Advanced Science· 2026Q1· Review
Lactate Signal: Modulator of Cellular Energy Production and Anabolism
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- Q1SCImago
- 2026year
Short summary
Lactate, beyond being a metabolic byproduct, acts as a signaling molecule that regulates cellular energy, carbon distribution, redox balance, and anabolism through non-covalent interactions and post-translational modifications like lactylation.
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Key points
- Lactate functions as a signaling metabolite, influencing energy production, carbon redistribution, redox balance, and anabolism.
- Non-covalent mechanisms like transporter flux, receptor sensing, and direct protein binding mediate rapid metabolic-to-signaling pathway coupling.
- Covalent modifications, particularly histone and non-histone lactylation, translate lactate-associated states into dynamic regulatory changes.
- Lactylation affects diverse cellular processes including transcriptional regulation, immune signaling, DNA repair, and cancer progression.
AI-generated from the title and abstract; the full text is not read.
Abstract
ABSTRACT Lactate is no longer viewed simply as a glycolytic end‐product, but as a compartmentalized signaling metabolite that coordinates energy production, carbon redistribution, redox balance, and anabolic commitment. This review discusses lactate as a regulator of the catabolism‐anabolism axis, emphasizing two major patterns of molecular interpretation. First, lactate acts through non‐covalent mechanisms, including transporter‐mediated flux, receptor‐dependent sensing, pH‐linked effects, and direct binding to intracellular proteins. These processes allow lactate‐rich states to rapidly couple metabolic flux to signaling pathways. Second, lactate‐associated metabolic states are translated into the dynamic and reversible change of covalent post‐translational modifications, including histone and non‐histone lactylation. Histone lactylation connects glycolytic metabolism to transcriptional regulation, whereas non‐histone lactylation expands lactate‐dependent control to immune signaling, mitochondrial metabolism, DNA repair, cardiovascular stress, tissue remodeling, and cancer progression. We further discuss how extracellular, cytosolic, mitochondrial‐associated, and nuclear lactate pools provide distinct biochemical contexts in which lactate‐dependent mechanisms can operate. By integrating lactate transport, receptor sensing, protein binding, metabolism, and lactylation, this Review uses compartmental organization as a framework for synthesizing how lactate‐rich states influence metabolic adaptation, stress responses, immune regulation, tissue remodeling, disease progression, and, in selected contexts, anabolic or reparative programs.
The authors' abstract, as published at the source. Advanced Science, 2026 · DOI ↗
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