Department of Anesthesiology, Affiliated Hospital of Zunyi Medical College, Zunyi, Guizhou, China; Guizhou Key Laboratory of Anesthesia and Organ Protection, Zunyi Medical College, Zunyi, Guizhou, China.
Department of Anesthesiology, Affiliated Hospital of Zunyi Medical College, Zunyi, Guizhou, China.
Eur J Pharmacol. 2014 Aug 5;736:55-62. doi: 10.1016/j.ejphar.2014.04.036. Epub 2014 May 2.
Although it is known that general anesthetics can suppress cortical neurons׳ activity, the underlying mechanisms are still poorly understood, especially the kinetic changes of voltage-gated Na(+) channels, which are mostly related to neuronal excitability. Some general anesthetics have been reported to affect the voltage-gated Na(+) channels in cell culture derived from humans and animals. However no one has ever investigated the effects of etomidate on voltage-gated Na(+) channels in pyramidal neurons using a brain slice. The present study uses a whole cell patch-clamp technique to investigate the changes of voltage-gated Na(+) channels on primary somatosensory cortex pyramidal neurons under the influence of etomidate. We found that etomidate dose-dependently inhibited Na(+) currents of primary somatosensory cortex pyramidal neurons, while shifted the steady-state inactivation curve towards the left and prolonged the recovery time from inactivation. Conversely, etomidate has no effects on the steady-state activation curve. We demonstrated the detailed suppression process of neural voltage-gated Na(+) channels by etomidate on slice condition. This may offer new insights into the mechanical explanation for the etomidate anesthesia. Finding the effects of anesthetics on primary somatosensory cortex also provides evidence to help elucidate the potential mechanism by which tactile information integrates during general anesthesia.
尽管人们知道全身麻醉剂可以抑制皮质神经元的活动,但其中的机制仍不清楚,尤其是电压门控钠离子通道的动力学变化,这与神经元兴奋性密切相关。一些全身麻醉剂已被报道会影响源自人和动物的细胞培养中的电压门控 Na(+)通道。然而,目前还没有人使用脑切片研究依托咪酯对锥体神经元电压门控 Na(+)通道的影响。本研究采用全细胞膜片钳技术,研究依托咪酯对初级体感皮层锥体神经元电压门控 Na(+)通道的影响。我们发现依托咪酯呈剂量依赖性抑制初级体感皮层锥体神经元的 Na(+)电流,同时使稳态失活曲线向左移位,并延长失活后的恢复时间。相反,依托咪酯对稳态激活曲线没有影响。我们在切片条件下证明了依托咪酯对神经电压门控 Na(+)通道的详细抑制过程。这可能为依托咪酯麻醉的机械解释提供新的见解。发现麻醉剂对初级体感皮层的作用也为阐明在全身麻醉期间触觉信息整合的潜在机制提供了证据。