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Variability of Potassium Channel Blockers in Mesobuthus eupeus Scorpion Venom with Focus on Kv1.1: AN INTEGRATED TRANSCRIPTOMIC AND PROTEOMIC STUDY.东亚钳蝎毒液中钾通道阻滞剂的变异性,重点关注Kv1.1:一项转录组学和蛋白质组学的综合研究
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2
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Molecular diversity and functional evolution of scorpion potassium channel toxins.蝎类钾通道毒素的分子多样性与功能进化。
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本文引用的文献

1
Production of Recombinant Alpha Neurotoxin of Scorpion Venom Mesobuthus eupeus and Analysis of its Immunogenicity.东亚钳蝎重组α神经毒素的制备及其免疫原性分析。
Iran Red Crescent Med J. 2014 Jan;16(1):e9666. doi: 10.5812/ircmj.9666. Epub 2014 Jan 5.
2
Partial transcriptomic profiling of toxins from the venom gland of the scorpion Parabuthus stridulus.条纹肥尾蝎毒腺毒素的部分转录组分析
Toxicon. 2014 Jun;83:75-83. doi: 10.1016/j.toxicon.2014.03.001. Epub 2014 Mar 14.
3
MEGA6: Molecular Evolutionary Genetics Analysis version 6.0.MEGA6:分子进化遗传学分析版本 6.0。
Mol Biol Evol. 2013 Dec;30(12):2725-9. doi: 10.1093/molbev/mst197. Epub 2013 Oct 16.
4
Venom proteomic and venomous glands transcriptomic analysis of the Egyptian scorpion Scorpio maurus palmatus (Arachnida: Scorpionidae).埃及蝎子 Scorpio maurus palmatus(蛛形纲:蝎科)的毒液蛋白质组和毒腺转录组分析。
Toxicon. 2013 Nov;74:193-207. doi: 10.1016/j.toxicon.2013.08.064. Epub 2013 Aug 30.
5
Molecular diversity of Chaerilidae venom peptides reveals the dynamic evolution of scorpion venom components from Buthidae to non-Buthidae.螯蝇科毒液肽的分子多样性揭示了从钳蝎科到非钳蝎科蝎子毒液成分的动态进化。
J Proteomics. 2013 Aug 26;89:1-14. doi: 10.1016/j.jprot.2013.06.007. Epub 2013 Jun 15.
6
Functional evolution of scorpion venom peptides with an inhibitor cystine knot fold.具有抑制剂半胱氨酸结折叠的蝎子毒液肽的功能进化。
Biosci Rep. 2013 Jun 27;33(3):e00047. doi: 10.1042/BSR20130052.
7
Sequence-specific determination of protein and peptide concentrations by absorbance at 205 nm.通过 205nm 处的吸光度对蛋白质和肽进行特异性浓度测定。
Protein Sci. 2013 Jun;22(6):851-8. doi: 10.1002/pro.2253. Epub 2013 Apr 29.
8
Fluorescent system based on bacterial expression of hybrid KcsA channels designed for Kv1.3 ligand screening and study.基于细菌表达杂合 KcsA 通道的荧光系统,专为 Kv1.3 配体筛选和研究设计。
Anal Bioanal Chem. 2013 Mar;405(7):2379-89. doi: 10.1007/s00216-012-6655-6. Epub 2013 Jan 11.
9
Effects of voltage-gated K+ channel blockers in gefitinib-resistant H460 non-small cell lung cancer cells.电压门控钾通道阻滞剂对吉非替尼耐药的 H460 非小细胞肺癌细胞的影响。
Anticancer Res. 2012 Dec;32(12):5279-84.
10
Characterization of the venom from the Australian scorpion Urodacus yaschenkoi: Molecular mass analysis of components, cDNA sequences and peptides with antimicrobial activity.澳大利亚蝎子 Urodacus yaschenkoi 毒液的特性:成分的分子量分析、cDNA 序列和具有抗菌活性的肽。
Toxicon. 2013 Mar 1;63:44-54. doi: 10.1016/j.toxicon.2012.11.017. Epub 2012 Nov 23.

东亚钳蝎毒液中钾通道阻滞剂的变异性,重点关注Kv1.1:一项转录组学和蛋白质组学的综合研究

Variability of Potassium Channel Blockers in Mesobuthus eupeus Scorpion Venom with Focus on Kv1.1: AN INTEGRATED TRANSCRIPTOMIC AND PROTEOMIC STUDY.

作者信息

Kuzmenkov Alexey I, Vassilevski Alexander A, Kudryashova Kseniya S, Nekrasova Oksana V, Peigneur Steve, Tytgat Jan, Feofanov Alexey V, Kirpichnikov Mikhail P, Grishin Eugene V

机构信息

From the Shemyakin-Ovchinnikov Institute of Bioorganic Chemistry, Russian Academy of Sciences, Moscow 117997, Russia.

From the Shemyakin-Ovchinnikov Institute of Bioorganic Chemistry, Russian Academy of Sciences, Moscow 117997, Russia,

出版信息

J Biol Chem. 2015 May 8;290(19):12195-209. doi: 10.1074/jbc.M115.637611. Epub 2015 Mar 19.

DOI:10.1074/jbc.M115.637611
PMID:25792741
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4424352/
Abstract

The lesser Asian scorpion Mesobuthus eupeus (Buthidae) is one of the most widely spread and dispersed species of the Mesobuthus genus, and its venom is actively studied. Nevertheless, a considerable amount of active compounds is still under-investigated due to the high complexity of this venom. Here, we report a comprehensive analysis of putative potassium channel toxins (KTxs) from the cDNA library of M. eupeus venom glands, and we compare the deduced KTx structures with peptides purified from the venom. For the transcriptome analysis, we used conventional tools as well as a search for structural motifs characteristic of scorpion venom components in the form of regular expressions. We found 59 candidate KTxs distributed in 30 subfamilies and presenting the cysteine-stabilized α/β and inhibitor cystine knot types of fold. M. eupeus venom was then separated to individual components by multistage chromatography. A facile fluorescent system based on the expression of the KcsA-Kv1.1 hybrid channels in Escherichia coli and utilization of a labeled scorpion toxin was elaborated and applied to follow Kv1.1 pore binding activity during venom separation. As a result, eight high affinity Kv1.1 channel blockers were identified, including five novel peptides, which extend the panel of potential pharmacologically important Kv1 ligands. Activity of the new peptides against rat Kv1.1 channel was confirmed (IC50 in the range of 1-780 nm) by the two-electrode voltage clamp technique using a standard Xenopus oocyte system. Our integrated approach is of general utility and efficiency to mine natural venoms for KTxs.

摘要

亚洲小蝎钳蝎(钳蝎科)是钳蝎属中分布最广、扩散范围最大的物种之一,其毒液受到了积极研究。然而,由于这种毒液高度复杂,仍有大量活性化合物研究不足。在此,我们报告了对钳蝎毒液腺cDNA文库中假定的钾通道毒素(KTxs)的全面分析,并将推导的KTx结构与从毒液中纯化的肽进行了比较。对于转录组分析,我们使用了传统工具以及以正则表达式形式搜索蝎毒成分特有的结构基序。我们发现59个候选KTxs分布在30个亚家族中,呈现出半胱氨酸稳定的α/β和抑制剂胱氨酸结类型的折叠。然后通过多级色谱法将钳蝎毒液分离成单个成分。构建并应用了一种基于在大肠杆菌中表达KcsA-Kv1.1杂合通道并利用标记蝎毒素的简便荧光系统,以跟踪毒液分离过程中Kv1.1孔结合活性。结果,鉴定出8种高亲和力的Kv1.1通道阻滞剂,包括5种新肽,这扩展了潜在的具有药理学重要性的Kv1配体库。通过使用标准非洲爪蟾卵母细胞系统的双电极电压钳技术证实了新肽对大鼠Kv1.1通道的活性(IC50在1 - 780 nm范围内)。我们的综合方法在挖掘天然毒液中的KTxs方面具有普遍实用性和高效性。