A novel nanotherapeutic strategy: rescuing nucleus pulposus cells from fatty acid metabolic disorder and pyroptosis through ACOT13 by Chinese herbal formula nanoparticles

上睑下垂 脂肪酸 脂肪酸代谢 代谢途径 医学 化学 中医药 线粒体 生物信息学 新陈代谢 细胞生物学 基因敲除 细胞色素P450 生物化学 药理学 生物 核心 病态的 计算生物学 戒毒(替代医学) 代谢紊乱 机制(生物学) 药物发现
作者
Weihui Qi,Mingchao Yuan,Du He,Fei Dou,Duodan Zhang,Ke Lv,Jie Yang,Zhimin Miao,Liangping Zhang,Xinning Mao,Zhenglin Mei,Hongting Jin,Hao Pan,Dong Wang
出处
期刊:Journal of Nanobiotechnology [BioMed Central]
卷期号:24 (1)
标识
DOI:10.1186/s12951-026-04104-y
摘要

Low back pain (LBP) is a widespread global health concern that profoundly impairs patients' quality of life and productivity. Intervertebral disc degeneration (IVDD) is considered a major pathological factor in low back pain, yet the underlying mechanisms of IVDD remain incompletely understood. Current treatment strategies primarily focus on symptomatic relief through medication or surgical removal of degenerated tissue, lacking effective interventions that can reverse the degenerative process. This study investigates the role of fatty acid metabolism in IVDD and proposes a novel therapeutic strategy. Through single-cell sequencing and multi-omics analysis of clinical samples, we identified ACOT13 as a key regulator of fatty acid metabolism. We demonstrated that under pathological conditions, ACOT13 inhibits the AMPK/ACC signaling pathway, leading to disrupted fatty acid metabolism, mitochondrial dysfunction, and subsequently, pyroptosis, which accelerates IVDD progression. Furthermore, we developed an innovative self-assembled nanoparticles based on a traditional Chinese medicine formula. Employing molecular dynamics simulations, we elucidate the self-assembly mechanism, identifying the core constituents and establishing the key roles of hydrophobic interactions, π-π stacking, and hydrogen bonding as the driving forces. Moreover, we revealed that this nano-formulation suppresses ACOT13 function, activates the AMPK/ACC pathway, and improves fatty acid metabolism and mitochondrial function, thereby suppressing pyroptosis and ultimately alleviating IVDD progression. In summary, this study explores a novel mechanism of IVDD from the perspective of fatty acid metabolism and identifies key active components (N-QJZG) from a traditional Chinese medicine decoction, providing new insights for IVDD treatment and promoting the modernization of traditional Chinese medicine research.
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