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A preserved TGFβ cytostatic response through DLD-mediated metabolic modulation undermines anti-TGFβ therapy in gastric cancer.

Nature communications 2025 Vol.16(1) p. 10016

Pan YQ, Han Y, Qian ZY, Zhang XY, Wang TT, Cai ZR, Chen H, Li Y, Liao K, Zheng YQ, Zhang YY, Wu QN, Wu HX, Tian T, Chen W, Chen Y, Zeng ZL, Liu ZX, Piao HL, Guan XY, Xu RH, Ju HQ

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Despite the well-known role of the transforming growth factor-β (TGFβ) pathway in cancer progression, therapies targeting it have largely failed in the clinic.

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APA Pan YQ, Han Y, et al. (2025). A preserved TGFβ cytostatic response through DLD-mediated metabolic modulation undermines anti-TGFβ therapy in gastric cancer.. Nature communications, 16(1), 10016. https://doi.org/10.1038/s41467-025-64997-5
MLA Pan YQ, et al.. "A preserved TGFβ cytostatic response through DLD-mediated metabolic modulation undermines anti-TGFβ therapy in gastric cancer.." Nature communications, vol. 16, no. 1, 2025, pp. 10016.
PMID 41238541

Abstract

Despite the well-known role of the transforming growth factor-β (TGFβ) pathway in cancer progression, therapies targeting it have largely failed in the clinic. This suggests our understanding of TGFβ's function is incomplete. Here we show that this therapeutic failure is rooted in a fundamental paradox: while TGFβ promotes malignant traits in gastric cancer, many cancer cells remain sensitive to its potent tumor-suppressive effects. We uncover that this suppression works by impairing the cell's energy metabolism through modulating dihydrolipoamide dehydrogenase (DLD). Therefore, broadly blocking the TGFβ pathway can inadvertently release a natural brake on tumor growth. Based on this insight, we demonstrate that co-targeting this metabolic vulnerability with an inhibitor (devimistat) alongside an anti-TGFβ agent significantly enhances therapeutic efficacy in gastric cancer models. This combination approach presents a promising strategy to overcome the limitations of current therapies.

MeSH Terms

Stomach Neoplasms; Humans; Transforming Growth Factor beta; Cell Line, Tumor; Animals; Mice; Xenograft Model Antitumor Assays; Signal Transduction; Cell Proliferation; Energy Metabolism; Female; Benzamides; Mice, Nude; Pyrazoles; Quinolines

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