GO analysis of proteins with at least a 1.5-fold increase in expression in the presence of AG-636 compared to DMSO
Agents targeting metabolic pathways form the backbone of standard oncology treatments, though a better understanding of differential metabolic dependencies could instruct more rationale-based therapeutic approaches. We performed a chemical biology screen that revealed a strong enrichment in sensitivity to a novel dihydroorotate dehydrogenase (DHODH) inhibitor, AG-636, in cancer cell lines of hematologic versus solid tumor origin. Differential AG-636 activity translated to the in vivo setting, with complete tumor regression observed in a lymphoma model. Dissection of the relationship between uridine availability and response to AG-636 revealed a divergent ability of lymphoma and solid tumor cell lines to survive and grow in the setting of depleted extracellular uridine and DHODH inhibition. Metabolic characterization paired with unbiased functional genomic and proteomic screens pointed to adaptive mechanisms to cope with nucleotide stress as contributing to response to AG-636. These findings support targeting of DHODH in lymphoma and other hematologic malignancies and suggest combination strategies aimed at interfering with DNA-damage response pathways.
Rapidly proliferating cells reprogram metabolism to support increased biosynthetic demands, a feature that can expose targetable vulnerabilities for therapeutic intervention. A chemical biology screen was performed in an effort to identify metabolic vulnerabilities in particular tumor subtypes, and revealed potent and selective activity of a novel dihydroorotate dehydrogenase (DHODH) inhibitor, AG-636, in cancer cell lines of hematologic origin. In contrast, cancer cell lines of solid tumor origin exhibited comparatively poor sensitivity. Evaluation of a lymphoma cell line panel demonstrated broad responsiveness to DHODH inhibition, independent of clinical subtype (e.g. ABC, GCB, double-hit). The on-target cellular activity of AG-636 was evaluated by examining the metabolic effects of AG-636 on cells and by evaluating the ability of extracellular uridine to rescue the effects of AG-636 on proliferation and viability. The metabolic changes incurred upon treatment of cells with AG-636 were consistent with a mechanism of action driven by inhibition of DHODH and de novo pyrimidine biosynthesis. Supraphysiologic concentrations of extracellular uridine rescued the effects of AG-636 on growth and viability as well as the effects on metabolism, further confirming on-target activity. The mechanistic basis for differential sensitivity to AG-636 was assessed by comparing the activity of the de novo pyrimidine biosynthesis and uridine salvage pathways in cancer cell lines of hematologic or solid tumor origin with similar proliferative rates. Differential response to AG-636 could not be attributed to varying abilities to utilize the de novo pyrimidine biosynthesis pathway or to salvage extracellular uridine. Real-time imaging of cells treated with AG-636, along with monitoring of extracellular uridine concentrations, demonstrated immediate effects on the viability of lymphoma cell lines in the setting of depleted extracellular uridine. In contrast, solid tumor cell lines were able to maintain growth for an additional period of time, suggestive of adaptive mechanisms to supply pyrimidine pools and/or to cope with nucleotide stress. The high in vitro activity of AG-636 in cancer cells of hematologic origin translated to xenograft models, including an aggressive, patient-derived xenograft model of triple-hit lymphoma and an ibrutinib-resistant model of mantle cell lymphoma in which complete tumor regression occurred. These studies support the development of AG-636 for the treatment of hematologic malignancies. A phase 1 study has been initiated in patients with relapsed/refractory lymphoma (NCT03834584). Ulanet: Agios: Employment, Equity Ownership. Chubukov:Agios: Employment, Equity Ownership. Coco:Agios: Employment, Equity Ownership. McDonald:Agios: Employment, Equity Ownership. Steadman:Agios: Employment, Equity Ownership. Narayanaswamy:Agios: Employment, Equity Ownership. Ronseaux:Agios: Employment, Equity Ownership. Choe:Agios: Employment, Equity Ownership. Truskowski:Agios: Employment, Equity Ownership. Nellore:Aurigene Discovery Technologies: Employment. Rao:Firmus Laboratories: Employment, Equity Ownership. Lenz:Janssen: Consultancy, Honoraria, Research Funding, Speakers Bureau; Agios: Research Funding; Celgene: Consultancy, Honoraria, Research Funding, Speakers Bureau; Gilead: Consultancy, Honoraria, Research Funding, Speakers Bureau; BMS: Consultancy; AstraZeneca: Consultancy, Honoraria, Research Funding; Bayer: Consultancy, Honoraria, Research Funding, Speakers Bureau; Roche: Employment, Honoraria, Research Funding, Speakers Bureau. Cooper:Agios: Employment, Equity Ownership. Murtie:Agios: Employment. Marks:Agios: Employment, Equity Ownership.
Although aberrant metabolism in tumors has been well described, the identification of cancer subsets with particular metabolic vulnerabilities has remained challenging. Here, we conducted an siRNA screen focusing on enzymes involved in the tricarboxylic acid (TCA) cycle and uncovered a striking range of cancer cell dependencies on OGDH, the E1 subunit of the alpha-ketoglutarate dehydrogenase complex. Using an integrative metabolomics approach, we identified differential aspartate utilization, via the malate-aspartate shuttle, as a predictor of whether OGDH is required for proliferation in 3D culture assays and for the growth of xenograft tumors. These findings highlight an anaplerotic role of aspartate and, more broadly, suggest that differential nutrient utilization patterns can identify subsets of cancers with distinct metabolic dependencies for potential pharmacological intervention.
Abstract Fatty acid synthase (FASN) is a key enzyme responsible for fatty acids synthesis de novo in mammals. Overexpression of FASN is common in many cancers including prostate, breast and colon cancer and elevated expression of FASN has been linked with poor prognosis and reduced disease-free survival. Experiments with RNAi and small molecule inhibitors suggest that FASN is a metabolic oncogene with an important role in tumor growth and survival and an appealing target for cancer therapy. However, studies utilizing small molecule FASN inhibitors like orlistat and C75 have been confounded by the lack of potency and selectivity, as well as the poor pharmacological properties of these inhibitors. Herein we report pharmacological target validation studies of FASN using a potent, selective and orally bioavailable FASN inhibitor IPI-9119. Building on previous experience with serine hydrolase inhibitors, a series of novel mechanism-based FASN inhibitors were designed based on a tetrazolone carboxamide scaffold. Like orlistat, these analogs are irreversible inhibitors that specifically target the FASN thioesterase domain. Tetrazolone carboxamide analogs were shown to potently inhibit cellular FASN using an occupancy assay and to completely block de novo palmitate synthesis in HCT-116 colon cancer cells using a 13C-glucose incorporation assay. Lead optimization of the tetrazolone carboxamide series resulted in the identification of IPI-9119 as a tool for in vivo proof-of-concept studies. IPI-9119 is a potent FASN inhibitor in both biochemical (IC50∼1nM) and cellular occupancy assays (IC50∼10nM), and shows more than 400-fold selectivity against several additional serine hydrolases. Importantly, IPI-9119 is orally bioavailable and has pharmacokinetic (PK) properties suitable for in vivo pharmacology studies. IPI-9119 was tested for growth inhibition in cancer cell lines in vitro and tumor xenograft models in vivo. Unexpectedly, in contrast to the knock-down studies and to data reported for orlistat and C75, IPI-9119 failed to elicit anti-proliferative effects in multiple cancer cell lines in vitro. Similarly, PK/PD experiments demonstrated that a single oral dose of IPI-9119 at 200 mg/kg leads to complete and sustained blockade of FASN in HCT-116 tumor xenografts, but IPI-9119 failed to show any anti-tumor activity when dosed as a single agent at 200 mg/kg BID for 10 days. In summary, we identified IPI-9119 as a potent, selective and orally bioavailable FASN inhibitor. Preliminary target validation studies with IPI-9119 in cancer cell lines and an HCT-116 xenograft model suggest that FASN inhibition alone is not sufficient to affect cancer cell proliferation and tumor growth. Further studies exploring combination treatments with IPI-9119 are warranted. Citation Format: Erin Brophy, James Conley, Patrick O'Hearn, Mark Douglas, Culver Cheung, John Coco, Laura D'Anello, Andrew Wylie, Thomas Tibbitts, Gregg Keaney, Lawrence Chan, Adilah Bahadoor, Dan Snyder, Marta Nevalainen, Alfredo Castro, Vito Palombella, Massimo Loda, Stephane Peluso. Pharmacological target validation studies of fatty acid synthase in carcinoma using the potent, selective and orally bioavailable inhibitor IPI-9119. [abstract]. In: Proceedings of the 104th Annual Meeting of the American Association for Cancer Research; 2013 Apr 6-10; Washington, DC. Philadelphia (PA): AACR; Cancer Res 2013;73(8 Suppl):Abstract nr 1891. doi:10.1158/1538-7445.AM2013-1891
Abstract Metastasis, or the spread of disseminated tumor cells to and colonization of distal sites, is a major cause of cancer mortality. The Hedgehog (Hh) signaling pathway is normally involved in embryogenesis; however recent evidence suggests a role for this pathway in cancer and metastasis. Thus, inhibitors of Hh signaling may have potential utility as novel targeted anti-tumor therapies. IPI-926 is a novel, selective, small molecule that antagonizes the Hh pathway by binding to the Smoothened receptor, the major upstream facilitator of Hh signal transduction, and is currently in phase 2 clinical trials for pancreatic cancer, chondrosarcoma and primary myelofibrosis. Administration of IPI-926 in combination with gemcitabine inhibits incidence of metastases in a KRAS/p53 transgenic model of pancreatic cancer (Olive et al., 2009), supporting an integral role for the Hh pathway in this process. To further explore the activity of IPI-926 in the setting of metastasis, we developed an experimental model of pancreatic cancer liver metastasis where luciferase-tagged tumor cells were implanted in the liver via an intra-splenic injection, followed by splenectomy, resulting in liver metastases. Tumor burden, as assessed by bioluminescence and survival were employed to evaluate IPI-926 activity utilizing different dosing regimens. While treatment of tumor-bearing animals with established disease provided no survival benefit, IPI-926 administered on the day of cell implant provided modest but reproducible increase in survival. However, prophylactic administration of IPI-926 beginning 14 days (d) prior to cell implant resulted in a significant decrease in disease burden and enhanced survival. The activity was dependent on the schedule of IPI-926 administration. Treatment initiated 14d prior to cell implant was more effective than 7d before cell implant, and treatment started only 2d prior to cell implantation showed no difference compared to treatment initiated on the day of cell implant. Histological analysis of pre-treated vs control livers confirmed decreased metastatic nodule formation. In addition, analysis of serum harvested from IPI-926 14d pre-treated vs control animals showed down-regulation of components of the VEGF, PDGF and MMP pathways, suggesting that IPI-926 modulation of these pathways may be involved in the observed effects on metastatic spread. The activity of IPI-926 was also evaluated in the setting of sunitinib enhancement of metastases (Ebos et al., 2010) in the above model. As has been shown previously, short, high-dose sunitinib administration resulted in striking increases in disease burden and shortening of survival compared to control animals. However, when IPI-926 was administered 14d prior to cell implant and sunitinib treatment, disease burden and survival were returned to the levels observed in the control group. In summary, IPI-926 administration delays metastasis in an experimental model of pancreatic liver metastasis and in response to high-dose anti-angiogenic therapy. These results provide rationale for the evaluation of IPI-926 as adjuvant/neoadjuvant therapy to help control metastatic spread post surgical resection in pancreatic cancer. Citation Format: {Authors}. {Abstract title} [abstract]. In: Proceedings of the AACR-NCI-EORTC International Conference: Molecular Targets and Cancer Therapeutics; 2011 Nov 12-16; San Francisco, CA. Philadelphia (PA): AACR; Mol Cancer Ther 2011;10(11 Suppl):Abstract nr B145.
Several Hsp90 (heat shock protein 90) inhibitors are currently under clinical evaluation as anticancer agents. However, the correlation between the duration and magnitude of Hsp90 inhibition and the downstream effects on client protein degradation and cancer cell growth inhibition has not been thoroughly investigated. To investigate the relationship between Hsp90 inhibition and cellular effects, we developed a method that measures drug occupancy on Hsp90 after treatment with the Hsp90 inhibitor IPI-504 in living cells and in tumor xenografts. In cells, we find the level of Hsp90 occupancy to be directly correlated with cell growth inhibition. At the molecular level, the relationship between Hsp90 occupancy and Hsp90 client protein degradation was examined for different client proteins. For sensitive Hsp90 clients (e.g. HER2 (human epidermal growth factor receptor 2), client protein levels directly mirror Hsp90 occupancy at all time points after IPI-504 administration. For insensitive client proteins, we find that protein abundance matches Hsp90 occupancy only after prolonged incubation with drug. Additionally, we investigate the correlation between plasma pharmacokinetics (PK), tumor PK, pharmacodynamics (PD) (client protein degradation), tumor growth inhibition, and Hsp90 occupancy in a xenograft model of human cancer. Our results indicate Hsp90 occupancy to be a better predictor of PD than either plasma PK or tumor PK. In the nonsmall cell lung cancer xenograft model studied, a linear correlation between Hsp90 occupancy and tumor growth inhibition was found. This novel binding assay was evaluated both in vitro and in vivo and could be used as a pharmacodynamic readout in the clinic.