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Bronson, Roderick

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Bronson

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Roderick

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Bronson, Roderick

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Now showing 1 - 2 of 2
  • Publication

    Rapid modeling of cooperating genetic events in cancer through somatic genome editing

    (2014) Sánchez-Rivera, Francisco J.; Papagiannakopoulos, Thales; Romero, Rodrigo; Tammela, Tuomas; Bauer, Matthew R.; Bhutkar, Arjun; Joshi, Nikhil S.; Subbaraj, Lakshmipriya; Bronson, Roderick; Xue, Wen; Jacks, Tyler

    Cancer is a multistep process that involves mutations and other alterations in oncogenes and tumor suppressor genes1. Genome sequencing studies have identified a large collection of genetic alterations that occur in human cancers2–4. However, the determination of which mutations are causally related to tumorigenesis remains a major challenge. Here we describe a novel CRISPR/Cas9-based approach for rapid functional investigation of candidate genes in well-established autochthonous mouse models of cancer. Using a KrasG12D-driven lung cancer model5, we performed functional characterization of a panel of tumor suppressor genes with known loss-of-function alterations in human lung cancer. Cre-dependent somatic activation of oncogenic KrasG12D combined with CRISPR/Cas9-mediated genome editing of tumor suppressor genes resulted in lung adenocarcinomas with distinct histopathological and molecular features. This rapid somatic genome engineering approach enables functional characterization of putative cancer genes in the lung and other tissues using autochthonous mouse models. We anticipate that this approach can be used to systematically dissect the complex catalog of mutations identified in cancer genome sequencing studies.

  • Publication

    Keap1 loss promotes Kras-driven lung cancer and results in a dependence on glutaminolysis

    (2017) Romero, Rodrigo; Sayin, Volkan I.; Davidson, Shawn M.; Bauer, Matthew R.; Singh, Simranjit X.; LeBoeuf, Sarah E.; Karakousi, Triantafyllia R.; Ellis, Donald C.; Bhutkar, Arjun; Sanchez-Rivera, Francisco J.; Subbaraj, Lakshmipriya; Martinez, Britney; Bronson, Roderick; Prigge, Justin R.; Schmidt, Edward E.; Thomas, Craig J.; Goparaju, Chandra; Davies, Angela; Dolgalev, Igor; Heguy, Adriana; Allaj, Viola; Poirier, John T.; Moreira, Andre L.; Rudin, Charles M.; Pass, Harvey I.; Vander Heiden, Matthew G.; Jacks, Tyler; Papagiannakopoulos, Thales

    Treating KRAS-mutant lung adenocarcinoma (LUAD) remains a major challenge in cancer treatment given the difficulties associated with directly inhibiting the KRAS oncoprotein1. One approach to addressing this challenge is to define frequently co-occurring mutations with KRAS, which themselves may lead to therapeutic vulnerabilities in tumors. Approximately 20% of KRAS-mutant LUAD tumors carry loss-of-function (LOF) mutations in Kelch-like ECH-associated protein 1 (KEAP1)2-4, a negative regulator of nuclear factor erythroid 2-like 2 (NFE2L2; hereafter NRF2), which is the master transcriptional regulator of the endogenous antioxidant response5-10. The high frequency of mutations in KEAP1 suggests an important role for the oxidative stress response in lung tumorigenesis. Using a CRISPR/Cas9-based approach in a mouse model of Kras-driven LUAD we examined the effects of Keap1 loss in lung cancer progression. We show that loss of Keap1 hyper-activates Nrf2 and promotes Kras-driven LUAD. Combining CRISPR/Cas9-based genetic screening and metabolomic analyses, we show that Keap1/Nrf2-mutant cancers are dependent on increased glutaminolysis, and this property can be therapeutically exploited through the pharmacological inhibition of glutaminase. Finally, we provide a rationale for sub-stratification of human lung cancer patients with KRAS-KEAP1 or -NRF2-mutant tumors as likely to respond to glutaminase inhibition.