Malic enzyme 1 senses L-lactate to determine tumor heterogeneity

Abstract 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 binding promotes the nuclear translocation of ME1, a process involving reduced acetylation at lysine 362 (K362) and facilitated by nuclear import of karyopherin-α 4 (KPNA4). Nuclear accumulation of ME1 enhances metastatic potential, which is correlated with increased interaction with hepatoma-derived growth factor (HDGF) and acquisition of an epithelial‒mesenchymal transition (EMT)-related phenotype. Under nutrient-deficient conditions, L-lactate promotes the assembly of a ME1-lactate dehydrogenase B (LDHB) complex, which enhances oxidative phosphorylation (OXPHOS) and increases ATP production, suggesting a metabolic adaptive mechanism that supports tumor cell survival. Notably, the ME1 R155A mutation, which disrupts L-lactate binding, abolishes the protumorigenic effect of the L-lactate-ME1 axis on tumor progression in vivo. In conclusion, our findings identify ME1 as a direct sensor of L-lactate and support a model in which lactate-mediated signaling and metabolic adaptation converge on ME1 to regulate tumor cell plasticity in a context-dependent manner under heterogeneous metabolic conditions. These insights advance our understanding of the spatiotemporal control of metabolic adaptation in cancer and reveal a potential therapeutic target.

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Publication Details

Journal
Signal Transduction and Targeted Therapy
Published
2026-09-11
DOI
https://doi.org/10.1038/s41392-026-02839-6
Primary Topic
Cancer, Hypoxia, and Metabolism
Type
article
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article

Malic enzyme 1 senses L-lactate to determine tumor heterogeneity

Wenyu Wen, Miao Yin, Hui Ming, Kewen Hu et al.
Signal Transduction and Targeted Therapy
Cancer, Hypoxia, and Metabolism
article

Malic enzyme 1 senses L-lactate to determine tumor heterogeneity

Wenyu Wen, Miao Yin, Hui Ming, Kewen Hu, Siyi Cao, Shijing Huang, Qun‐Ying Lei, Chao Wang, Qing Wu, Yüan Shen, Zhengjun Chen, Xiao Shen, Jian Wang, Xiao-Lin Guan, Aihong Gu
article en

Abstract

Abstract 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 binding promotes the nuclear translocation of ME1, a process involving reduced acetylation at lysine 362 (K362) and facilitated by nuclear import of karyopherin-α 4 (KPNA4). Nuclear accumulation of ME1 enhances metastatic potential, which is correlated with increased interaction with hepatoma-derived growth factor (HDGF) and acquisition of an epithelial‒mesenchymal transition (EMT)-related phenotype. Under nutrient-deficient conditions, L-lactate promotes the assembly of a ME1-lactate dehydrogenase B (LDHB) complex, which enhances oxidative phosphorylation (OXPHOS) and increases ATP production, suggesting a metabolic adaptive mechanism that supports tumor cell survival. Notably, the ME1 R155A mutation, which disrupts L-lactate binding, abolishes the protumorigenic effect of the L-lactate-ME1 axis on tumor progression in vivo. In conclusion, our findings identify ME1 as a direct sensor of L-lactate and support a model in which lactate-mediated signaling and metabolic adaptation converge on ME1 to regulate tumor cell plasticity in a context-dependent manner under heterogeneous metabolic conditions. These insights advance our understanding of the spatiotemporal control of metabolic adaptation in cancer and reveal a potential therapeutic target.

Signal Transduction and Targeted TherapyVol. 11(1)
Shanghai Medical College of Fudan University (CN), Chinese Academy of Sciences (CN), Fudan University (CN), Fudan University Shanghai Cancer Center (CN), Center for Excellence in Molecular Cell Science (CN), Huashan Hospital (CN)
Openalex Percentile: Top 14%
Cancer, Hypoxia, and Metabolism
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