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Magnesium induces neuronal apoptosis by suppressing excitability

机译:镁通过抑制兴奋性诱导神经元凋亡

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In clinical obstetrics, magnesium sulfate (MgSO4) use is widespread, but effects on brain development are unknown. Many agents that depress neuronal excitability increase developmental neuroapoptosis. In this study, we used dissociated cultures of rodent hippocampus to examine the effects of Mg++ on excitability and survival. Mg++-induced caspase-3-associated cell loss at clinically relevant concentrations. Whole-cell patch-clamp techniques measured Mg++ effects on action potential threshold, action potential peak amplitude, spike number and changes in resting membrane potential. Mg++ depolarized action potential threshold, presumably from surface charge screening effects on voltage-gated sodium channels. Mg++ also decreased the number of action potentials in response to fixed current injection without affecting action potential peak amplitude. Surprisingly, Mg++ also depolarized neuronal resting potential in a concentration-dependent manner with a +5.2?mV shift at 10?mM. Voltage ramps suggested that Mg++ blocked a potassium conductance contributing to the resting potential. In spite of this depolarizing effect of Mg++, the net inhibitory effect of Mg++ nearly completely silenced neuronal network activity measured with multielectrode array recordings. We conclude that although Mg++ has complex effects on cellular excitability, the overall inhibitory influence of Mg++ decreases neuronal survival. Taken together with recent in vivo evidence, our results suggest that caution may be warranted in the use of Mg++ in clinical obstetrics and neonatology.. ? 2010 Macmillan Publishers Limited
机译:在临床产科中,硫酸镁(MgSO4)的使用非常广泛,但对大脑发育的影响尚不清楚。许多抑制神经元兴奋性的药物会增加发育性神经细胞凋亡。在这项研究中,我们使用啮齿类动物海马的分离培养物来研究Mg ++ 对兴奋性和存活的影响。在临床相关浓度下,Mg ++ 诱导的caspase-3相关细胞丢失。全细胞膜片钳技术测量了Mg ++ 对动作电位阈值,动作电位峰值幅度,尖峰数和静息膜电位变化的影响。 Mg ++ 的去极化动作电位阈值,可能是由于表面电荷屏蔽对电压门控钠通道的影响。 Mg ++ 在不影响动作电位峰值幅度的情况下,也响应固定电流注入而减少了动作电位的数量。令人惊讶的是,Mg ++ 还以浓度依赖的方式使神经元静息电位去极化,在10?mM时有+5.2?mV的位移。电压斜坡表明,Mg ++ 阻断了钾电导,有助于静息电位。尽管Mg ++ 具有去极化作用,但Mg ++ 的净抑制作用几乎完全抵消了多电极阵列记录测量的神经元网络活动。我们得出结论,尽管Mg ++ 对细胞兴奋性具有复杂的作用,但Mg ++ 的总体抑制作用会降低神经元的存活率。结合最近的体内证据,我们的结果表明,在临床妇产科和新生儿科使用Mg ++ 可能需要谨慎。 2010 Macmillan Publishers Limited

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