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利用多尺度功能方法,为虎纹捕鸟蛛多肽对钠通道亚型 Na1.6 的高亲和力阻断作用提供直接证据。

Direct evidence for high affinity blockade of Na1.6 channel subtype by huwentoxin-IV spider peptide, using multiscale functional approaches.

机构信息

Sanofi R & D, Integrated Drug Discovery, In Vitro Biology & Pharmacology, F-94440, Vitry-sur-Seine, France; Service d'Ingénierie Moléculaire des Protéines (SIMOPRO), CEA, Université Paris-Saclay, F-91191, Gif sur Yvette, France.

Sanofi R & D, Integrated Drug Discovery, In Vitro Biology & Pharmacology, F-94440, Vitry-sur-Seine, France.

出版信息

Neuropharmacology. 2018 May 1;133:404-414. doi: 10.1016/j.neuropharm.2018.02.016. Epub 2018 Feb 21.

Abstract

The Chinese bird spider huwentoxin-IV (HwTx-IV) is well-known to be a highly potent blocker of Na1.7 subtype of voltage-gated sodium (Na) channels, a genetically validated analgesic target, and thus promising as a potential lead molecule for the development of novel pain therapeutics. In the present study, the interaction between HwTx-IV and Na1.6 channel subtype was investigated using multiscale (from in vivo to individual cell) functional approaches. HwTx-IV was approximatively 2 times more efficient than tetrodotoxin (TTX) to inhibit the compound muscle action potential recorded from the mouse skeletal neuromuscular system in vivo, and 30 times more effective to inhibit nerve-evoked than directly-elicited muscle contractile force of isolated mouse hemidiaphragms. These results strongly suggest that the inhibition of nerve-evoked skeletal muscle functioning, produced by HwTx-IV, resulted from a toxin-induced preferential blockade of Na1.6, compared to Na1.4, channel subtype. This was confirmed by whole-cell automated patch-clamp experiments performed on human embryonic kidney (HEK)-293 cells overexpressing hNa1.1-1.8 channel subtypes. HwTx-IV was also approximatively 850 times more efficient to inhibit TTX-sensitive than TTX-resistant sodium currents recorded from mouse dorsal root ganglia neurons. Finally, based on our data, we predict that blockade of the Na1.6 channel subtype was involved in the in vivo toxicity of HwTx-IV, although this toxicity was more than 2 times lower than that of TTX. In conclusion, our results provide detailed information regarding the effects of HwTx-IV and allow a better understanding of the side-effect mechanisms involved in vivo and of channel subtype interactions resulting from the toxin activity.

摘要

中国鸟蛛毒素 Huwentoxin-IV(HwTx-IV)是一种已知的电压门控钠离子(Na)通道 Na1.7 亚型的高效阻断剂,该通道是经基因验证的镇痛靶点,因此有望成为开发新型疼痛治疗药物的潜在先导分子。在本研究中,采用多尺度(从体内到单个细胞)功能方法研究了 HwTx-IV 与 Na1.6 通道亚型的相互作用。HwTx-IV 抑制体内小鼠骨骼肌神经肌肉系统记录的复合肌肉动作电位的效率大约是河豚毒素(TTX)的 2 倍,抑制神经诱发的肌肉收缩力比直接诱发的肌肉收缩力的效率高 30 倍。这些结果强烈表明,与 Na1.4 通道亚型相比,HwTx-IV 对神经诱发的骨骼肌功能的抑制作用是由毒素诱导的 Na1.6 通道亚型的优先阻断引起的。这一结论在人胚肾(HEK)-293 细胞上进行的全细胞自动膜片钳实验中得到了证实,这些细胞过表达 hNa1.1-1.8 通道亚型。HwTx-IV 对 TTX 敏感的钠离子电流的抑制效率大约是 TTX 抗性钠离子电流的 850 倍,这些电流是从小鼠背根神经节神经元中记录到的。最后,根据我们的数据,我们预测 Na1.6 通道亚型的阻断参与了 HwTx-IV 的体内毒性,尽管这种毒性比 TTX 低 2 倍以上。总之,我们的研究结果提供了关于 HwTx-IV 作用的详细信息,有助于更好地理解体内的副作用机制以及毒素活性引起的通道亚型相互作用。

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