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June 27, 2026Cell Death and Disease0 citationsOpen Access

Lactylation in cardiovascular disease: mechanisms and therapeutic potential

CFChenxi FengSWShaocong WangXCXinzhe Chen

Key Result

Lactylation acts as a critical epigenetic regulator in cardiovascular diseases, orchestrating macrophage polarization, endothelial dysfunction, and cardiomyocyte metabolic remodeling.

Key Points

  • The aim is to explore the mechanisms of lactylation and its implications in cardiovascular diseases.
  • Review of lactylation's effects on cardiovascular diseases and signaling pathways.
  • Analysis of analytical techniques such as LC-MS/MS and metabolic flux analysis.
  • Discussion of lactylation's dual effects on cardiac remodeling and repair.
  • Lactylation influences processes like macrophage polarization and endothelial dysfunction.
  • Context-dependent effects: promotes inflammation resolution while also driving fibrosis.
  • Targeting lactylation's regulatory enzymes shows promise for therapeutic interventions in CVDs.

PICO

P
Population
Cardiovascular diseases
E
Exposure / Comparator
Lactylation

Abstract

Abstract Lactate, traditionally regarded as a metabolic byproduct, has recently been recognized as a critical signaling molecule and an epigenetic regulator through the post-translational modification known as lactylation. Lactylation links cellular metabolic states to gene transcription by modifying lysine residues on histone and non-histone proteins, thereby influencing inflammation, immune responses, fibrosis, angiogenesis and energy metabolism. Emerging evidence demonstrates that lactylation plays pivotal roles in cardiovascular diseases (CVDs), including atherosclerosis, ischemic heart disease, heart failure and cardiomyopathies. Lactylation orchestrates macrophage polarization, endothelial dysfunction, vascular smooth muscle cell phenotypic switching, cardiomyocyte metabolic remodeling and immune cell activation, ultimately shaping disease initiation and progression. Moreover, lactylation exhibits context-dependent dual effects: promoting reparative processes such as inflammation resolution and tissue healing, while also driving pathological remodeling, fibrosis, mitochondrial dysfunction and maladaptive immune activation. Advances in analytical techniques including LC-MS/MS, lactylation-specific antibodies, and metabolic flux analysis have enabled comprehensive profiling of lactylation dynamics in cardiovascular tissues. Given its central role in metabolic–epigenetic crosstalk, targeting lactylation and its regulatory enzymes represents a promising therapeutic strategy for modulating cardiac injury, remodeling and repair. This review summarizes the molecular basis, cellular functions, pathological implications and therapeutic potential and limited of lactylation in CVDs, providing new insights into its translational value for cardiovascular medicine.

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Cite This Study

Feng et al. (2026) conducted a review in Cardiovascular diseases. Lactylation was evaluated. Lactylation acts as a critical epigenetic regulator in cardiovascular diseases, orchestrating macrophage polarization, endothelial dysfunction, and cardiomyocyte metabolic remodeling.

synapsesocial.com/papers/6a3f981b125782b61d865ce0https://doi.org/10.1038/s41419-026-08977-7
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Lactylation in Cardiovascular Diseases: Epigenetic Mechanisms and Therapeutic Potential2025 · 1 citations
  2. 2Lactylation in Cardiovascular Diseases: Current Progress and Perspectives2025 · 11 citations
  3. 3Lactylation at the metabolic-epigenetic interface in cardiovascular diseases: context-dependent mechanisms and translational roadmap2026 · 5 citations
  4. 4Lactylation in Vascular Diseases: A Double-Edged Sword2025 · 3 citations
  5. 5From Byproduct to Regulator: The Expanding Role of Lactate and Lactylation in Cardiovascular Physiology and Disease2026