转化生长因子-β1 能增强大脑皮层神经元的放电活动

Zhihui Ren, Tianfei Li, Xueer Liu, Zelin Zhang, Xiaoxuan Chen, Weiqiang Chen, Kangsheng Li, Jiangtao Sheng
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摘要

转化生长因子-β1(TGF-β1)因其对中枢神经系统疾病的多重效应而被广泛研究。TGF-β1 在特定脑区的神经保护或神经毒性作用可能取决于病理过程和所涉及的细胞类型。电压门控钠通道(VGSCs)是神经元产生动作电位的重要离子通道,与多种神经兴奋相关疾病有关。然而,TGF-β1 对 VGSCs 功能特性和皮质神经元发射特性的影响仍不清楚。在这项研究中,我们研究了 TGF-β1 对小鼠原代皮质神经元中 VGSC 功能和发射特性的影响。我们发现,TGF-β1 能以剂量和时间依赖的方式增加 VGSC 电流密度,这归因于 Nav1.3 表达的上调。丝裂原活化蛋白激酶激酶抑制剂(PD98059)、p38 丝裂原活化蛋白激酶抑制剂(SB203580)和 Jun NH2 端激酶 1/2抑制剂(SP600125)可显著抑制 VGSC 电流密度和 Nav1.3 表达的增加。有趣的是,TGF-β1 能显著提高大脑皮层神经元动作电位的发射阈值,但不会改变其发射率。这些发现表明,在病理条件下,TGF-β1 可通过激活 ERK1/2-JNK- MAPK 通路增加 Nav1.3 的表达,从而导致大脑皮层神经元动作电位发射阈值的降低。因此,这有助于中枢神经系统神经兴奋相关疾病的发生和发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Transforming growth factor-beta 1 enhances discharge activity of cortical neurons
Transforming growth factor-beta 1 (TGF-β1) has been extensively studied for its pleiotropic effects on central nervous system diseases. The neuroprotective or neurotoxic effects of TGF-β1 in specific brain areas may depend on the pathological process and cell types involved. Voltage-gated sodium channels (VGSCs) are essential ion channels for the generation of action potentials in neurons, and are involved in various neuroexcitation-related diseases. However, the effects of TGF-β1 on the functional properties of VGSCs and firing properties in cortical neurons remain unclear. In this study, we investigated the effects of TGF-β1 on VGSC function and firing properties in primary cortical neurons from mice. We found that TGF-β1 increased VGSC current density in a dose- and time-dependent manner, which was attributable to the upregulation of Nav1.3 expression. Increased VGSC current density and Nav1.3 expression were significantly abolished by preincubation with inhibitors of mitogen-activated protein kinase kinase (PD98059), p38 mitogen-activated protein kinase (SB203580), and Jun NH2-terminal kinase 1/2 inhibitor (SP600125). Interestingly, TGF-β1 significantly increased the firing threshold of action potentials but did not change their firing rate in cortical neurons. These findings suggest that TGF-β1 can increase Nav1.3 expression through activation of the ERK1/2–JNK– MAPK pathway, which leads to a decrease in the firing threshold of action potentials in cortical neurons under pathological conditions. Thus, this contributes to the occurrence and progression of neuroexcitatory-related diseases of the central nervous system.
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