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Regulation of the T-type Ca²⁺ channel Cav3.2 by hydrogen sulfide: Emerging controversies concerning the role of H₂S in nociception

机译:用硫化氢调节T型Ca 2+通道Cav3.2:关于H 2 s在伤害感受中作用的新争议

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摘要

Ion channels represent a large and growing family of target proteins regulated by gasotransmitters such as nitric oxide, carbon monoxide and, as described more recently, hydrogen sulfide. Indeed, many of the biological actions of these gases can be accounted for by their ability to modulate ion channel activity. Here, we report recent evidence that H₂S is a modulator of low voltage-activated T-type Ca²⁺ channels, and discriminates between the different subtypes of T-type Ca²⁺ channel in that it selectively modulates Cav3.2, whilst Cav3.1 and Cav3.3 are unaffected. At high concentrations, H₂S augments Cav3.2 currents, an observation which has led to the suggestion that H₂S exerts its pro-nociceptive effects via this channel, since Cav3.2 plays a central role in sensory nerve excitability. However, at more physiological concentrations, H₂S is seen to inhibit Cav3.2. This inhibitory action requires the presence of the redox-sensitive, extracellular region of the channel which is responsible for tonic metal ion binding and which particularly distinguishes this channel isoform from Cav3.1 and 3.3. Further studies indicate that H₂S may act in a novel manner to alter channel activity by potentiating the zinc sensitivity/affinity of this binding site. This review discusses the different reports of H₂S modulation of T-type Ca²⁺ channels, and how such varying effects may impact on nociception given the role of this channel in sensory activity. This subject remains controversial, and future studies are required before the impact of T-type Ca²⁺ channel modulation by H₂S might be exploited as a novel approach to pain management.
机译:离子通道代表着一个庞大且不断增长的靶蛋白家族,这些靶蛋白受诸如一氧化氮,一氧化碳和硫化氢之类的气体递质调节。实际上,这些气体的许多生物作用可以由它们调节离子通道活性的能力来解释。在这里,我们报道了最近的证据,即H 2 S是低电压激活的T型Ca 2+通道的调节剂,并且通过选择性地调节Cav3.2,而Cav3.1和Cav来区分T型Ca 2+通道的不同亚型。 Cav3.3不受影响。在高浓度下,H 2 S会增加Cav3.2电流,这一观察结果表明,由于Cav3.2在感觉神经兴奋性中起着重要作用,因此H 2 S通过该通道发挥了伤害感受的作用。但是,在更高的生理浓度下,可以看到H 2 S抑制Cav3.2。这种抑制作用需要存在通道的氧化还原敏感的细胞外区域,该区域负责进补金属离子的结合,并特别区分该通道同种型与Cav3.1和3.3。进一步的研究表明,H 2 S可能以新颖的方式通过增强该结合位点的锌敏感性/亲和力来改变通道活性。这篇综述讨论了T型Ca 2+通道对H 2 S调节的不同报道,以及鉴于该通道在感觉活动中的作用,这种变化的影响如何影响伤害感受。该主题仍存在争议,在H 2 S调节T型Ca 2+通道调节的影响之前,还需要进行进一步的研究,才能将其作为治疗疼痛的新方法。

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