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Myocardial Lipid Metabolism Imbalance: The Pathological Core and Novel Diagnostic-Therapeutic Directions of Cardiovascular Diseases.

Myocardial Lipid Metabolism Imbalance: The Pathological Core and Novel Diagnostic-Therapeutic Directions of Cardiovascular Diseases.

期刊: Journal of biochemical and molecular toxicology 日期: 2026-08-01 PMID: 42504609 DOI: 10.1002/jbt.71033 浏览: 24
作者: Xie P, Zeng Q, Wang H, She M
P, X., Q, Z., H, W., & M, S. (2026). Myocardial Lipid Metabolism Imbalance: The Pathological Core and Novel Diagnostic-Therapeutic Directions of Cardiovascular Diseases.. Journal of biochemical and molecular toxicology. https://doi.org/10.1002/jbt.71033
P X, Q Z, H W, M S. Myocardial Lipid Metabolism Imbalance: The Pathological Core and Novel Diagnostic-Therapeutic Directions of Cardiovascular Diseases.. Journal of biochemical and molecular toxicology. 2026; doi: 10.1002/jbt.71033
P X, Q Z, H W, et al. Myocardial Lipid Metabolism Imbalance: The Pathological Core and Novel Diagnostic-Therapeutic Directions of Cardiovascular Diseases.[J]. Journal of biochemical and molecular toxicology. 2026. DOI: 10.1002/jbt.71033.
@article{p2026,
  author = {Xie P and Zeng Q and Wang H and She M},
  title = {Myocardial Lipid Metabolism Imbalance: The Pathological Core and Novel Diagnostic-Therapeutic Directions of Cardiovascular Diseases.},
  journal = {Journal of biochemical and molecular toxicology},
  year = {2026},
  doi = {10.1002/jbt.71033},
  note = {PMID: 42504609},
}
TY  - JOUR
AU  - Xie P
AU  - Zeng Q
AU  - Wang H
AU  - She M
TI  - Myocardial Lipid Metabolism Imbalance: The Pathological Core and Novel Diagnostic-Therapeutic Directions of Cardiovascular Diseases.
T2  - Journal of biochemical and molecular toxicology
PY  - 2026
DO  - 10.1002/jbt.71033
AN  - PMID:42504609
ER  - 

摘要

Cardiac lipid metabolism is fundamental to myocardial energy homeostasis, with fatty acid oxidation (FAO) supplying the majority of ATP in the healthy adult heart. This review synthesizes the core regulatory network governing cardiac lipid metabolism, encompassing lipid droplet dynamics mediated by perilipins (e.g., Plin5, Plin2), fatty acid uptake via CD36, systemic lipid modulation by apolipoproteins (e.g., APOC3), and the central energy-sensing AMPK/PGC-1α/PPARα axis. Dysregulation of this network initiates a self-perpetuating lipotoxic cycle, characterized by the accumulation of toxic lipid intermediates (e.g., diacylglycerols, ceramides), oxidative stress, and inflammatory activation, which serves as a common pathological mechanism across diverse cardiovascular diseases (CVDs), including atherosclerosis, heart failure, diabetic cardiomyopathy, and ischemic injury. Emerging from this mechanistic understanding is a promising landscape of biomarkers-such as specific ceramide species, the ApoB/ApoA-1 ratio, and circulating perilipins-and targeted therapeutic strategies, including APOC3 inhibitors, SGLT2 inhibitors, and Plin5-directed therapies. Future advances will depend on integrating multi-omics technologies and precision medicine approaches to tailor interventions to specific metabolic phenotypes, thereby opening new avenues for the prevention and treatment of CVDs.

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