Chi-Mei Medical Center, Department of Pediatrics, Tainan 71004, Taiwan.
Department of Physiology, College of Medicine, National Cheng Kung University, Tainan 70101, Taiwan.
Int J Mol Sci. 2022 Mar 14;23(6):3123. doi: 10.3390/ijms23063123.
Zingerone (ZO), a nontoxic methoxyphenol, has been demonstrated to exert various important biological effects. However, its action on varying types of ionic currents and how they concert in neuronal cells remain incompletely understood. With the aid of patch clamp technology, we investigated the effects of ZO on the amplitude, gating, and hysteresis of plasmalemmal ionic currents from both pituitary tumor (GH) cells and hippocampal (mHippoE-14) neurons. The exposure of the GH cells to ZO differentially diminished the peak and late components of the . Using a double ramp pulse, the amplitude of the was measured, and the appearance of a hysteresis loop was observed. Moreover, ZO reversed the tefluthrin-mediated augmentation of the hysteretic strength of the and led to a reduction in the . As a double ramp pulse was applied, two types of voltage-dependent hysteresis loops were identified in the , and the replacement with BaCl-attenuated hysteresis of the enhanced the amplitude along with the current amplitude (i.e., the ). The hysteretic magnitude of the activated by the double pulse was attenuated by ZO. The peak and late in the hippocampal mHippoE-14 neurons was also differentially inhibited by ZO. In addition to acting on the production of reactive oxygen species, ZO produced effects on multiple ionic currents demonstrated herein that, considered together, may significantly impact the functional activities of neuronal cells.
姜酮(ZO)是一种无毒的甲氧基苯酚,已被证明具有多种重要的生物学效应。然而,其对不同类型的离子电流的作用以及它们在神经元细胞中的协同作用仍不完全清楚。借助膜片钳技术,我们研究了 ZO 对垂体肿瘤(GH)细胞和海马(mHippoE-14)神经元质膜离子电流幅度、门控和滞后的影响。ZO 的暴露使 GH 细胞中的峰值和晚期成分减少。使用双斜坡脉冲测量了 的幅度,并观察到滞后环的出现。此外,ZO 逆转了四氟乙烷对 的滞后强度的增强作用,并导致 的减少。当施加双斜坡脉冲时,在 中鉴定出两种类型的电压依赖性滞后环,并用 BaCl 减弱滞后环,增强了电流幅度(即 )。双脉冲激活的 的滞后幅度被 ZO 减弱。ZO 还对海马 mHippoE-14 神经元中的峰值和晚期 产生了差异抑制作用。除了作用于活性氧物质的产生外,ZO 还产生了本文所述的对多种离子电流的作用,这些作用综合在一起,可能会显著影响神经元细胞的功能活动。