巨噬细胞
细胞生物学
重编程
功能(生物学)
作用机理
炎症
化学
生物
传出细胞增多
磷脂酰胆碱
机制(生物学)
脂质代谢
表型
生物化学
脂质信号
效应器
基因表达调控
吞噬作用
基因敲除
生物活性
脂滴
脂类学
基因
巨噬细胞极化
作者
Miguel Ángel Bermúdez Arias,Clara Meana,Alvaro Garrido,Alfonso Pérez‐Encabo,Marı́a A. Balboa,Jesús Balsinde
标识
DOI:10.1016/j.biopha.2025.118652
摘要
Inflammatory processes are central to the progression of numerous chronic conditions, including cardiovascular and metabolic disorders, with macrophages playing a pivotal role in these responses. Monounsaturated fatty acids, including palmitoleic acid (16:1 n - 7), have been implicated in modulating inflammation, yet their precise molecular mechanisms of action remain incompletely understood. Notably, in macrophages, 16:1 n - 7 is preferentially esterified into a specific phosphatidylcholine (PC) species, PC(16:0/16:1 n - 7), raising the possibility that its biological activity is governed by this lipid-bound form. Here, we demonstrate that the anti-inflammatory effects of 16:1 n - 7 in macrophages are mediated through its incorporation into this PC species. Using synthetic phospholipids and multiple activation stimuli, we show that PC(16:0/16:1 n - 7) directly regulates macrophage activation. It suppresses NF-κB signaling, reprograms gene expression, and promotes a shift toward an anti-inflammatory, M2-like phenotype that enhances phagocytic capacity. These effects are preserved in ether analogs resistant to phospholipase-mediated hydrolysis, confirming that the release of free 16:1 n - 7 is not required. These findings reveal a previously unrecognized lipid-driven mechanism of immunomodulation, in which specific structural features of PC(16:0/16:1 n - 7) confer intrinsic bioactivity. Our study broadens understanding of immunometabolic regulation by membrane phospholipids, and provides a mechanistic basis for the pharmacotherapeutic potential of defined lipid species in reprogramming macrophage function in inflammatory diseases.
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