[热敏TRP通道与脑功能]。

Makoto Tominaga
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引用次数: 0

摘要

辣椒素受体TRPV1和山葵受体TRPA1在无髓鞘C纤维伤害感受器中表达,并被各种伤害性刺激激活,引起我们身体的疼痛。在缺乏TRPV1和TRPA1的小鼠身上进行的行为研究证实了它们参与伤害感受。TRPV1与钙激活的氯离子通道ANO1 (ANO1)相互作用,钙离子进入初级感觉神经元激活ANO1,导致氯离子外排,导致进一步去极化。这是一种新的疼痛增强机制。鉴定出小鼠TRPA1的剪接变体(TRPA1b),发现TRPA1b与全长TRPA1 (TRPA1a)结合,增强TRPA1a向质膜的易位,导致TRPA1活性升高。炎性和神经性疼痛条件下TRPA1b转录的增加提示病理条件下TRPA1b参与疼痛感觉的增加。调控TRPV1/ANO1复合物的形成或TRPA1b的产生可能是开发新型镇痛药的一种有前途的途径。
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[Thermosensitive TRP channels and brain function].

Capsaicin receptor TRPV1 and wasabi receptor TRPA1 are expressed in the unmyelinated C fiber nociceptors and activated by various nociceptive stimuli causing pain in our body. Their involvement in nociception was proven with behavior studies using mice lacking TRPV1 and TRPA1. TRPV1 was found to interact with a calcium-activated chloride channel, anoctamin1 (ANO1), and calcium ions entering the primary sensory neurons activated ANO1, leading to chloride efflux which resulted in further depolarization. This is a novel pain-enhancing mechanism. A splicing variant of mouse TRPA1 (TRPA1b) was identified, and TRPA1b was found to bind to the full length TRPA1 (TRPA1a) and enhance the translocation of TRPA1a to the plasma membrane, leading to the increase in TRPA1 activity. The increase in TRPA1b transcript in the inflammatory and neuropathic pain conditions suggests the involvement of TRPA1b in the increased pain sensation under pathological conditions. Regulation of TRPV1/ANO1 complex formation or TRPA1b production could be a promising way to develop novel analgesic agents.

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