E. Moody; Ian F. Dunn; Anna C. Schinzel; Peter Sandy; Etienne Meylan; Claudia Scholl; Stefan Fröhling; Edmond M. Chan; Martin L. Sos; Kathrin Michel; Craig H. Mermel; Serena J. Silver; Barbara A. Weir; Jan H. Reiling; Qing Sheng; Piyush B. Gupta; Raymond C. Wadlow; Hanh Le; Ben S. Wittner; Sridhar Ramaswamy; David M. Livingston; David M. Sabatini; Matthew Meyerson; Roman K. Thomas; Eric S. Lander; Jill P. Mesirov

The proto-oncogene KRAS is mutated in a wide array of human cancers, most of which are aggressive and respond poorly to standard therapies. Although the identification of specific oncogenes has led to the development of clinically effective, molecularly targeted therapies in some cases, KRAS has remained refractory to this approach. A complementary strategy for targeting KRAS is to identify gene products that, when inhibited, result in cell death only in the presence of an oncogenic allele. Here we have used systematic RNA interference to detect synthetic lethal partners of oncogenic KRAS and found that the non-canonical IκB kinase TBK1 was selectively essential in cells that contain mutant KRAS. Suppression of TBK1 induced apoptosis specifically in human cancer cell lines that depend on oncogenic KRAS expression. In these cells, TBK1 activated NF-κB anti-apoptotic signals involving c-Rel and BCL-XL (also known as BCL2L1) that were essential for survival, providing mechanistic insights into this synthetic lethal interaction. These observations indicate that TBK1 and NF-κB signalling are essential in KRAS mutant tumours, and establish a general approach for the rational identification of co-dependent pathways in cancer.


Journal of Clinical Oncology | 2011

Dissecting Therapeutic Resistance to RAF Inhibition in Melanoma by Tumor Genomic Profiling

Nikhil Wagle; Caroline Emery; Michael F. Berger; Matthew J. Davis; Allison M. Sawyer; Panisa Pochanard; Sarah M. Kehoe; Cory M. Johannessen; Laura E. MacConaill; William C. Hahn; Matthew Meyerson; Levi A. Garraway

A detailed understanding of the mechanisms by which tumors acquire resistance to targeted anticancer agents should speed the development of treatment strategies with lasting clinical efficacy. RAF inhibition in BRAF-mutant melanoma exemplifies the promise and challenge of many targeted drugs; although response rates are high, resistance invariably develops. Here, we articulate overarching principles of resistance to kinase inhibitors, as well as a translational approach to characterize resistance in the clinical setting through tumor mutation profiling. As a proof of principle, we performed targeted, massively parallel sequencing of 138 cancer genes in a tumor obtained from a patient with melanoma who developed resistance to PLX4032 after an initial dramatic response. The resulting profile identified an activating mutation at codon 121 in the downstream kinase MEK1 that was absent in the corresponding pretreatment tumor. The MEK1(C121S) mutation was shown to increase kinase activity and confer robust resistance to both RAF and MEK inhibition in vitro. Thus, MEK1(C121S) or functionally similar mutations are predicted to confer resistance to combined MEK/RAF inhibition. These results provide an instructive framework for assessing mechanisms of acquired resistance to kinase inhibition and illustrate the use of emerging technologies in a manner that may accelerate personalized cancer medicine.

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David E. Root

Massachusetts Institute of Technology

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