巨噬细胞极化
细胞生物学
化学
串扰
糖酵解
线粒体
极化(电化学)
生物物理学
脂肪酸
重编程
体内
免疫系统
代谢途径
新陈代谢
焊剂(冶金)
线粒体融合
生物化学
巨噬细胞
多细胞生物
伤口愈合
动力学(音乐)
炎症
生物
代谢控制分析
线粒体内膜
光遗传学
作者
Qiusheng Shi,Hao Jia,Jianfei Dong,L Li,Jingqi Cao,Xun Chen,Zhenzhen Jia,Jing Na,Zhijie Yang,Xinyuan Chen,Yubo Fan,Shuhua Yue,Lisha Zheng
摘要
Photobiomodulation (PBM) provides a non-invasive means to regulate immune function, yet its clinical translation is hindered by a lack of mechanistic links between light parameters and biological outcomes. Here, we demonstrate that specific wavelengths act as metabolic switches that direct macrophage polarization through the selective engagement of distinct immunometabolic pathways. In both in vitro and in vivo wound healing models, 850-nm light enhances fatty acid oxidation and lipid droplet-mitochondria interactions, driving anti-inflammatory M2 polarization and accelerating tissue repair. Conversely, 625 nm light increases glycolytic flux and lactate production, promoting a pro-inflammatory M1 state that delays healing. We identify mitochondrial dynamics as the key interface: 850 and 625 nm light promote mitochondrial fusion and fission, respectively, to dictate metabolic routing. Causality was confirmed via metabolic interventions, which reversed wavelength-specific polarization outcomes. Together, these findings define photo-immunometabolism as a wavelength-dependent framework in which light regulates macrophage fate through coordinated control of mitochondrial dynamics and metabolism. This framework provides a mechanistic basis for precision, wavelength-tailored PBM therapies for wound repair and other immune-mediated inflammatory disorders.
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