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首页> 外文期刊>Biochemistry >Engineering a Potent and Specific Blocker of Voltage-Gated Potassium Channel Kv1.3, a Target for Autoimmune Diseases
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Engineering a Potent and Specific Blocker of Voltage-Gated Potassium Channel Kv1.3, a Target for Autoimmune Diseases

机译:工程性的电压门控钾通道Kv1.3(一种针对自身免疫性疾病的靶标)的强效特异性阻断剂

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摘要

A polypeptide toxin extracted from scorpion venom, OSK1, is modified such that its potency is drastically enhanced in blocking one class of voltage-gated potassium channels, Kv1.3, which is a pharmacological target for immunosuppressive therapy. The bound complex of Kv1.3 and OSK1 reveals that one lysine residue of the toxin is in the proximity of another lysine residue on the external vestibule of the channel, just outside of the selectivity filter. This unfavorable electrostatic interaction is eliminated by interchanging the positions of two amino acids in the toxin. The potentials of mean force of the wild-type and mutant OSK1 bound to Kv1.1-Kv1.3 channels are constructed using molecular dynamics, and the half-maximal inhibitory concentration (IC_(50)) of each toxin-channel complex is computed. We show that the IC_(50) values predicted for three toxins and three channels match closely with experiment. Kv1.3 is half-blocked by 0.2 pM mutant OSK1; it is >10000-fold more specific for this channel than for Kv1.1 and Kv1.2.
机译:对从蝎毒OSK1中提取的多肽毒素进行了修饰,以使其效力大大提高,从而可以阻断一类电压门控钾通道Kv1.3,Kv1.3是免疫抑制疗法的药理学靶标。 Kv1.3和OSK1的结合复合物显示,毒素的一个赖氨酸残基位于通道外部前庭的另一个赖氨酸残基附近,位于选择性过滤器的外部。通过交换毒素中两个氨基酸的位置,可以消除这种不利的静电相互作用。利用分子动力学构建与Kv1.1-Kv1.3通道结合的野生型和突变OSK1的平均力势,并计算每种毒素通道复合物的半数最大抑制浓度(IC_(50)) 。我们表明,预测的三种毒素和三种通道的IC_(50)值与实验紧密匹配。 Kv1.3被0.2 pM突变体OSK1半封闭;与Kv1.1和Kv1.2相比,此通道的特异性更高> 10000倍。

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