大麻二酚对 BK 通道的直接抑制,大麻二酚是从大麻中提取的主要治疗性大麻素之一。

IF 3.3 2区 生物学 Q2 CHEMISTRY, MEDICINAL Journal of Natural Products Pub Date : 2024-05-06 DOI:10.1021/acs.jnatprod.3c01274
Juliana Monat, Lucía González Altieri, Nicolás Enrique, Daniela Sedán, Darío Andrinolo, Verónica Milesi and Pedro Martín*, 
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引用次数: 0

摘要

大麻二酚(CBD)是大麻的主要生物活性化合物之一,可用于治疗主要的癫痫综合征。其疗效可归因于多模式的作用机制,包括作为潜在靶点的几种离子通道。在大脑中,CBD 降低了大鼠海马神经元的发射频率,部分延长了动作电位的持续时间,这表明它可能阻断了电压操作的 K+ 通道。我们推测这种效应可能涉及抑制大电导电压和钙离子操作的 K+ 通道(BK 通道),该通道在神经元动作电位的复极化过程中发挥作用。因此,我们评估了 CBD 对在 HEK293 细胞中异源表达的 BK 通道活性的影响。我们使用贴片钳技术的研究结果表明,CBD 以浓度依赖性方式抑制 BK 通道电流,IC50 为 280 nM。这种抑制作用是通过直接相互作用产生的,它同时降低了通道的单位电导和电压依赖性激活。此外,大麻素还能显著延缓通道激活动力学,表明封闭状态趋于稳定。这些效应可以解释 CBD 诱导的动作电位形状和持续时间的变化,它们可能有助于观察到这种大麻素的抗惊厥活性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Direct Inhibition of BK Channels by Cannabidiol, One of the Principal Therapeutic Cannabinoids Derived from Cannabis sativa

Cannabidiol (CBD), one of the main Cannabis sativa bioactive compounds, is utilized in the treatment of major epileptic syndromes. Its efficacy can be attributed to a multimodal mechanism of action that includes, as potential targets, several types of ion channels. In the brain, CBD reduces the firing frequency in rat hippocampal neurons, partly prolonging the duration of action potentials, suggesting a potential blockade of voltage-operated K+ channels. We postulate that this effect might involve the inhibition of the large-conductance voltage- and Ca2+-operated K+ channel (BK channel), which plays a role in the neuronal action potential’s repolarization. Thus, we assessed the impact of CBD on the BK channel activity, heterologously expressed in HEK293 cells. Our findings, using the patch-clamp technique, revealed that CBD inhibits BK channel currents in a concentration-dependent manner with an IC50 of 280 nM. The inhibition is through a direct interaction, reducing both the unitary conductance and voltage-dependent activation of the channel. Additionally, the cannabinoid significantly delays channel activation kinetics, indicating stabilization of the closed state. These effects could explain the changes induced by CBD in action potential shape and duration, and they may contribute to the observed anticonvulsant activity of this cannabinoid.

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来源期刊
CiteScore
9.10
自引率
5.90%
发文量
294
审稿时长
2.3 months
期刊介绍: The Journal of Natural Products invites and publishes papers that make substantial and scholarly contributions to the area of natural products research. Contributions may relate to the chemistry and/or biochemistry of naturally occurring compounds or the biology of living systems from which they are obtained. Specifically, there may be articles that describe secondary metabolites of microorganisms, including antibiotics and mycotoxins; physiologically active compounds from terrestrial and marine plants and animals; biochemical studies, including biosynthesis and microbiological transformations; fermentation and plant tissue culture; the isolation, structure elucidation, and chemical synthesis of novel compounds from nature; and the pharmacology of compounds of natural origin. When new compounds are reported, manuscripts describing their biological activity are much preferred. Specifically, there may be articles that describe secondary metabolites of microorganisms, including antibiotics and mycotoxins; physiologically active compounds from terrestrial and marine plants and animals; biochemical studies, including biosynthesis and microbiological transformations; fermentation and plant tissue culture; the isolation, structure elucidation, and chemical synthesis of novel compounds from nature; and the pharmacology of compounds of natural origin.
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