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苍术素通过抗氧化作用抑制果糖诱导的人足细胞过度迁移,下调 TRPC6/p-CaMK4 信号通路。

Atractylodin inhibits fructose-induced human podocyte hypermotility via anti-oxidant to down-regulate TRPC6/p-CaMK4 signaling.

机构信息

Institute of Chinese Medicine, School of Life Sciences, Nanjing University, Nanjing, 210023, PR China.

Institute of Chinese Medicine, School of Life Sciences, Nanjing University, Nanjing, 210023, PR China.

出版信息

Eur J Pharmacol. 2021 Dec 15;913:174616. doi: 10.1016/j.ejphar.2021.174616. Epub 2021 Nov 13.

Abstract

High fructose has been reported to drive glomerular podocyte oxidative stress and then induce podocyte foot process effacement in vivo, which could be partly regarded as podocyte hypermotility in vitro. Atractylodin possesses anti-oxidative effect. The aim of this study was to explore whether atractylodin prevented against fructose-induced podocyte hypermotility via anti-oxidative property. In fructose-exposed conditionally immortalized human podocytes, we found that atractylodin inhibited podocyte hypermotility, and up-regulated slit diaphragm proteins podocin and nephrin, and cytoskeleton protein CD2-associated protein (CD2AP), α-Actinin-4 and synaptopodin expression, which were consistent with its anti-oxidative activity evidenced by up-regulation of catalase (CAT) and superoxide dismutase (SOD) 1 expression, and reduction of reactive oxygen species (ROS) production. Atractylodin also significantly suppressed expression of transient receptor potential channels 6 (TRPC6) and phosphorylated Ca/calmodulin-dependent protein kinase IV (CaMK4) in cultured podocytes with fructose exposure. Additionally, in fructose-exposed podocytes, CaMK4 siRNA up-regulated synaptopodin and reduced podocyte hypermotility, whereas, silencing of TRPC6 by siRNA decreased p-CaMK4 expression, inhibited podocyte hypermotility, showing TRPC6/p-CaMK4 signaling activation in podocyte hypermotility under fructose condition. Just like atractylodin, antioxidant N-acetyl-L-cysteine (NAC) could inhibit TRPC6/p-CaMK4 signaling activation to reduce fructose-induced podocytes hypermotility. These results first demonstrated that the anti-oxidative property of atractylodin may contribute to the suppression of podocyte hypermotility via inhibiting TRPC6/p-CaMK4 signaling and restoring synaptopodin expression abnormality.

摘要

高果糖已被报道可导致肾小球足细胞的氧化应激,进而在体内诱导足细胞足突融合,这在体外可部分视为足细胞的过度活跃。苍术具有抗氧化作用。本研究旨在探讨苍术是否通过抗氧化作用来防止果糖诱导的足细胞过度活跃。在果糖暴露的条件永生化人足细胞中,我们发现苍术可抑制足细胞的过度活跃,并上调裂孔隔膜蛋白足突蛋白和nephrin,以及细胞骨架蛋白 CD2 相关蛋白 (CD2AP)、α-肌动蛋白-4 和突触蛋白的表达,这与其抗氧化活性一致,表现为过氧化氢酶 (CAT) 和超氧化物歧化酶 (SOD) 1 的表达上调,活性氧 (ROS) 生成减少。苍术还显著抑制了果糖暴露培养的足细胞中转瞬受体电位通道 6 (TRPC6) 和磷酸化钙/钙调蛋白依赖性蛋白激酶 IV (CaMK4) 的表达。此外,在果糖暴露的足细胞中,CaMK4 siRNA 上调了突触蛋白,减少了足细胞的过度活跃,而 siRNA 沉默 TRPC6 则降低了 p-CaMK4 的表达,抑制了足细胞的过度活跃,表明在果糖条件下足细胞过度活跃时 TRPC6/p-CaMK4 信号通路被激活。与苍术一样,抗氧化剂 N-乙酰-L-半胱氨酸 (NAC) 也可抑制 TRPC6/p-CaMK4 信号通路的激活,减少果糖诱导的足细胞过度活跃。这些结果首次表明,苍术的抗氧化特性可能通过抑制 TRPC6/p-CaMK4 信号通路和恢复突触蛋白表达异常来抑制足细胞的过度活跃。

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