首页> 美国卫生研究院文献>The Journal of Biological Chemistry >Structure and Function of Hainantoxin-III a Selective Antagonist of Neuronal Tetrodotoxin-sensitive Voltage-gated Sodium Channels Isolated from the Chinese Bird Spider Ornithoctonus hainana
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Structure and Function of Hainantoxin-III a Selective Antagonist of Neuronal Tetrodotoxin-sensitive Voltage-gated Sodium Channels Isolated from the Chinese Bird Spider Ornithoctonus hainana

机译:海南毒素III的结构和功能海南毒素III是中国鸟蜘蛛鸟眼鸟的神经元对河豚毒素敏感的电压门控钠通道的选择性拮抗剂

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摘要

In the present study, we investigated the structure and function of hainantoxin-III (HNTX-III), a 33-residue polypeptide from the venom of the spider Ornithoctonus hainana. It is a selective antagonist of neuronal tetrodotoxin-sensitive voltage-gated sodium channels. HNTX-III suppressed Nav1.7 current amplitude without significantly altering the activation, inactivation, and repriming kinetics. Short extreme depolarizations partially activated the toxin-bound channel, indicating voltage-dependent inhibition of HNTX-III. HNTX-III increased the deactivation of the Nav1.7 current after extreme depolarizations. The HNTX-III·Nav1.7 complex was gradually dissociated upon prolonged strong depolarizations in a voltage-dependent manner, and the unbound toxin rebound to Nav1.7 after a long repolarization. Moreover, analysis of chimeric channels showed that the DIIS3-S4 linker was critical for HNTX-III binding to Nav1.7. These data are consistent with HNTX-III interacting with Nav1.7 site 4 and trapping the domain II voltage sensor in the closed state. The solution structure of HNTX-III was determined by two-dimensional NMR and shown to possess an inhibitor cystine knot motif. Structural analysis indicated that certain basic, hydrophobic, and aromatic residues mainly localized in the C terminus may constitute an amphiphilic surface potentially involved in HNTX-III binding to Nav1.7. Taken together, our results show that HNTX-III is distinct from β-scorpion toxins and other β-spider toxins in its mechanism of action and binding specificity and affinity. The present findings contribute to our understanding of the mechanism of toxin-sodium channel interaction and provide a useful tool for the investigation of the structure and function of sodium channel isoforms and for the development of analgesics.
机译:在本研究中,我们研究了海南毒素-III(HNTX-III)的结构和功能,它是一种来自蜘蛛鸟眼毒液的33个残基的多肽。它是神经河豚毒素敏感的电压门控钠通道的选择性拮抗剂。 HNTX-III抑制了Nav1.7电流幅度,而没有显着改变激活,失活和启动动力学。短时的极端去极化部分激活了毒素结合的通道,表明HNTX-III的电压依赖性抑制。在极端去极化后,HNTX-III增加了Nav1.7电流的失活。在长时间的强去极化作用下,HNTX-III·Nav1.7复合物以电压依赖性方式逐渐解离,长时间的极化作用下未结合的毒素反弹至Nav1.7。此外,嵌合通道的分析表明,DIIS3-S4接头对于HNTX-III与Nav1.7的结合至关重要。这些数据与HNTX-III与Nav1.7站点4相互作用并在闭合状态下捕获域II电压传感器一致。通过二维NMR确定HNTX-III的溶液结构,并显示其具有抑制剂胱氨酸结基序。结构分析表明,主要位于C末端的某些碱性,疏水和芳香族残基可能构成两性表面,可能参与HNTX-III与Nav1.7的结合。综上所述,我们的结果表明,HNTX-III在作用机理,结合特异性和亲和力方面与β蝎毒素和其他β蜘蛛毒素不同。目前的发现有助于我们对毒素-钠通道相互作用的机制的理解,并为研究钠通道同工型的结构和功能以及开发止痛药提供了有用的工具。

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