后肢
药理学
下调和上调
骨骼肌
体内
免疫印迹
医学
缺血
细胞凋亡
心肌细胞
转录组
化学
炎症
信号转导
NF-κB
内科学
水肿
山奈酚
小胶质细胞
内分泌学
氧化应激
再灌注损伤
胫骨前肌
污渍
作者
Yuehe Liu,Muliang Lin,Hong Qian,Weiwei Wang,Tao Yuan,Zhengrong Ren,Jianlun Hu,Yang Wang,Guoyin Liu,Zhongyang Sun,Peng Gou,Zhaorui Sun,Yuanyuan Chen,Yan Sun,Yunfei He,Xin Yu,Shinan Nie
摘要
Limb ischemia-reperfusion (I/R) injury is a life-threatening complication of acute limb ischemia that can result in severe skeletal muscle damage and limb loss, yet effective pharmacological therapies remain limited. Kaempferol (KAE), a naturally occurring dietary flavonoid with well-documented anti-inflammatory, antioxidant, and anti-apoptotic properties, has been shown to confer protection in myocardial and cerebral I/R models. Nevertheless, its therapeutic potential and molecular mechanisms in limb I/R injury have not yet been elucidated. In this study, we systematically investigated the protective effects and underlying mechanisms of KAE in a mouse hindlimb I/R model. A network pharmacology approach was initially applied to provide a global overview of potential biological processes associated with KAE treatment. The therapeutic efficacy and molecular mechanisms of KAE were subsequently evaluated using in vivo experiments combined with transcriptomic profiling. Mice subjected to 4 h of hindlimb ischemia followed by 24 h of reperfusion received KAE (50 or 100 mg/kg, intraperitoneally) for 7 consecutive days prior to I/R induction. KAE markedly improved hindlimb microcirculation, alleviated tissue edema and infarction, preserved muscle histological integrity, and attenuated elevations of circulating muscle injury biomarkers. In parallel, KAE significantly suppressed I/R-induced oxidative stress, inflammatory infiltration, and apoptotic cell death, as evidenced by reduced ROS accumulation, decreased pro-inflammatory cytokine expression, and favorable modulation of apoptosis-related proteins. Transcriptomic analysis revealed pronounced activation of inflammatory pathways and suppression of the PPAR signaling pathway following limb I/R injury, whereas KAE treatment selectively restored PPAR pathway activity while inhibiting NF-κB signaling. qRT-PCR and Western blot analyses further demonstrated that KAE predominantly upregulated PPARα expression and reduced NF-κB p65 phosphorylation in reperfused skeletal muscle. Collectively, these findings provide comprehensive evidence that KAE protects against hindlimb I/R injury, with activation of PPARα signaling and concomitant suppression of NF-κB-driven inflammation representing a proposed mechanism, thereby supporting KAE as a promising pharmacological candidate for limb I/R injury.
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