Aug 2026· Nature Communications· Vol 17· 1 citation· 81 references
Medicine
TL;DR
It is demonstrated that pharmacological inhibition of the glyoxalase system—the major pathway for MGO detoxification—restores drug sensitivity in patient-derived cells and xenograft models, revealing a context-dependent metabolic vulnerability in AKR1A1 loss conditions.
Abstract
Metabolic reprogramming is a defining feature of cancer; however, how it contributes to therapeutic resistance remains incompletely understood. Here we show that loss of aldo-ketoreductase 1A1 (AKR1A1) in renal cell carcinoma (RCC) and hepatocellular carcinoma (HCC) disrupts terminal glycolytic flux and lactate production through S-nitrosylation-mediated inhibition of pyruvate kinase, resulting in the accumulation of methylglyoxal (MGO). In multiple AKR1A1-deficient models, but not in those endogenously expressing the C423/424 A mutant of pyruvate kinase M2, elevated MGO triggers autophagic degradation of Kelch-like ECH-associated protein 1, leading to Nuclear factor erythroid 2-Related Factor 2 (NRF2) activation and transcriptional reprogramming. This NRF2-driven response enhances chemoresistance and promotes tumor cell migration, two hallmarks of aggressive cancer. Therapeutically, we demonstrate that pharmacological inhibition of the glyoxalase system—the major pathway for MGO detoxification—restores drug sensitivity in patient-derived cells and xenograft models, revealing a context-dependent metabolic vulnerability in AKR1A1 loss conditions. These findings identify AKR1A1 as a metabolic tumor suppressor and uncover crosstalk between S-nitrosylation and glycation as a key regulatory axis linking metabolic reprogramming to NRF2-driven therapy resistance, offering glyoxalase inhibition as a potential precision treatment strategy for RCC and HCC. Aldo-ketoreductase 1A1 (AKR1A1), a detoxifying enzyme, is reported to have an alternative role in regulating S-nitrosylation. Here, the authors show that AKR1A1 regulates S-nitrosylation of PKM2, and its loss leads to metabolic changes that promote chemoresistance and cell migration in liver and renal cancers.
L-lactate is generally elevated in tumors and acts as a signaling molecule that promotes tumor progression. Here, we reveal that malic enzyme 1 (ME1) functions as a previously unrecognized sensor of L-lactate through direct binding at arginine 155 (R155), thereby potentiating malignancy. Mechanistically, L-lactate bind...
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Metabolic reprogramming and epigenetic remodeling of hepatic stellate cells (HSCs) represent central driving events in liver fibrosis. Lactylation, a lactate-mediated post-translational modification (PTM), is proposed to converge on histone H3 lysine 18 lactylation (H3K18La) through the HK2-KAT8 positive feedback loop,...
Zhi-Wei Dong, Fei-Bo Xu, Mei Ye et al.· Frontiers in Pharmacology· 0 citations
This discovery fundamentally redefines the pathological role of NRF2 and positions NRF2 inhibition as a standalone, tumor-selective therapeutic strategy to eliminate Kras-driven malignancies by unleashing ferroptosis.
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The tumor suppressor KDM6A/UTX, a histone demethylase and a 2-oxoglutarate-dependent dioxygenase, is frequently lost in many cancer types. We show that KDM6A loss pervasively activates oxidative phosphorylation in several solid tumors, generating a pseudo-hyperoxic environment, opposite from the pseudo-hypoxia observed...
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Disulfidptosis, a recently identified form of regulated cell death driven by toxic intracellular disulfide accumulation and subsequent collapse of the actin cytoskeleton, represents a promising therapeutic vulnerability in hepatocellular carcinoma (HCC), particularly for tumors exhibiting metabolic reprogramming and re...
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