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Molecular Dynamics Simulation Reveals Specific Interaction Sites between Scorpion Toxins and Kv1.2 Channel: Implications for Design of Highly Selective Drugs

机译:分子动力学模拟揭示了蝎毒素和Kv1.2通道之间的特定相互作用位点:对高选择性药物设计的启示。

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摘要

The Kv1.2 channel plays an important role in the maintenance of resting membrane potential and the regulation of the cellular excitability of neurons, whose silencing or mutations can elicit neuropathic pain or neurological diseases (e.g., epilepsy and ataxia). Scorpion venom contains a variety of peptide toxins targeting the pore region of this channel. Despite a large amount of structural and functional data currently available, their detailed interaction modes are poorly understood. In this work, we choose four Kv1.2-targeted scorpion toxins (Margatoxin, Agitoxin-2, OsK-1, and Mesomartoxin) to construct their complexes with Kv1.2 based on the experimental structure of ChTx-Kv1.2. Molecular dynamics simulation of these complexes lead to the identification of hydrophobic patches, hydrogen-bonds, and salt bridges as three essential forces mediating the interactions between this channel and the toxins, in which four Kv1.2-specific interacting amino acids (D353, Q358, V381, and T383) are identified for the first time. This discovery might help design highly selective Kv1.2-channel inhibitors by altering amino acids of these toxins binding to the four channel residues. Finally, our results provide new evidence in favor of an induced fit model between scorpion toxins and K+ channel interactions.
机译:Kv1.2通道在维持静止的膜电位和调节神经元的细胞兴奋性中起重要作用,神经元的沉默或突变会引起神经性疼痛或神经系统疾病(例如癫痫和共济失调)。蝎毒含有针对该通道孔区域的多种肽毒素。尽管当前可获得大量的结构和功能数据,但对其详细的交互模式知之甚少。在这项工作中,我们基于ChTx-Kv1.2的实验结构,选择了四种针对Kv1.2的蝎子毒素(玛格毒素,Agitoxin-2,OsK-1和Mesomartoxin)来构建它们与Kv1.2的复合物。这些复合物的分子动力学模拟可以识别疏水性补丁,氢键和盐桥,它们是介导该通道与毒素之间相互作用的三个基本力,其中四个Kv1.2特异性相互作用氨基酸(D353,Q358 ,V381和T383)。这一发现可能会通过改变与四个通道残基结合的这些毒素的氨基酸,来帮助设计高度选择性的Kv1.2通道抑制剂。最后,我们的研究结果为蝎毒素和K + 通道相互作用之间的诱导拟合模型提供了新的证据。

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