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河豚毒素与μ-芋螺毒素在阻断电压门控钠通道方面的协同和拮抗相互作用。

Synergistic and antagonistic interactions between tetrodotoxin and mu-conotoxin in blocking voltage-gated sodium channels.

作者信息

Zhang Min-Min, McArthur Jeff R, Azam Layla, Bulaj Grzegorz, Olivera Baldomero M, French Robert J, Yoshikami Doju

机构信息

Department of Biology, University of Utah, Salt Lake City, UT 84112, USA.

出版信息

Channels (Austin). 2009 Jan-Feb;3(1):32-8. doi: 10.4161/chan.3.1.7500. Epub 2009 Jan 25.

Abstract

Tetrodotoxin (TTX) is the quintessential ligand of voltage-gated sodium channels (NaVs). Like TTX, mu-conotoxin peptides are pore blockers, and both toxins have helped to define the properties of neurotoxin receptor Site 1 of NaVs. Here, we report unexpected results showing that the recently discovered mu-conotoxin KIIIA and TTX can simultaneously bind to Site 1 and act in concert. Results with saturating concentrations of peptide applied to voltage-clamped Xenopus oocytes expressing brain NaV1.2, and single-channel recordings from brain channels in lipid bilayers, show that KIIIA or its analog, KIIIA[K7A], block partially, with a residual current that can be completely blocked by TTX. In addition, the kinetics of block by TTX and peptide are each affected by the prior presence of the other toxin. For example, bound peptide slows subsequent binding of TTX (an antagonistic interaction) and slows TTX dissociation when both toxins are bound (a synergistic effect on block). The overall functional consequence resulting from the combined action of the toxins depends on the quantitative balance between these opposing actions. The results lead us to postulate that in the bi-liganded NaV complex, TTX is bound between the peptide and the selectivity filter. These observations refine our view of Site 1 and open new possibilities in NaV pharmacology.

摘要

河豚毒素(TTX)是电压门控钠通道(NaV)的典型配体。与TTX一样,μ-芋螺毒素肽是孔道阻断剂,这两种毒素都有助于确定NaV神经毒素受体位点1的特性。在此,我们报告了意外的结果,表明最近发现的μ-芋螺毒素KIIIA和TTX可同时结合至位点1并协同发挥作用。将饱和浓度的肽应用于表达脑NaV1.2的电压钳制非洲爪蟾卵母细胞,并对脂质双分子层中的脑通道进行单通道记录,结果表明KIIIA或其类似物KIIIA[K7A]呈部分阻断,其残余电流可被TTX完全阻断。此外,TTX和肽的阻断动力学均受另一种毒素预先存在的影响。例如,结合的肽会减慢TTX随后的结合(拮抗相互作用),并在两种毒素都结合时减慢TTX的解离(对阻断的协同作用)。毒素联合作用产生的总体功能后果取决于这些相反作用之间的定量平衡。这些结果使我们推测,在双配体NaV复合物中,TTX结合于肽与选择性过滤器之间。这些观察结果完善了我们对位点1的看法,并为NaV药理学开辟了新的可能性。

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