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Updated: Jun 5, 2026

Site-Specific Lysine Lactylation via Genetic Code Expansion in E. coli and Mammalian Cells
Published on: February 24, 2026
Targeting the lactate-lactylation-glucose uptake axis: Cryptotanshinone reprograms metabolic-epigenetic crosstalk in
Xiaochen Ni1, Chuhang Wang1, Kaiyuan Zhang1
1School of Basic Medical Sciences, Zhejiang Chinese Medical University, Zhejiang, 310053, China; Zhejiang Key Laboratory of Blood-Stasis-Toxin Syndrome, Zhejiang Chinese Medical University, Zhejiang, 310053, China.
Background:
Gastric cancer remains a leading cause of cancer-related mortality worldwide, with chemotherapy resistance and severe side effects posing significant challenges. Metabolic reprogramming, particularly lactate-driven histone lactylation, plays a crucial role in tumor progression. Cryptotanshinone (CTS), a bioactive compound from Salvia miltiorrhiza, has demonstrated anti-tumor properties, yet its mechanisms in regulating lactate metabolism and lactylation in gastric cancer remain unclear.
Purpose:
This study aimed to elucidate the molecular mechanisms by which CTS inhibits gastric cancer progression, focusing on its effects on enolase activity, lactate production, histone lactylation, and downstream metabolic-epigenetic regulation.
Methods:
We screened Salvia miltiorrhiza ethanol extract (SME) and identified CTS as a key component targeting enolase. Molecular docking, surface plasmon resonance, and limited proteolysis-mass spectrometry were used to confirm CTS-ENO1 interaction. In vitro and in vivo models, including cell lines, xenografts, and patient-derived organoids, were employed to assess anti-tumor effects. Glycolytic function, histone lactylation, and gene expression were evaluated via seahorse assay, western blot, Cut&Tag, and RNA-seq.
Results:
CTS directly binds to and inhibits enolase ENO1, reducing phosphoenolpyruvate (PEP) and lactate production. Decreased lactate levels led to reduced global histone lactylation, particularly at H3K18. CTS also enhanced HDAC2-mediated de-lactylation by lowering PEP, which otherwise inhibits HDAC2. Downregulation of H3K18la suppressed MGAT4A expression, impairing GLUT1 membrane localization and glucose uptake, thereby forming a feedback loop that inhibits glycolysis. CTS significantly suppressed tumor growth in xenograft and patient-derived organoid models, effects reversible by exogenous lactate.
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