Submitted:
11 June 2026
Posted:
12 June 2026
You are already at the latest version
Abstract

Keywords:
1. Introduction
2. Glutaminase Is a Metabolic Target Against Cancer
3. Compound 968 Alone or in Combination Therapy
4. BPTES as an Effective GLS Inhibitor Against Cancer
5. CB-839 Is the Most Successful GLS Inhibitor in Cancer Therapy
6. DON Returns Like a Trojan Horse
7. Targeting GA in Clinical Trails
8. Future Perspectives
9. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| 5-FU | 5-fluorouracilo |
| ALL | Acute lymphoblastic leukemia |
| AML | Acute myeloid leukemia |
| ATP | Adenosine triphosphate |
| ccRCC | Clear cell renal cell carcinoma |
| CRC | Colorectal cancer |
| DBZ | Dibenzozepine |
| EGFR | Epidermal growth factor receptor |
| ERK | Extracellular signal-regulated kinase |
| GA | Glutaminase |
| GBM | Glioblastoma |
| Gln | Glutamine |
| Glu | Glutamate |
| GLS | Glutaminase isoenzyme 1 |
| GLS2 | Glutaminase isoenzyme 2 |
| GS | Glutamine synthetase |
| GSI | Gamma-secretase inhibitor |
| NQO1 | NAD(P)H quinone oxidoreductase 1 |
| NRF2 | Nuclear factor erythroid 2-related factor 2 |
| NSCLC | Non-small cell lung cancer |
| PD-1 | Programmed cell death protein 1 |
| PET | Positron emission tomography |
| PDO | Patient-derived organoids |
| PDX | Patient-derived xenografts |
| PD-1 | Programmed cell death protein 1 |
| PD-L1 | Programmed cell death ligand 1 |
| ROS | Reactive oxygen species |
| SCC | Squamous cell carcinoma |
| TCA | Tricarboxylic acid |
| TKI | Tyrosine kinase inhibitor |
| TME | Tumor microenvironment |
| TNBC | Triple negative breast cancer |
References
- Altman, B.J.; Stine, Z.E.; Dang, C.V. From Krebs to clinic: glutamine metabolism to cancer therapy. Nat. Rev. Cancer 2016, 16(10), 619–634. [Google Scholar] [CrossRef] [PubMed]
- Yang, L.; Venneti, S.; Nagrath, D. Glutaminolysis: A Hallmark of Cancer Metabolism. Annu Rev. BioMed Eng. 2017, 19, 163–194. [Google Scholar] [CrossRef] [PubMed]
- Coffey, G.L.; Ehrlich, J.; Fisher, M.W.; Hillegas, A.B.; Kohberger, D.L.; Machamer, H.E.; Rightsel, W.A.; Roerner, F.R. 6-Diazo-5-oxo-L-norleucine, a new tumor-inhibitory substance. I. Biologic studies. Antibiot. Chemother. 1956, 6(8), 487–97. [Google Scholar]
- Dion, H.W.; Fusari, S.A.; Jakubowski, Z.L.; Zora, J.G.; Bartz, Q.R. 6-Diazo-5-oxo-L-norleucine, A New Tumor-inhibitory Substance. II. Isolation and Characterization. J. Am. Chem. Soc. 1956, 78(13), 3075–3077. [Google Scholar] [CrossRef]
- Magill, G.B.; Myers, W.P.; Reilly, H.C.; Putnam, R.C.; Magill, J.W.; Sykes, M.P.; et al. Pharmacological and initial therapeutic observations on 6-diazo-5-oxo-1-norleucine (DON) in human neoplastic disease. Cancer 1957, 10(6), 1138–1150. [Google Scholar] [CrossRef] [PubMed]
- Le Page, G.A.; Loo, T.L. Purine antagonists. In Cancer Medicine; Holland, J. F., Frei, E., III, Eds.; Lea and Febiger: Philadelphia, 1973; pp. 754–756. [Google Scholar]
- Rosenfeld, H.; Roberts, J. Enhancement of antitumor activity of glutamine antagonists 6-diazo-5-oxo-L-norleucine and acivicin in cell culture by glutaminase-asparaginase. Cancer Res. 1981, 41, 1324–1328. [Google Scholar] [PubMed]
- Lemberg, K.M.; Vornov, J.J.; Rais, R.; Slusher, B.S. We’re Not “DON” Yet: Optimal Dosing and Prodrug Delivery of 6-Diazo-5-oxo-L-norleucine. Mol. Cancer Ther. 2018, 17(9), 1824–1832. [Google Scholar] [CrossRef] [PubMed]
- Matés, J.M.; Campos-Sandoval, J.A.; Márquez, J. Glutaminase isoenzymes in the metabolic therapy of cancer. Biochim Biophys. Acta Rev. Cancer 2018, 1870, 158–164. [Google Scholar] [CrossRef]
- Matés, J.M.; Campos-Sandoval, J.A.; de Los Santos-Jiménez, J.; Segura, J.A.; Alonso, F.J.; Márquez, J. Metabolic Reprogramming of Cancer by Chemicals that Target Glutaminase Isoenzymes. Curr. Med. Chem. 2020, 27(32), 5317–5339. [Google Scholar] [CrossRef]
- Anthony, J.; Varalakshmi, S.; Sekar, A.K.; Devarajan, N.; Janakiraman, B.; Peramaiyan, R. Glutaminase—A potential target for cancer treatment. Biomedicine 2024, 14(2), 29–37. [Google Scholar] [CrossRef] [PubMed]
- Tabrez, S.; Zughaibi, T.A.; Hoque, M.; Suhail, M.; Khan, M.I.; Khan, A.U. Targeting Glutaminase by Natural Compounds: Structure-Based Virtual Screening and Molecular Dynamics Simulation Approach to Suppress Cancer Progression. Molecules 2022, 27(15), 5042. [Google Scholar] [CrossRef] [PubMed]
- Zhou, W.X.; Chen, C.; Liu, X.Q.; Li, Y.; Lin, Y.L.; Wu, X.T.; Kong, L.Y.; Luo, J.G. Discovery and optimization of withangulatin A derivatives as novel glutaminase 1 inhibitors for the treatment of triple-negative breast cancer. Eur. J. Med. Chem. 2021, 210, 112980. [Google Scholar] [CrossRef] [PubMed]
- Faubert, B.; Solmonson, A.; DeBerardinis, R.J. Metabolic reprogramming and cancer progression. Science 2020, 368(6487), eaaw5473. [Google Scholar] [CrossRef] [PubMed]
- El-Tanani, M.; Rabbani, S.A.; El-Tanani, Y.; Matalka, I.I. Metabolic vulnerabilities in cancer: A new therapeutic strategy. Crit. Rev. Oncol. Hematol. 2024, 201, 104438. [Google Scholar] [CrossRef] [PubMed]
- Ramirez-Peña, E.; Arnold, J.; Shivakumar, V.; Joseph, R.; Vidhya Vijay, G.; den Hollander, P.; Bhangre, N.; Allegakoen, P.; Prasad, R.; Conley, Z.; Matés, J.M.; Márquez, J.; Chang, J.T.; Vasaikar, S.; Soundararajan, R.; Sreekumar, A.; Mani, S.A. The Epithelial to Mesenchymal Transition Promotes Glutamine Independence by Suppressing GLS2 Expression. Cancers 2019, 11(10), 1610. [Google Scholar] [CrossRef] [PubMed]
- De Los Santos-Jiménez, J.; Campos-Sandoval, J.A.; Márquez-Torres, C.; Urbano-Polo, N.; Brøndegaard, D.; Martín-Rufián, M.; Lobo, C.; Peñalver, A.; Gómez-García, M.C.; Martín-Campos, J.; Cardona, C.; Castilla, L.; da Costa Souza, F.; Cheng, T.; Segura, J.A.; Alonso, F.J.; Curi, R.; Colquhoun, A.; DeBerardinis, R.J.; Márquez, J.; Matés, J.M. Glutaminase isoforms expression switches microRNA levels and oxidative status in glioblastoma cells. J. BioMed Sci. 2021, 28(1), 14. [Google Scholar] [CrossRef] [PubMed]
- De Los Santos-Jiménez, J.; Rosales, T.; Ko, B.; Campos-Sandoval, J.A.; Alonso, F.J.; Márquez, J.; DeBerardinis, R.J.; Matés, J.M. Metabolic Adjustments following Glutaminase Inhibition by CB-839 in Glioblastoma Cell Lines. Cancers 2023, 15(2), 531. [Google Scholar] [CrossRef] [PubMed]
- Matés, J.M.; Segura, J.A.; Martín-Rufián, M.; Campos-Sandoval, J.A.; Alonso, F.J.; Márquez, J. Glutaminase isoenzymes as key regulators in metabolic and oxidative stress against cancer. Curr. Mol. Med. 2013, 13, 514–534. [Google Scholar] [CrossRef] [PubMed]
- Cluntun, A.A.; Lukey, M.J.; Cerione, R.A.; Locasale, J.W. Glutamine Metabolism in Cancer: Understanding the Heterogeneity. Trends Cancer 2017, 3(3), 169–180. [Google Scholar] [CrossRef] [PubMed]
- Kim, J.; DeBerardinis, R.J. Mechanisms and Implications of Metabolic Heterogeneity in Cancer. Cell Metab. 2019, 30(3), 434–446. [Google Scholar] [CrossRef] [PubMed]
- Fu, H.; Wu, S.; Shen, H.; Luo, K.; Huang, Z.; Lu, N.; Li, Y.; Lan, Q.; Xian, Y. Glutamine Metabolism Heterogeneity in Glioblastoma Unveils an Innovative Combination Therapy Strategy. J. Mol. Neurosci. 2024, 74(2), 52. [Google Scholar] [CrossRef] [PubMed]
- Wang, Z.; Liu, F.; Fan, N.; Zhou, C.; Li, D.; Macvicar, T.; Dong, Q.; Bruns, C.J.; Zhao, Y. Targeting Glutaminolysis: New Perspectives to Understand Cancer Development and Novel Strategies for Potential Target Therapies. Front Oncol. 2020, 10, 589508. [Google Scholar] [CrossRef] [PubMed]
- Li, D.; Cao, D.; Zhang, Y.; Yu, X.; Wu, Y.; Jia, Z.; Jiang, J.; Cao, X. Integrative pan-cancer analysis and experiment validation identified GLS as a biomarker in tumor progression, prognosis, immune microenvironment, and immunotherapy. Sci. Rep. 2025, 15(1), 525. [Google Scholar] [CrossRef] [PubMed]
- Yuneva, M.O.; Fan, T.W.; Allen, T.D.; Higashi, R.M.; Ferraris, D.V.; Tsukamoto, T.; Matés, J.M.; Alonso, F.J.; Wang, C.; Seo, Y.; Chen, X.; Bishop, J.M. The metabolic profile of tumors depends on both the responsible genetic lesion and tissue type. Cell Metab. 2012, 15, 157–170. [Google Scholar] [CrossRef] [PubMed]
- Matés, J.M.; Di Paola, F.J.; Campos-Sandoval, J.A.; Mazurek, S.; Márquez, J. Therapeutic targeting of glutaminolysis as an essential strategy to combat cancer. Semin Cell Dev. Biol. 2020, 98, 34–43. [Google Scholar] [CrossRef] [PubMed]
- Gao, P.; Tchernyshyov, I.; Chang, T.C.; Lee, Y.S.; Kita, K.; Ochi, T.; Zeller, K.I.; De Marzo, A.M.; Van Eyk, J.E.; Mendell, J.T.; Dang, C.V. c-Myc suppression of miR-23a/b enhances mitochondrial glutaminase expression and glutamine metabolism. Nature 2009, 458(7239), 762–5. [Google Scholar] [CrossRef] [PubMed]
- Csibi, A.; Lee, G.; Yoon, S.O.; Tong, H.; Ilter, D.; Elia, I.; Fendt, S.M.; Roberts, T.M.; Blenis, J. The mTORC1/S6K1 pathway regulates glutamine metabolism through the eIF4B-dependent control of c-Myc translation. Curr. Biol. 2014, 24(19), 2274–80. [Google Scholar] [CrossRef] [PubMed]
- Momcilovic, M.; Bailey, S.T.; Lee, J.T.; Fishbein, M.C.; Braas, D.; Go, J.; Graeber, T.G.; Parlati, F.; Demo, S.; Li, R.; Walser, T.C.; Gricowski, M.; Shuman, R.; Ibarra, J.; Fridman, D.; Phelps, M.E.; Badran, K.; St John, M.; Bernthal, N.M.; Federman, N.; Yanagawa, J.; Dubinett, S.M.; Sadeghi, S.; Christofk, H.R.; Shackelford, D.B. The GSK3 Signaling Axis Regulates Adaptive Glutamine Metabolism in Lung Squamous Cell Carcinoma. Cancer Cell 2018, 33(5), 905–921.e5. [Google Scholar] [CrossRef] [PubMed]
- Qu, X.; Sun, J.; Zhang, Y.; Li, J.; Hu, J.; Li, K.; Gao, L.; Shen, L. c-Myc-driven glycolysis via TXNIP suppression is dependent on glutaminase-MondoA axis in prostate cancer. Biochem Biophys. Res. Commun. 2018, 504, 415–421. [Google Scholar] [CrossRef] [PubMed]
- Cervantes-Madrid, D.; Dominguez-Gomez, G.; Gonzalez-Fierro, A.; Perez-Cardenas, E.; Taja-Chayeb, L.; Trejo-Becerril, C.; Duenas-Gonzalez, A. Feasibility and antitumor efficacy in vivo, of simultaneously targeting glycolysis, glutaminolysis and fatty acid synthesis using lonidamine, 6-diazo-5-oxo-L-norleucine and orlistat in colon cancer. Oncol. Lett. 2017, 13, 1905–1910. [Google Scholar] [CrossRef] [PubMed]
- Wang, J.J.; Siu, M.K.; Jiang, Y.X.; Leung, T.H.; Chan, D.W.; Wang, H.G.; Ngan, H.Y.; Chan, K.K. A Combination of Glutaminase Inhibitor 968 and PD-L1 Blockade Boosts the Immune Response against Ovarian Cancer. Biomolecules 2021, 11(12), 1749. [Google Scholar] [CrossRef] [PubMed]
- Tanaka, K.; Sasayama, T.; Irino, Y.; Takata, K.; Nagashima, H.; Satoh, N.; Kyotani, K.; Mizowaki, T.; Imahori, T.; Ejima, Y.; Masui, K.; Gini, B.; Yang, H.; Hosoda, K.; Sasaki, R.; Mischel, P.S.; Kohmura, E. Compensatory glutamine metabolism promotes glioblastoma resistance to mTOR inhibitor treatment. J. Clin. Invest. 2015, 125, 1591–1602. [Google Scholar] [CrossRef] [PubMed]
- Wang, D.; Meng, G.; Zheng, M.; Zhang, Y.; Chen, A.; Wu, J.; Wei, J. The Glutaminase-1 Inhibitor 968 Enhances Dihydroartemisinin-Mediated Antitumor Efficacy in Hepatocellular Carcinoma Cells. PLoS ONE 2016, 11, e0166423. [Google Scholar] [CrossRef] [PubMed]
- Han, T.; Guo, M.; Zhang, T.; Gan, M.; Xie, C.; Wang, J.B. A novel Glutaminase inhibitor-968 inhibits the migration and proliferation of non-small cell lung cancer cells by targeting EGFR/ERK signaling pathway. Oncotarget 2016, 8, 28063–28073. [Google Scholar] [CrossRef] [PubMed]
- Yang, R.; Guo, Z.; Zhao, Y.; Ma, L.; Li, B.; Yang, C. Compound 968 reverses adriamycin resistance in breast cancer MCF-7(ADR) cells via inhibiting P-glycoprotein function independently of glutaminase. Cell Death Discov. 2021, 7(1), 204. [Google Scholar] [CrossRef] [PubMed]
- Cardoso, H.J.; Figueira, M.I.; Vaz, C.V.; Carvalho, T.M.A.; Brás, L.A.; Madureira, P.A.; Oliveira, P.J.; Sardão, V.A.; Socorro, S. Glutaminolysis is a metabolic route essential for survival and growth of prostate cancer cells and a target of 5α-dihydrotestosterone regulation. Cell Oncol. (Dordr) 2021, 44(2), 385–403. [Google Scholar] [CrossRef] [PubMed]
- Herranz, D.; Ambesi-Impiombato, A.; Sudderth, J.; Sánchez-Martín, M.; Belver, L.; Tosello, V.; Xu, L.; Wendorff, A.A.; Castillo, M.; Haydu, J.E.; Márquez, J.; Matés, J.M.; Kung, A.L.; Rayport, S.; Cordon-Cardo, C.; DeBerardinis, R.J.; Ferrando, A.A. Metabolic reprogramming induces resistance to anti-NOTCH1 therapies in acute lymphoblastic leukemia. Nat. Med. 2015, 21, 1182–1189. [Google Scholar] [CrossRef] [PubMed]
- Lee, J.S.; Kang, J.H.; Lee, S.H.; Lee, C.H.; Son, J.; Kim, S.Y. Glutaminase 1 inhibition reduces thymidine synthesis in NSCLC. Biochem Biophys. Res. Commun. 2016, 477, 374–382. [Google Scholar] [CrossRef] [PubMed]
- Chen, L.; Cui, H.; Fang, J.; Deng, H.; Kuang, P.; Guo, H.; Wang, X.; Zhao, L. Glutamine deprivation plus BPTES alters etoposide- and cisplatin-induced apoptosis in triple negative breast cancer cells. Oncotarget 2016, 7, 54691–54701. [Google Scholar] [CrossRef] [PubMed]
- Schoonjans, C.A.; Joudiou, N.; Brusa, D.; Corbet, C.; Feron, O.; Gallez, B. Acidosis-induced metabolic reprogramming in tumor cells enhances the anti-proliferative activity of the PDK inhibitor dichloroacetate. Cancer Lett. 2020, 470, 18–28. [Google Scholar] [CrossRef] [PubMed]
- Yu, Y.; Deng, H.; Wang, W.; Xiao, S.; Zheng, R.; Lv, L.; Wang, H.; Chen, J.; Zhang, B. LRPPRC promotes glycolysis by stabilising LDHA mRNA and its knockdown plus glutamine inhibitor induces synthetic lethality via m(6) A modification in triple-negative breast cancer. Clin. Transl. Med. 2024, 14(2), e1583. [Google Scholar] [CrossRef] [PubMed]
- Tanaka, S.; Hayashi, S.; Otsuka, T.; Kamiya, T.; Ishikawa, K.; Hara, H. Inhibition of glutamine metabolism increases sensitivity to plasma-activated medium-induced cytotoxicity. Free Radic. Res. 2024, 58(3), 170–179. [Google Scholar] [CrossRef] [PubMed]
- Dai, Y.; Li, J.; Wang, T.; Zhang, X.; Du, P.; Dong, Y.; Jiao, Z. Self-assembled metal-polyphenolic based multifunctional nanomedicine to improve therapy treatment of pancreatic cancer by inhibition of glutamine metabolism. Colloids Surf. B Biointerfaces 2024, 244, 114162. [Google Scholar] [CrossRef] [PubMed]
- Byun, J.K.; Park, M.; Lee, S.; Yun, J.W.; Lee, J.; Kim, J.S.; Cho, S.J.; Jeon, H.J.; Lee, I.K.; Choi, Y.K.; Park, K.G. Inhibition of glutamine utilization synergizes with immune checkpoint inhibitor to promote antitumor immunity. Mol. Cell. 2020, 80, 592–606.e8. [Google Scholar] [CrossRef] [PubMed]
- Basu, H.S.; Wilganowski, N.; Robertson, S.; Reuben, J.M.; Cohen, E.N.; Zurita, A.; Ramachandran, S.; Xiao, L.C.; Titus, M.; Wilding, G. Prostate cancer cells survive anti-androgen and mitochondrial metabolic inhibitors by modulating glycolysis and mitochondrial metabolic activities. Prostate 2021, 81(12), 799–811. [Google Scholar] [CrossRef] [PubMed]
- Xia, M.; Li, X.; Diao, Y.; Du, B.; Li, Y. Targeted inhibition of glutamine metabolism enhances the antitumor effect of seluºmetinib in KRAS-mutant NSCLC. Transl. Oncol. 2021, 14(1), 100920. [Google Scholar] [CrossRef] [PubMed]
- Draguet, A.; Tagliatti, V.; Colet, J.M. Targeting Metabolic Reprogramming to Improve Breast Cancer Treatment: An In Vitro Evaluation of Selected Metabolic Inhibitors Using a Metabolomic Approach. Metabolites 2021, 11(8), 556. [Google Scholar] [CrossRef] [PubMed]
- Schoultz, E.; Dahlberg, J.; Nilsson, L.M.; Dzanan, J.J.; Carlsson, T.; Dahr, N.; Andersson, E.; Muhammad, G.; Muth, A.; Elias, E.; Fagman, H.; Sayin, V.I.; Nilsson, J.A.; Nilsson, M. Involvement of KEAP1/NRF2 pathway in non-BRAF mutated squamous cell carcinoma of the thyroid. J. Pathol. 2025, 266(4-5), 481–494. [Google Scholar] [CrossRef] [PubMed]
- Lampa, M.; Arlt, H.; He, T.; Ospina, B.; Reeves, J.; Zhang, B.; Murtie, J.; Deng, G.; Barberis, C.; Hoffmann, D.; Cheng, H.; Pollard, J.; Winter, C.; Richon, V.; Garcia-Escheverria, C.; Adrian, F.; Wiederschain, D.; Srinivasan, L. Glutaminase is essential for the growth of triple-negative breast cancer cells with a deregulated glutamine metabolism pathway and its suppression synergizes with mTOR inhibition. PLoS ONE 2017, 12, e0185092. [Google Scholar] [CrossRef] [PubMed]
- Emberley, E.; Pan, A.; Chen, J.; Dang, R.; Gross, M.; Huang, T.; Li, W.; MacKinnon, A.; Singh, D.; Sotirovska, N.; Steggerda, S.M.; Wang, T.; Parlati, F. The glutaminase inhibitor telaglenastat enhances the antitumor activity of signal transduction inhibitors everolimus and cabozantinib in models of renal cell carcinoma. PLoS ONE 2021, 16(11), e0259241. [Google Scholar] [CrossRef] [PubMed]
- Brady, M.R.; Matulionis, N.; Christofk, H.R.; Garon, E.B.; Lisberg, A.; Shackelford, D.B.; Momcilovic, M. Macropinocytosis and Vascularization Determine Response to mTOR Inhibitors in Lung Squamous Cell Carcinoma. Cancer Res. 2025. [Google Scholar] [CrossRef] [PubMed]
- Lang, L.; Wang, F.; Ding, Z.; Zhao, X.; Loveless, R.; Xie, J.; Shay, C.; Qiu, P.; Ke, Y.; Saba, N.F.; Teng, Y. Blockade of glutamine-dependent cell survival augments antitumor efficacy of CPI-613 in head and neck cancer. J. Exp. Clin. Cancer Res. 2021, 40(1), 393. [Google Scholar] [CrossRef] [PubMed]
- Cheng, Z.J.; Miao, D.L.; Su, Q.Y.; Tang, X.L.; Wang, X.L.; Deng, L.B.; Shi, H.D.; Xin, H.B. THZ1 suppresses human non-small-cell lung cancer cells in vitro through interference with cancer metabolism. Acta Pharmacol. Sin. 2019, 40(6), 814–822. [Google Scholar] [CrossRef] [PubMed]
- Tarrado-Castellarnau, M.; Foguet, C.; Tarragó-Celada, J.; Palobart, M.; Hernández-Carro, C.; Perarnau, J.; Zodda, E.; Polat, I.H.; Marin, S.; Suarez-Bonnet, A.; Lozano, J.J.; Yuneva, M.; Thomson, T.M.; Cascante, M. Glutaminase as a metabolic target of choice to counter acquired resistance to Palbociclib by colorectal cancer cells. Oncogene 2025, 44(36), 3386–3406. [Google Scholar] [CrossRef] [PubMed]
- Conroy, L.R.; Lorkiewicz, P.; He, L.; Yin, X.; Zhang, X.; Rai, S.N.; Clem, B.F. Palbociclib treatment alters nucleotide biosynthesis and glutamine dependency in A549 cells. Cancer Cell Int. 2020, 20, 280. [Google Scholar] [CrossRef] [PubMed]
- Li, Y.; Wu, S.; Zhao, Y.; Dinh, T.; Jiang, D.; Selfridge, J.E.; Myers, G.; Wang, Y.; Zhao, X.; Tomchuck, S.; Dubyak, G.; Lee, R.T.; Estfan, B.; Shapiro, M.; Kamath, S.; Mohamed, A.; Huang, S.C.; Huang, A.Y.; Conlon, R.; Krishnamurthi, S.; Eads, J.; Willis, J.E.; Khorana, A.A.; Bajor, D.; Wang, Z. Neutrophil extracellular traps induced by chemotherapy inhibit tumor growth in murine models of colorectal cancer. J. Clin. Invest. 2024, 134(5), e175031. [Google Scholar] [CrossRef] [PubMed]
- Wang, H.; Wang, X.Y.; Ji, J.B.; Zheng, Z.X.; Shang, P.F.; Guo, X.L. GLS1 inhibitor CB-839 inhibits the malignant progression of 5-FU resistant hepatoma cells by regulating glutamine metabolism. Chem. Biol. Interact. 2026, 423, 111812. [Google Scholar] [CrossRef] [PubMed]
- Chu, J.; Niu, X.; Chang, J.; Shao, M.; Peng, L.; Xi, Y.; Lin, A.; Wang, C.; Cui, Q.; Luo, Y.; Fan, W.; Chen, Y.; Sun, Y.; Guo, W.; Tan, W.; Lin, D.; Wu, C. Metabolic remodeling by TIGAR overexpression is a therapeutic target in esophageal squamous-cell carcinoma. Theranostics 2020, 10(8), 3488–3502. [Google Scholar] [CrossRef] [PubMed]
- Lu, W.; Cui, J.; Wang, W.; Hu, Q.; Xue, Y.; Liu, X.; Gong, T.; Lu, Y.; Ma, H.; Yang, X.; Feng, B.; Wang, Q.; Zhang, N.; Xu, Y.; Liu, M.; Nussinov, R.; Cheng, F.; Ji, H.; Huang, J. PPIA dictates NRF2 stability to promote lung cancer progression. Nat. Commun. 2024, 15(1), 4703. [Google Scholar] [CrossRef] [PubMed]
- Fujisawa, K.; Matsumoto, T.; Yamamoto, N.; Yamasaki, T.; Takami, T. Metabolic Analysis of DFO-Resistant Huh7 Cells and Identification of Targets for Combination Therapy. Metabolites 2023, 13(10), 1073. [Google Scholar] [CrossRef] [PubMed]
- Kim, D.H.; Kim, D.J.; Park, S.J.; Jang, W.J.; Jeong, C.H. Inhibition of GLS1 and ASCT2 Synergistically Enhances the Anticancer Effects in Pancreatic Cancer Cells. J. Microbiol. Biotechnol. 2025, 35, e2412032. [Google Scholar] [CrossRef] [PubMed]
- Yang, S.M.; Kim, J.; Lee, J.Y.; Lee, J.S.; Lee, J.M. Regulation of glucose and glutamine metabolism to overcome cisplatin resistance in intrahepatic cholangiocarcinoma. BMB Rep. 2023, 56(11), 600–605. [Google Scholar] [CrossRef] [PubMed]
- Xie, F.; Niu, Y.; Chen, X.; Kong, X.; Yan, G.; Zhuang, A.; Li, X.; Lian, L.; Qin, D.; Zhang, Q.; Zhang, R.; Yang, K.; Xia, X.; Chen, K.; Xiao, M.; Yang, C.; Wu, T.; Shen, Y.; Yu, C.; Luo, C.; Lin, S.H.; Li, W. Ursodeoxycholic acid inhibits the uptake of cystine through SLC7A11 and impairs de novo synthesis of glutathione. J. Pharm. Anal. 2025, 15(1), 101068. [Google Scholar] [CrossRef] [PubMed]
- Holt, A.K.; Najumudeen, A.K.; Collard, T.J.; Li, H.; Millett, L.M.; Hoskin, A.J.; Legge, D.N.; Mortensson, E.M.H.; Flanagan, D.J.; Jones, N.; Kollareddy, M.; Timms, P.; Hitchings, M.D.; Cronin, J.; Sansom, O.J.; Williams, A.C.; Vincent, E.E. Aspirin reprogrammes colorectal cancer cell metabolism and sensitises to glutaminase inhibition. Cancer Metab. 2023, 11(1), 18. [Google Scholar] [CrossRef] [PubMed]
- Li, C.; Feng, Y.; Wang, W.; Xu, L.; Zhang, M.; Yao, Y.; Wu, X.; Zhang, Q.; Huang, W.; Wang, X.; Li, X.; Ying, P.; Shang, L. Targeting Glutaminolysis to Treat Multiple Myeloma: An In Vitro Evaluation of Glutaminase Inhibitors Telaglenastat and Epigallocatechin-3-gallate. Anticancer Agents Med. Chem. 2023, 23(7), 779–785. [Google Scholar] [CrossRef] [PubMed]
- Okabe, S.; Moriyama, M.; Arai, Y.; Gotoh, A. Glutaminase 1 plays critical roles in myelodysplastic syndrome and acute myeloid leukemia cells. Cancer Biomark. 2024, 41(1), 55–68. [Google Scholar] [CrossRef] [PubMed]
- Rashmi, R.; Jayachandran, K.; Zhang, J.; Menon, V.; Muhammad, N.; Zahner, M.; et al. Glutaminase inhibitors induce thiol-mediated oxidative stress and radiosensitization in treatment-resistant cervical cancers. Mol. Cancer Ther. 2020, 19(12), 2465–75. [Google Scholar] [CrossRef] [PubMed]
- Wicker, C.A.; Hunt, B.G.; Krishnan, S.; Aziz, K.; Parajuli, S.; Palackdharry, S.; et al. Glutaminase inhibition with telaglenastat (Cb-839) improves treatment response in combination with ionizing radiation in head and neck squamous cell carcinoma models. Cancer Lett. 2021, 502, 180–8. [Google Scholar] [CrossRef] [PubMed]
- Jin, H.; Wang, S.; Zaal, E.A.; Wang, C.; Wu, H.; Bosma, A.; Jochems, F.; Isima, N.; Jin, G.; Lieftink, C.; Beijersbergen, R.; Berkers, C.R.; Qin, W.; Bernards, R. A powerful drug combination strategy targeting glutamine addiction for the treatment of human liver cancer. Elife 2020, 9, e56749. [Google Scholar] [CrossRef] [PubMed]
- Ochi, N.; Miyake, N.; Takeyama, M.; Yamane, H.; Fukazawa, T.; Nagasaki, Y.; Kawahara, T.; Ichiyama, N.; Kosaka, Y.; Mimura, A.; Nakanishi, H.; Hiraki, A.; Kiura, K.; Takigawa, N. The combined inhibition of SLC1A3 and glutaminase in osimertinib-resistant EGFR mutant cells. Biochim Biophys. Acta Gen. Subj. 2024, 1868(10), 130675. [Google Scholar] [CrossRef] [PubMed]
- Gross, M.; Chen, J.; Englert, J.; Janes, J.; Leone, R.; MacKinnon, A.; et al. Abstract 2329: Glutaminase inhibition with cb-839 enhances anti-tumor activity of pd-1 and pd-L1 antibodies by overcoming a metabolic checkpoint blocking T cell activation. Cancer Res. (2016) 76((14_) Supplement. [CrossRef]
- Varghese, S.; Pramanik, S.; Williams, L.J.; Hodges, H.R.; Hudgens, C.W.; Fischer, G.M.; et al. The glutaminase inhibitor cb-839 (Telaglenastat) enhances the antimelanoma activity of T-Cell-Mediated immunotherapies. Mol. Cancer Ther. 2021, 20(3), 500–11. [Google Scholar] [CrossRef] [PubMed]
- Glassman, D.; Kim, M.S.; Spradlin, M.; Badal, S.; Taki, M.; Bhattacharya, P.; Dutta, P.; Kingsley, C.V.; Foster, K.I.; Animasahun, O.; Jeon, J.H.; Achreja, A.; Jayaraman, A.; Kumar, P.; Nenwani, M.; Wuchu, F.; Bayraktar, E.; Wu, Y.; Stur, E.; Mangala, L.; Lee, S.; Yap, T.A.; Westin, S.N.; Eberlin, L.S.; Nagrath, D.; Sood, A.K. Exploiting metabolic vulnerabilities after anti-VEGF antibody therapy in ovarian cancer. iScience 2023, 26(2), 106020. [Google Scholar] [CrossRef] [PubMed]
- Ciombor, K.K.; Bae, S.W.; Whisenant, J.G.; Ayers, G.D.; Sheng, Q.; Peterson, T.E.; Smith, G.T.; Lin, K.; Chowdhury, S.; Kanikarla Marie, P.; Sorokin, A.; Cohen, A.S.; Goff, L.W.; Cardin, D.B.; Shen, J.P.; Kopetz, S.; Eng, C.; Shyr, Y.; Berlin, J.; Manning, H.C. Results of the Phase I/II Study and Preliminary B-cell Gene Signature of Combined Inhibition of Glutamine Metabolism and EGFR in Colorectal Cancer. Clin. Cancer Res. 2025, 31(8), 1437–1448. [Google Scholar] [CrossRef] [PubMed]
- Cohen, A.S.; Geng, L.; Zhao, P.; Fu, A.; Schulte, M.L.; Graves-Deal, R.; Washington, M.K.; Berlin, J.; Coffey, R.J.; Manning, H.C. Combined blockade of EGFR and glutamine metabolism in preclinical models of colorectal cancer. Transl. Oncol. 2020, 13(10), 100828. [Google Scholar] [CrossRef] [PubMed]
- Huang, S.; Ren, L.; Beck, J.A.; Phelps, T.E.; Olkowski, C.; Ton, A.; Roy, J.; White, M.E.; Adler, S.; Wong, K.; Cherukuri, A.; Zhang, X.; Basuli, F.; Choyke, P.L.; Jagoda, E.M.; LeBlanc, A.K. Exploration of Imaging Biomarkers for Metabolically-Targeted Osteosarcoma Therapy in a Murine Xenograft Model. Cancer Biother. Radiopharm. 2023, 38(7), 475–485. [Google Scholar] [CrossRef] [PubMed]
- Prasad, P.; Ghosh, S.; Roy, S.S. Glutamine deficiency promotes stemness and chemoresistance in tumor cells through DRP1-induced mitochondrial fragmentation. Cell Mol. Life Sci. 2021, 78(10), 4821–4845. [Google Scholar] [CrossRef] [PubMed]
- Rais, R.; Jančařík, A.; Tenora, L.; Nedelcovych, M.; Alt, J.; Englert, J.; Rojas, C.; Le, A.; Elgogary, A.; Tan, J.; Monincová, L.; Pate, K.; Adams, R.; Ferraris, D.; Powell, J.; Majer, P.; Slusher, B.S. Discovery of 6-Diazo-5-oxo-l-norleucine (DON) Prodrugs with Enhanced CSF Delivery in Monkeys: A Potential Treatment for Glioblastoma. J. Med. Chem. 2016, 59(18), 8621–33. [Google Scholar] [CrossRef] [PubMed]
- Yokoyama, Y.; Nedelcovych, M.; Wild, R. drp-104, a novel broad acting glutamine antagonist, induces distinctive immune modulation mechanisms and synergistic efficacy in combination with immune checkpoint blockade. 34th annual meeting & pre-conference programs of the society for immunotherapy of cancer (Sitc 2019): Part 1. J. Immunother. Cancer (2019) 7 (suppl 1), 282. [CrossRef]
- Rais, R.; Lemberg, K.M.; Tenora, L.; Arwood, M.L.; Pal, A.; Alt, J.; Wu, Y.; Lam, J.; Aguilar, J.M.H.; Zhao, L.; Peters, D.E.; Tallon, C.; Pandey, R.; Thomas, A.G.; Dash, R.P.; Seiwert, T.; Majer, P.; Leone, R.D.; Powell, J.D.; Slusher, B.S. Discovery of DRP-104, a tumor-targeted metabolic inhibitor prodrug. Sci. Adv. 2022, 8(46), eabq5925. [Google Scholar] [CrossRef] [PubMed]
- Leone, R.D.; Zhao, L.; Englert, J.M.; Sun, I.-H.; Oh, M.-H.; Sun, I.-H.; et al. Glutamine blockade induces divergent metabolic programs to overcome tumor immune evasion. Science 2019, 366(6468), 1013–21. [Google Scholar] [CrossRef] [PubMed]
- Yamashita, A.S.; da Costa Rosa, M.; Stumpo, V.; Rais, R.; Slusher, B.S.; Riggins, G.J. The glutamine antagonist prodrug JHU-083 slows malignant glioma growth and disrupts mTOR signaling. Neurooncol Adv. 2020, 3(1), vdaa149. [Google Scholar] [CrossRef] [PubMed]
- Huang, M.; Xiong, D.; Pan, J.; Zhang, Q.; Sei, S.; Shoemaker, R.H.; Lubet, R.A.; Montuenga, L.M.; Wang, Y.; Slusher, B.S.; You, M. Targeting Glutamine Metabolism to Enhance Immunoprevention of EGFR-Driven Lung Cancer. Adv. Sci. (Weinh) 2022, 9(26), e2105885. [Google Scholar] [CrossRef] [PubMed]
- Oh, M.-H.; Sun, I.-H.; Zhao, L.; Leone, R.D.; Sun, I.-M.; Xu, W.; et al. Targeting glutamine metabolism enhances tumor-specific immunity by modulating suppressive myeloid cells. J. Clin. Invest. 2020, 130(7), 3865–84. [Google Scholar] [CrossRef] [PubMed]
- Zhang, G.Q.; Xi, C.; Ju, N.T.; Shen, C.T.; Qiu, Z.L.; Song, H.J.; Luo, Q.Y. Targeting glutamine metabolism exhibits anti-tumor effects in thyroid cancer. J. Endocrinol. Invest. 2024, 47(8), 1953–1969. [Google Scholar] [CrossRef] [PubMed]
- Udutha, S.; Taglang, C.; Batsios, G.; Gillespie, A.M.; Tran, M.; Hoeve, J.T.; Graeber, T.G.; Viswanath, P. Combined inhibition of de novo glutathione and nucleotide biosynthesis is synthetically lethal in glioblastoma. Cell Rep. 2025, 44(5), 115596. [Google Scholar] [CrossRef] [PubMed]
- Chortis, V.; Borges, K.S.; Yao, C.H.; Ribeiro, C.; Nagano, L.F.; Berber, M.; Prete, A.; Najdekr, L.; Klontzas, M.E.; Jankevics, A.; Vendramini, P.; Kremer, J.L.; Kelley, L.; Raveenthiraraj, S.; Tsagarakis, S.; Macech, M.; Pupovac, I.D.; Papathomas, T.G.; Haykir, B.; Winder, C.; Quinkler, M.; Dennedy, M.C.; Ueland, G.Å.; Beuschlein, F.; Tabarin, A.; Fassnacht, M.; Taylor, A.E.; Kastelan, D.; Ambroziak, U.; Vassiliadi, D.A.; Kiseljak-Vassiliades, K.; Bancos, I.; Carlone, D.L.; Dunn, W.B.; Arlt, W.; Haigis, M.C.; Breault, D.T. Glutamine antagonism suppresses tumor growth in adrenocortical carcinoma through inhibition of de novo nucleotide biosynthesis. bioRxiv [Preprint] 2025, 2025.09.28.674326. [Google Scholar] [CrossRef] [PubMed]
- Praharaj, M.; Shen, F.; Lee, A.J.; Zhao, L.; Nirschl, T.R.; Theodros, D.; Singh, A.K.; Wang, X.; Adusei, K.M.; Lombardo, K.A.; Williams, R.A.; Sena, L.A.; Thompson, E.A.; Tam, A.; Yegnasubramanian, S.; Pearce, E.J.; Leone, R.D.; Alt, J.; Rais, R.; Slusher, B.S.; Pardoll, D.M.; Powell, J.D.; Zarif, J.C. Metabolic Reprogramming of Tumor-Associated Macrophages Using Glutamine Antagonist JHU083 Drives Tumor Immunity in Myeloid-Rich Prostate and Bladder Cancers. Cancer Immunol. Res. 2024, 12(7), 854–875. [Google Scholar] [CrossRef] [PubMed]
- Yokoyama, Y.; Estok, T.M.; Wild, R. Sirpiglenastat (DRP-104) Induces Antitumor Efficacy through Direct, Broad Antagonism of Glutamine Metabolism and Stimulation of the Innate and Adaptive Immune Systems. Mol. Cancer Ther. 2022, 21(10), 1561–1572. [Google Scholar] [CrossRef] [PubMed]
- Encarnación-Rosado, J.; Sohn, A.S.W.; Biancur, D.E.; Lin, E.Y.; Osorio-Vasquez, V.; Rodrick, T.; González-Baerga, D.; Zhao, E.; Yokoyama, Y.; Simeone, D.M.; Jones, D.R.; Parker, S.J.; Wild, R.; Kimmelman, A.C. Targeting pancreatic cancer metabolic dependencies through glutamine antagonism. Nat. Cancer 2024, 5(1), 85–99. [Google Scholar] [CrossRef] [PubMed]
- Allevato, M.M.; Trinh, S.; Koshizuka, K.; Nachmanson, D.; Nguyen, T.C.; Yokoyama, Y.; Wu, X.; Andres, A.; Wang, Z.; Watrous, J.; Molinolo, A.A.; Mali, P.; Harismendy, O.; Jain, M.; Wild, R.; Gutkind, J.S. A genome-wide CRISPR screen reveals that antagonism of glutamine metabolism sensitizes head and neck squamous cell carcinoma to ferroptotic cell death. Cancer Lett. 2024, 598, 217089. [Google Scholar] [CrossRef] [PubMed]
- Pillai, R.; LeBoeuf, S.E.; Hao, Y.; New, C.; Blum, J.L.E.; Rashidfarrokhi, A.; Huang, S.M.; Bahamon, C.; Wu, W.L.; Karadal-Ferrena, B.; Herrera, A.; Ivanova, E.; Cross, M.; Bossowski, J.P.; Ding, H.; Hayashi, M.; Rajalingam, S.; Karakousi, T.; Sayin, V.I.; Khanna, K.M.; Wong, K.K.; Wild, R.; Tsirigos, A.; Poirier, J.T.; Rudin, C.M.; Davidson, S.M.; Koralov, S.B.; Papagiannakopoulos, T. Glutamine antagonist DRP-104 suppresses tumor growth and enhances response to checkpoint blockade in KEAP1 mutant lung cancer. Sci. Adv. 2024, 10(13), eadm9859. [Google Scholar] [CrossRef] [PubMed]
- Moon, D.; Hauck, J.S.; Jiang, X.; Quang, H.; Xu, L.; Zhang, F.; Gao, X.; Wild, R.; Everitt, J.I.; Macias, E.; He, Y.; Huang, J. Targeting glutamine dependence with DRP-104 inhibits proliferation and tumor growth of castration-resistant prostate cancer. Prostate 2024, 84(4), 349–357. [Google Scholar] [CrossRef] [PubMed]
- Yu, J.; Jin, C.; Su, C.; Moon, D.; Sun, M.A.; Zhang, H.; Jiang, X.; Zhang, F.; Tserentsoodol, N.; Bowie, M.L.; Pirozzi, C.J.; George, D.J.; Wild, R.; Gao, X.; Ashley, D.M.; He, Y.; Huang, J. Resilience and Vulnerabilities of Tumor Cells under Purine Shortage Stress. Clin. Cancer Res. 2025, 31(20), 4345–4360. [Google Scholar] [CrossRef] [PubMed]
- Thangavelu, K.; Qing Yun Chong, Q.Y.; Low, B.C.; Sivaraman, J. Structural basis for the active site inhibition mechanism of human kidney-type glutaminase (KGA). Sci. Rep. 2024, 4, 3827. [Google Scholar] [CrossRef]
- Alden, R.S.; Kamran, M.Z.; Bashjawish, B.A.; Simone, B.A. Glutamine metabolism and radiosensitivity: Beyond the Warburg effect. Front Oncol. 2022, 12, 1070514. [Google Scholar] [CrossRef] [PubMed]
- Zhao, Y.; Feng, X.; Chen, Y.; Selfridge, J.E.; Gorityala, S.; Du, Z.; Wang, J.M.; Hao, Y.; Cioffi, G.; Conlon, R.A.; Barnholtz-Sloan, J.S.; Saltzman, J.; Krishnamurthi, S.S.; Vinayak, S.; Veigl, M.; Xu, Y.; Bajor, D.L.; Markowitz, S.D.; Meropol, N.J.; Eads, J.R.; Wang, Z. 5-fluorouracil enhances the anti-tumor activity of the glutaminase inhibitor CB-839 against PIK3CA-mutant colorectal cancers. Cancer Res. 2020, 80(21), 4815–4827. [Google Scholar] [CrossRef] [PubMed]
- Meric-Bernstam, F.; Lee, R.J.; Carthon, B.C.; Iliopoulos, O.; Mier, J.W.; Patel, M.R.; et al. CB-839, a glutaminase inhibitor, in combination with cabozantinib in patients with clear cell and papillary metastatic renal cell cancer (mRCC): Results of a phase I study. JCO 2019, 37, 549–9. [Google Scholar] [CrossRef]
- Riess, J.W.; Frankel, P.; Shackelford, D.; Dunphy, M.; Badawi, R.D.; Nardo, L.; Cherry, S.R.; Lanza, I.; Reid, J.; Gonsalves, W.I.; Kunos, C.; Gandara, D.R.; Lara, P.N.; Newman, E.; Paik, P.K. Phase 1 Trial of MLN0128 (Sapanisertib) and CB-839 HCl (Telaglenastat) in Patients With Advanced NSCLC (NCI 10327): Rationale and Study Design. Clin. Lung Cancer 2021, 22(1), 67–70. [Google Scholar] [CrossRef] [PubMed]
- Vagaggini, C.; D’Ursi, P.; Poggialini, F.; Fossa, P.; Francesconi, V.; Trombetti, G.; Orro, A.; Dreassi, E.; Schenone, S.; Tonelli, M.; Carbone, A. Deciphering the landscape of allosteric glutaminase 1 inhibitors as anticancer agents. Bioorg Chem. 2025, 161, 108523. [Google Scholar] [CrossRef] [PubMed]
- De Los Santos-Jiménez, J.; Campos-Sandoval, J.A.; Alonso, F.J.; Márquez, J.; Matés, J.M. GLS and GLS2 Glutaminase Isoenzymes in the Antioxidant System of Cancer Cells. Antioxidants 2024, 13(6), 745. [Google Scholar] [CrossRef] [PubMed]
- Kim, B.; Gwak, J.; Lee, E.K.; Jeong, S.M. Mitochondrial Glutamine Metabolism Determines Senescence Induction After Chemotherapy. Anticancer Res. 2020, 40(12), 6891–6897. [Google Scholar] [CrossRef] [PubMed]
- Cui, J.; Yan, X.; Song, J. Glutamine metabolism remodels tumor-associated macrophage: mechanistic explorations and new strategies in translational medicine. Front Immunol. 2026, 16, 1715170. [Google Scholar] [CrossRef] [PubMed]
- Dong, C.; Zhao, Y.; Han, Y.; Li, M.; Wang, G. Targeting glutamine metabolism crosstalk with tumor immune response. Biochim Biophys. Acta Rev. Cancer 2025, 1880(1), 189257. [Google Scholar] [CrossRef] [PubMed]
- Soth, M.J.; Le, K.; Di Francesco, M.E.; Hamilton, M.M.; Liu, G.; Burke, J.P.; Carroll, C.L.; Kovacs, J.J.; Bardenhagen, J.P.; Bristow, C.A.; Cardozo, M.; Czako, B.; de Stanchina, E.; Feng, N.; Garvey, J.R.; Gay, J.P.; Do, M.K.G.; Greer, J.; Han, M.; Harris, A.; Herrera, Z.; Huang, S.; Giuliani, V.; Jiang, Y.; Johnson, S.B.; Johnson, T.A.; Kang, Z.; Leonard, P.G.; Liu, Z.; McAfoos, T.; Miller, M.; Morlacchi, P.; Mullinax, R.A.; Palmer, W.S.; Pang, J.; Rogers, N.; Rudin, C.M.; Shepard, H.E.; Spencer, N.D.; Theroff, J.; Wu, Q.; Xu, A.; Yau, J.A.; Draetta, G.; Toniatti, C.; Heffernan, T.P.; Jones, P. Discovery of IPN60090, a Clinical Stage Selective Glutaminase-1 (GLS-1) Inhibitor with Excellent Pharmacokinetic and Physicochemical Properties. J. Med. Chem. 2020, 63(21), 12957–12977. [Google Scholar] [CrossRef] [PubMed]
- Gong, K.; Huang, Y.; Zheng, Y.; Hao, W.; Shi, K. ZSWIM4 inhibition improves chemosensitivity in epithelial ovarian cancer cells by suppressing intracellular glycine biosynthesis. J. Transl. Med. 2024, 22(1), 192. [Google Scholar] [CrossRef] [PubMed]
- Xiang, Q.; Zhang, Y.; Ren, Y.; Luo, F.; Wu, Y.; Ran, H.; Cao, Y. Unleashing the Potent Antitumor Force: A Reactive Oxygen Species (ROS) Storm Formation by Ultrasound-Activatable Metal Nanosonosensitizers. Small 2026, 22(11), e13649. [Google Scholar] [CrossRef] [PubMed]
- Zhuang, J.; Chen, Y.; Zhang, Y.; Hai, Y.; Fan, R.; Dou, J.; Lu, X.; Wang, W.; Zhang, B.; Hou, Z.; Liang, L.; Liu, Y.; Wei, G. HB023: A glutamine antagonist prodrug boosting antitumor lmmunity via PD-L1 suppression and mitochondrial membrane remodeling. J. Adv. Res. 2026, S2090-1232(26)00101-3. [Google Scholar] [CrossRef] [PubMed]
- Ma, G.; Jia, H.; Tian, X.; Wang, G.; Zhang, X.; Mi, Z.; Jia, Y.; Wang, L.; Liang, Z.; Li, D.; Mao, X.; Liang, Y.; Niu, H. Inhibition of glutamine metabolism blocks tumor growth and sensitizes ccRCC to immune checkpoint blockade. J. Transl. Med. 2026. [Google Scholar] [CrossRef] [PubMed]
- Zhu, L.; Ploessl, K.; Zhou, R.; Mankoff, D.; Kung, H.F. Metabolic Imaging of Glutamine in Cancer. J. Nucl. Med. 2017, 58(4), 533–537. [Google Scholar] [CrossRef] [PubMed]
- Liu, S.; Liu, F.; Hou, X.; Zhang, Q.; Ren, Y.; Zhu, H.; Yang, Z.; Xu, X. KRAS Mutation Detection with (2S,4R)-4-[18F]FGln for Noninvasive PDAC Diagnosis. Mol. Pharm. 2024, 21(4), 2034–2042. [Google Scholar] [CrossRef] [PubMed]
- Bae, S.W.; Wang, J.; Georgiou, D.K.; Wen, X.; Cohen, A.S.; Geng, L.; Tantawy, M.N.; Manning, H.C. Feasibility of [(18)F]FSPG PET for Early Response Assessment to Combined Blockade of EGFR and Glutamine Metabolism in Wild-Type KRAS Colorectal Cancer. Tomography 2023, 9(2), 497–508. [Google Scholar] [CrossRef] [PubMed]
- Ayers, G.D.; Cohen, A.S.; Bae, S.W.; Wen, X.; Pollard, A.; Sharma, S.; Claus, T.; Payne, A.; Geng, L.; Zhao, P.; Tantawy, M.N.; Gammon, S.T.; Manning, H.C. Reproducibility and repeatability of 18F-(2S, 4R)-4-fluoroglutamine PET imaging in preclinical oncology models. PLoS ONE 2025, 20(1), e0313123. [Google Scholar] [CrossRef] [PubMed]
- Tang, J.; Zhao, Y.; Chen, L.; Liu, Y.; Xie, H.; Wu, Z.; Zhang, L.; Fan, D.; Xu, X.; Ai, L.; Liu, Q.; Zhu, H.; Li, D. Distribution of glutamate and glutamine in tumor microenvironments of brain metastasis: Insights from biochemical analysis and molecular imaging. iScience 2025, 28(9), 113371. [Google Scholar] [CrossRef] [PubMed]
- Song, Y.; Cheng, W.; Tian, H.; Huang, Y.; Huang, C.; Jia, Y.; Xu, L. Nano-purpurin-Cu delivery via TPGS-induced macropinocytosis enables cuproptosis/metabolic synergy to ablate cancer stemness and Boost immunotherapy in colorectal cancer. Biomaterials 2026, 328, 123874. [Google Scholar] [CrossRef] [PubMed]
- Zhang, B.; Fan, R.; Hai, Y.; Chen, Y.; Lu, X.; Wang, W.; Dou, J.; Yan, J.; Su, C.; Chen, Y.; Yang, L.; Zhao, M.; Liang, L.; Wei, G. Immunometabolic Rewiring of Dendritic Cells to Overcome Glutamine-Driven Immune Suppression in Colorectal Cancer. Adv. Sci. (Weinh) 2026, 13(5), e13986. [Google Scholar] [CrossRef] [PubMed]
- Ruiz-Rodado, V.; Lita, A.; Dowdy, T.; Celiku, O.; Saldana, A.C.; Wang, H.; Yang, C.Z.; Chari, R.; Li, A.; Zhang, W.; Song, H.; Zhang, M.; Ahn, S.; Davis, D.; Chen, X.; Zhuang, Z.; Herold-Mende, C.; Walters, K.J.; Gilbert, M.R.; Larion, M. Metabolic plasticity of IDH1-mutant glioma cell lines is responsible for low sensitivity to glutaminase inhibition. Cancer Metab. 2020, 8, 23. [Google Scholar] [CrossRef] [PubMed]
- Yu, M.; Yang, D.; Chen, X.; Yang, Y.; Zhang, B.; Jiang, X.; Xing, L.; Yang, Y.; Sun, Y.; Li, N. Metabolic reprogramming in cancer: dysregulation of glucose, lipid, and amino acid pathways and therapeutic opportunities. Mol. Biomed. 2026, 7(1), 25. [Google Scholar] [CrossRef] [PubMed]
- Nan, D.; Yao, W.; Huang, L.; Liu, R.; Chen, X.; Xia, W.; Sheng, H.; Zhang, H.; Liang, X.; Lu, Y. Glutamine and cancer: metabolism, immune microenvironment, and therapeutic targets. Cell Commun. Signal 2025, 23(1), 45. [Google Scholar] [CrossRef] [PubMed]
- Su, M.; Qin, H.; Shen, J.; An, H.; Cao, Y. Beyond the tumor: Enhancing pancreatic cancer therapy through glutamine metabolism and innovative drug delivery. J. Cell Commun. Signal. 2025, 19(3), e70033. [Google Scholar] [CrossRef] [PubMed]
- Blatt, E.B.; DeBerardinis, R.J. Glutamine antagonists may KEAP lung cancer in check. Sci. Adv. 2024, 10(13), eado7808. [Google Scholar] [CrossRef] [PubMed]
- Djelti, F.; Hani, M.; Chetbani, Y.; Belaadi, A.; Ammarullah, M.I. Surviving the siege: A review on the metabolic hallmarks of cancer dormancy. Cancer Treat. Res. Commun. 2026, 47, 101123. [Google Scholar] [CrossRef] [PubMed]
- Novotná, K.; Tenora, L.; Prchalová, E.; Paule, J.; Alt, J.; Veeravalli, V.; Lam, J.; Wu, Y.; Šnajdr, I.; Gori, S.; Mettu, V.S.; Tsukamoto, T.; Majer, P.; Slusher, B.S.; Rais, R. Discovery of tert-Butyl Ester Based 6-Diazo-5-oxo-l-norleucine Prodrugs for Enhanced Metabolic Stability and Tumor Delivery. J. Med. Chem. 2023, 66(22), 15493–15510. [Google Scholar] [CrossRef] [PubMed]
- Hensley, C.T.; Wasti, A.T.; DeBerardinis, R.J. Glutamine and cancer: cell biology, physiology, and clinical opportunities. J. Clin. Invest. 2013, 123, 3678–3684. [Google Scholar] [CrossRef] [PubMed]
- Zhou, R.; Pantel, A.R.; Li, S.; Lieberman, B.P.; Ploessl, K.; Choi, H.; Blankemeyer, E.; Lee, H.; Kung, H.F.; Mach, R.H.; Mankoff, D.A. [18F](2S,4R)4-Fluoroglutamine PET Detects Glutamine Pool Size Changes in Triple-Negative Breast Cancer in Response to Glutaminase Inhibition. Cancer Res. 2017, 77, 1476–1484. [Google Scholar] [CrossRef] [PubMed]
- Hensley, C.T.; DeBerardinis, R.J. In vivo analysis of lung cancer metabolism: nothing like the real thing. J. Clin. Invest. 2015, 125, 495–497. [Google Scholar] [CrossRef] [PubMed]
- Cyriac, R.; Lee, K. Glutaminase inhibition as potential cancer therapeutics: current status and future applications. J. Enzym. Inhib. Med. Chem. 2024, 39, 2290911. [Google Scholar] [CrossRef]
- Best, S.A.; Gubser, P.M.; Sethumadhavan, S.; Kersbergen, A.; Negrón Abril, Y.L.; Goldford, J.; Sellers, K.; Abeysekera, W.; Garnham, A.L.; McDonald, J.A.; Weeden, C.E.; Anderson, D.; Pirman, D.; Roddy, T.P.; Creek, D.J.; Kallies, A.; Kingsbury, G.; Sutherland, K.D. Glutaminase inhibition impairs CD8 T cell activation in STK11-/Lkb1-deficient lung cancer. Cell Metab. 2022, 34(6), 874–887.e6. [Google Scholar] [CrossRef] [PubMed]
- Rukonge, P.A.; Kawuribi, V.; Sheng, Y.; Wei, Q.; Kun, Y.; Niyodukunda, P.; Wang, T.; Lu, Z.; Miao, Y.; Xu, K.; Yu, G. Multi-omics profiling of intercellular immunometabolic heterogeneity highlights in lung cancer: Crosstalk mechanisms and resistance in the tumor-immune interface. Crit. Rev. Oncol. Hematol. 2026, 219, 105094. [Google Scholar] [CrossRef] [PubMed]
- Liu, J.; Hong, S.; Gu, K. A pancancer analysis reveals the oncogenic role of glutaminase 1 (GLS1) in tumor metabolism and immune evasion: a bioinformatics analysis. Discov. Oncol. 2025, 16(1), 2156. [Google Scholar] [CrossRef] [PubMed]
- Lv, H.; Han, X.; Yang, Y.; Shen, J.; Yin, Y.; Liu, Y. Glutamine: a new strategy for targeted metabolic therapy in the tumor microenvironment. Cell Death Discov. 2025, 11(1), 459. [Google Scholar] [CrossRef] [PubMed]
- Vasan, K.; Chalmers, Z.R.; Kong, H.; Chandel, N.S. Tumor-intrinsic metabolic pathways essential for tumorigenesis and resistance to anti-PD1 in oncogenic Kras-driven lung adenocarcinoma. Cancer Metab. 2026. [Google Scholar] [CrossRef] [PubMed]
- Voor, S.F.; Cooper, A.J.L.; Pinto, J.T. Glutaminase I and glutamine transaminase-omega-amidase pathways in colorectal cancer: Metabolic reprogramming and emerging therapeutic strategies. Anal. Biochem. 2026, 709, 115989. [Google Scholar] [CrossRef] [PubMed]




| Drug | Model | Key effect(s)1 | Reference |
| PP242 | GBM2 mice xenografts | Inhibiting mTORC13 | [33] |
| Dihydroartemisinin | HCC4 in vitro | Activating apoptosis by increasing ROS5 | [34] |
| Chloroquine | NSCL56 in vitro | Inhibiting autophagy | [35] |
| Adriamycin | MCF-7 breast cancer cells in vitro | Inhibiting P-gp7 and overcoming drug resistance | [36] |
| Anti-PD-L18 | Ovarian cancer in vitro and in mice xenografts | Increasing apoptosis and immune response | [32] |
| Drug(s)/agent(s) | Model(s) | Key effect(s)1 | Reference |
| Dibenzozepine | ALL2 mice xenografts | γ-secretase inhibition, NOTCH13 cleavage, and activation of autophagy | [38] |
| 5-Fluorouracil | NSCLC4 in vitro | Inhibiting thymidylate synthase and CPSII5 | [39] |
| Etoposide and cisplatin | TNBC6 in vitro | Activating apoptosis by a BAX/BCL-2 mechanism | [40] |
| Dichloroacetate | CRC7 and cervical cancer cells in vitro | Decrease of PPP8 and activation of apoptosis | [41] |
| Bicalutamide | Prostate cancer in vitro and in rat xenografts | Blocking AR9 and lipid metabolism | [37] |
| FX-11 | TNBC6 mice xenografts and PDO10 | Inhibiting LDHA11 | [42] |
| PAM12 (ROS13) | TNBC6 in vitro | Activating apoptosis by DNA damage and inhibiting ATP14 production | [43] |
| Doxorubicin, Fe3+, EGCG15 and BPTES nanoparticles | PDAC16 in vitro, mice xenografts, and PDO9 | Activating apoptosis by increasing ROS12 and DNA damage | [44] |
| Anti-PD-L117 | Lung and colon cancer in vitro and in mice xenografts | Increasing Fas expression showing a synergistic antitumor effect | [45] |
| Drug(s) | Model(s) | Key effect(s)1 | Reference |
| AZD8055 | TNBC2 mice xenografts | Inhibiting mTORC13 | [50] |
| Everolimus | RCC4 mice xenografts | Inhibiting mTORC13 | [51] |
| MLN128 | Mice xenografts of lung SCC5, HNSCC6 and osteosarcoma | Inhibiting mTORC13 | [29] |
| TAK228 | Lung SCC5 mice xenografts | Inhibiting mTORC13 | [52] |
| CPI-613 | 2D culture, 3D culture, and mice xenografts of HNSCC6 | Inhibiting TCA7 cycle | [53] |
| THZ1 | NSCLC8 in vitro | Inhibiting CDK79 | [54] |
| Palbociclib | CRC10 mice xenografts | Inhibiting CDK4/611 | [55] |
| Palbociclib | Lung adenocarcinoma cells | Inhibiting CDK4/611 | [56] |
| 5-Fluorouracil | CRC10 mice xenografts | Inhibiting thymidylate synthase and inducing IL-812 to attract neutrophils into the tumor | [57] |
| 5-Fluorouracil | HCC13 mice xenografts | Inhibiting thymidylate synthase, enhancing oxidative stress, and increasing ferroptosis | [58] |
| 5-Fluorouracil and cisplatin | ESCC14 in vitro and mice xenografts | Increasing apoptosis targeting TIGAR15 | [59] |
| Cyclosporin A | NSCLC8 mice xenografts | Inducing NRF216 | [60] |
| Deferoxamine | HCC13 in vitro | Iron deficiency | [61] |
| V-9302 | PDAC17 in vitro | Inhibiting ASCT218 Gln transport | [62] |
| DRB-18 | ICC19 in vitro | Inhibiting glucose transport | [63] |
| Ursodeoxycholic acid | Liposarcoma mice xenografts | Inhibiting SLC7A1120 cystine transport and GSH synthesis | [64] |
| Aspirin | CRC10 mice xenografts | Inhibiting SLC7A1120 and SLC7A521 | [65] |
| EGCG22 | Multiple myeloma in vitro | Activating apoptosis by a BAX/BCL-2 mechanism | [66] |
| Venetoclax | AML23 in vitro | Inhibiting BCL-2 | [67] |
| BSO24, auranofin, RT25 | Cervix cancer in vitro and mice xenografts | Increasing oxidative stress | [68] |
| RT25 | HNSCC6 in vitro and mice xenografts | Increasing oxidative DNA damage and apoptosis | [69] |
| Dihydroartemisinin | GBM26 in vitro | Increasing oxidative stress and apoptosis | [22] |
| Oxamate, D609, doxorubicin | Breast cancer in vitro | Inhibiting LDH27 and PC-PLC28 | [48] |
| ENZA29, IACS30 | Prostate cancer cells in vitro and blood cells from patients with prostate cancer | Increasing ROS31 and decreasing oxidative phosphorylation | [46] |
| V-9202 | HCC13 in vitro and mice xenografts | Lowering Gln transport and GSH32, increasing ROS31, and apoptosis | [70] |
| Selumetinib | NSCLC8 in vitro and mice xenografts | Inhibiting ERK33, increasing ROS31 and autophagy | [47] |
| Osimertinib | Lung adenocarcinoma in vitro | Inhibiting tyrosine kinase | [71] |
| Sunitinib or axitinib | RCC4 mice xenografts | Inhibiting tyrosine kinase | [51] |
| anti-PD-134 or anti-PD-L135 | Mice bearing syngeneic colon carcinoma | Inhibiting immune checkpoint proteins and ligands | [72] |
| anti-CD15236 or anti-PD-134 | Melanoma cells in vitro and mice xenografts | Activating T-cell-mediated immunotherapy | [73] |
| Bevacizumab | Ovarian cancer mice xenografts | Inhibiting VEGF37 | [74] |
| Cabozantinib | RCC3 mice xenografts | Inhibiting VEGFR38 | [51] |
| Panitumumab | Metastatic RCC3 patients | Inhibiting EGFR39 | [75] |
| Cetuximab | CRC10 in vitro and mice xenografts | Inhibiting EGFR39 | [76] |
| Metformin | Osteosarcoma in vitro and in mice xenografts | Disrupting metabolism | [77] |
| Additional Drug | Model | Key effect(s)1 | Reference |
| Anti-PD-12 | Mice models bearing colon cancer, lymphoma, and melanoma | Increasing apoptosis and inhibiting antitumor immune response | [82] |
| None | GBM3 in vitro and in orthotopic mice | Inhibiting mTORC14 | [83] |
| EVax5 | Lung transgenic mice | Inhibiting EGFR6 | [84] |
| Anti-CD1527 or anti-PD-12 | Myeloid cells and mice xenografts | Activating T-cell-mediated immunotherapy | [85] |
| None | Thyroid cancer mice xenografts | Inhibiting CD478 and PD-L19 | [86] |
| BSO10 | GBM3 in vitro and mice intracranial xenografts | Inhibiting GSH11-dependent antioxidant capacity | [87] |
| Elimusertib | ACC12 in vitro and mice xenografts | Inhibiting DNA damage response | [88] |
| None | Prostate and bladder cancer in vitro and syngeneic heterotopic mouse models | Increasing apoptosis and decreasing TCA14 cycle and purine metabolism | [89] |
| Additional Drug | Model | Key effect(s)1 | Reference |
| None | GBM2 mice xenografts | Inhibiting mTORC13 | [33] |
| None | HCC4 in vitro | Activating apoptosis by increasing ROS5 | [34] |
| None | NSCL56 in vitro | Inhibiting autophagy | [35] |
| Anti-PD-17 | CADC8 in vitro and mice xenografts | Inhibiting cytokines | [90] |
| Trametinib | PDAC9 in vitro and syngeneic mice model | Inhibiting MAPK10 and ERK11 kinase 1/2 | [91] |
| RSL312 | HNSCC13 in vitro and mice xenografts | Inhibition of GPX414 and activation of ferroptosis | [92] |
| Anti-PD-17 | Orthotopic lung cancer mice | Inhibiting cytokines and increasing antitumor T cell response | [93] |
| None | Prostate cancer in vitro and mice xenografts | Activation of apoptosis, targeting TCA cycle and nucleotide synthesis | [94] |
| MTDIA15 | Prostate cancer in vitro and mice xenografts | Inhibition of MTAP16 | [95] |
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