A novel antifolate suppresses growth of FPGS-deficient cells and overcomes methotrexate resistance

Publication date

2023-11-01

Authors

van der Krift, Felix
Zijlmans, Dick W
Shukla, RhythmORCID 0000-0003-1792-6582ISNI 0000000492921252
Javed, AliISNI 0000000523880319
Koukos, Panagiotis I
Schwarz, Laura LE
Timmermans-Sprang, ElisabethISNI 0000000492958370
Maas, Peter Em
Gahtory, Digvijay
van den Nieuwboer, Maurits

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Document Type

Article
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cc_by

Abstract

Cancer cells make extensive use of the folate cycle to sustain increased anabolic metabolism. Multiple chemotherapeutic drugs interfere with the folate cycle, including methotrexate and 5-fluorouracil that are commonly applied for the treatment of leukemia and colorectal cancer (CRC), respectively. Despite high success rates, therapy-induced resistance causes relapse at later disease stages. Depletion of folylpolyglutamate synthetase (FPGS), which normally promotes intracellular accumulation and activity of natural folates and methotrexate, is linked to methotrexate and 5-fluorouracil resistance and its association with relapse illustrates the need for improved intervention strategies. Here, we describe a novel antifolate (C1) that, like methotrexate, potently inhibits dihydrofolate reductase and downstream one-carbon metabolism. Contrary to methotrexate, C1 displays optimal efficacy in FPGS-deficient contexts, due to decreased competition with intracellular folates for interaction with dihydrofolate reductase. We show that FPGS-deficient patient-derived CRC organoids display enhanced sensitivity to C1, whereas FPGS-high CRC organoids are more sensitive to methotrexate. Our results argue that polyglutamylation-independent antifolates can be applied to exert selective pressure on FPGS-deficient cells during chemotherapy, using a vulnerability created by polyglutamylation deficiency.

Keywords

Acute lymphoblastic-leukemia, Antiopportunistic infection agents, Cancer-cells, Drug, Folate, Folylpolyglutamate synthetase, Mammalian-cells, Methotrexate, One-carbon metabolism, Resistance, SDG 3 - Good Health and Well-being

Citation

van der Krift, F, Zijlmans, D W, Shukla, R, Javed, A, Koukos, P I, Schwarz, L LE, Timmermans-Sprang, E P, Maas, P E, Gahtory, D, van den Nieuwboer, M, Mol, J A, Strous, G J, Bonvin, A M, van der Stelt, M, Veldhuizen, E J, Weingarth, M, Vermeulen, M, Klumperman, J & Maurice, M M 2023, 'A novel antifolate suppresses growth of FPGS-deficient cells and overcomes methotrexate resistance', Life Science Alliance, vol. 6, no. 11, e202302058. https://doi.org/10.26508/lsa.202302058