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蝎毒钾通道阻断防御素揭示了与神经毒素的功能联系。

Scorpion Potassium Channel-blocking Defensin Highlights a Functional Link with Neurotoxin.

作者信息

Meng Lanxia, Xie Zili, Zhang Qian, Li Yang, Yang Fan, Chen Zongyun, Li Wenxin, Cao Zhijian, Wu Yingliang

机构信息

From the State Key Laboratory of Virology, College of Life Sciences and.

From the State Key Laboratory of Virology, College of Life Sciences and Center for BioDrug Research, Wuhan University, Wuhan 430072, China.

出版信息

J Biol Chem. 2016 Mar 25;291(13):7097-106. doi: 10.1074/jbc.M115.680611. Epub 2016 Jan 27.

DOI:10.1074/jbc.M115.680611
PMID:26817841
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4807291/
Abstract

The structural similarity between defensins and scorpion neurotoxins suggests that they might have evolved from a common ancestor. However, there is no direct experimental evidence demonstrating a functional link between scorpion neurotoxins and defensins. The scorpion defensin BmKDfsin4 from Mesobuthus martensiiKarsch contains 37 amino acid residues and a conserved cystine-stabilized α/β structural fold. The recombinant BmKDfsin4, a classical defensin, has been found to have inhibitory activity against Gram-positive bacteria such as Staphylococcus aureus, Bacillus subtilis, and Micrococcus luteusas well as methicillin-resistant Staphylococcus aureus Interestingly, electrophysiological experiments showed that BmKDfsin4,like scorpion potassium channel neurotoxins, could effectively inhibit Kv1.1, Kv1.2, and Kv1.3 channel currents, and its IC50value for the Kv1.3 channel was 510.2 nm Similar to the structure-function relationships of classical scorpion potassium channel-blocking toxins, basic residues (Lys-13 and Arg-19) of BmKDfsin4 play critical roles in peptide-Kv1.3 channel interactions. Furthermore, mutagenesis and electrophysiological experiments demonstrated that the channel extracellular pore region is the binding site of BmKDfsin4, indicating that BmKDfsin4 adopts the same mechanism for blocking potassium channel currents as classical scorpion toxins. Taken together, our work identifies scorpion BmKDfsin4 as the first invertebrate defensin to block potassium channels. These findings not only demonstrate that defensins from invertebrate animals are a novel type of potassium channel blockers but also provide evidence of a functional link between defensins and neurotoxins.

摘要

防御素与蝎神经毒素之间的结构相似性表明它们可能起源于共同的祖先。然而,目前尚无直接的实验证据证明蝎神经毒素与防御素之间存在功能联系。东亚钳蝎的蝎防御素BmKDfsin4含有37个氨基酸残基,并具有保守的胱氨酸稳定的α/β结构折叠。重组的BmKDfsin4是一种典型的防御素,已被发现对革兰氏阳性菌如金黄色葡萄球菌、枯草芽孢杆菌和藤黄微球菌以及耐甲氧西林金黄色葡萄球菌具有抑制活性。有趣的是,电生理实验表明,BmKDfsin4与蝎钾通道神经毒素一样,能够有效抑制Kv1.1、Kv1.2和Kv1.3通道电流,其对Kv1.3通道的IC50值为510.2 nM。与经典蝎钾通道阻断毒素的结构-功能关系相似,BmKDfsin4的碱性残基(Lys-13和Arg-19)在肽与Kv1.3通道的相互作用中起关键作用。此外,诱变和电生理实验表明,通道细胞外孔区域是BmKDfsin4的结合位点,这表明BmKDfsin4阻断钾通道电流的机制与经典蝎毒素相同。综上所述,我们的研究确定蝎防御素BmKDfsin4是第一种能够阻断钾通道的无脊椎动物防御素。这些发现不仅证明了无脊椎动物的防御素是一种新型的钾通道阻断剂,也为防御素与神经毒素之间的功能联系提供了证据。

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Human α-defensins are immune-related Kv1.3 channel inhibitors: new support for their roles in adaptive immunity.人类α-防御素是与免疫相关的Kv1.3通道抑制剂:对其在适应性免疫中作用的新支持。
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Experimental conversion of a defensin into a neurotoxin: implications for origin of toxic function.实验将防御素转化为神经毒素:对毒性功能起源的启示。
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