We previously described an ultrarapid delayed rectifier current in '/> Molecular evidence for a role of Shaw (Kv3) potassium channel subunits in potassium currents of dog atrium
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Molecular evidence for a role of Shaw (Kv3) potassium channel subunits in potassium currents of dog atrium

机译:肖(Kv3)钾通道亚基在犬心房钾电流中的作用的分子证据

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摘要

class="enumerated" style="list-style-type:decimal">We previously described an ultrarapid delayed rectifier current in dog atrial myocytes (IKur,d) with properties resembling currents reported for Kv3.1 channels in neural tissue; however, there was no direct molecular evidence for Shaw subfamily (Kv3) subunit expression in the heart. To identify the molecular basis of IKur,d, we cloned a full-length cDNA (dKv3.1) from canine atrium with homology-based reverse transcription (RT)- polymerase chain reaction (PCR) cloning techniques.A 1755 bp full-length cDNA (dKv3.1) was obtained, with 94.2 % homology to rat brain Kv3.1 (rbKv3.1). The deduced amino acid sequence had 99.3 % homology with rbKv3.1.Heterologous expression of dKv3.1 in Xenopus oocytes produced currents with activation voltage dependence, rectification, and activation and deactivation kinetics that strongly resemble native IKur,d. Like IKur,d, dKv3.1 was found to be highly sensitive to extracellular 4-aminopyridine (4-AP) and tetraethylammonium (TEA).RNase protection assays, Western blots and immunohistochemical studies demonstrated the presence of dKv3.1 transcripts and proteins in dog atrial preparations and isolated canine atrial myocytes. Protein corresponding to the Kv1.5 subunit, which can also carry ultrarapid delayed rectifier current, was absent. Unlike neural tissues, which express two splice variants (Kv3.1a and Kv3.1b), canine atrium showed only Kv3.1b transcripts.Whole-cell patch-clamp studies showed that IKur,d is absent in canine ventricular myocytes, and immunohistochemical and Western blot analysis demonstrated the absence of dKv3.1 protein in canine ventricle.We conclude that the Shaw-type channel dKv3.1 is present in dog atrium, but not ventricle, and is the likely molecular basis of canine atrial IKur,d.
机译:class =“ enumerated” style =“ list-style-type:decimal”> <!-list-behavior =枚举前缀-word = mark-type = decimal max-label-size = 0-> 我们先前描述了犬心房肌细胞(IKur,d)中的超快速延迟整流电流,其特性类似于神经组织中Kv3.1通道报道的电流。但是,尚无直接分子证据证明Shaw亚科(Kv3)亚基在心脏中表达。为了鉴定IKur,d的分子基础,我们使用基于同源性的逆转录(RT)-聚合酶链反应(PCR)克隆技术从犬心房中克隆了全长cDNA(dKv3.1)。
  • 获得了1755bp的全长cDNA(dKv3.1),与大鼠脑Kv3.1(rbKv3.1)具有94.2%的同源性。推导的氨基酸序列与rbKv3.1具有99.3%的同源性。 非洲爪蟾卵母细胞中dKv3.1的异源表达产生的电流具有激活电压依赖性,整流作用以及激活和失活动力学,非常类似于天然IKur, d。像IKur,d一样,发现dKv3.1对细胞外4-氨基吡啶(4-AP)和四乙铵(TEA)高度敏感。 RNase保护试验,Western印迹和免疫组织化学研究表明,犬心房制剂和分离的犬心房肌细胞中的dKv3.1转录本和蛋白质。缺少与Kv1.5亚基相对应的蛋白,该蛋白还可以携带超快速延迟的整流电流。与表达两个剪接变体(Kv3.1a和Kv3.1b)的神经组织不同,犬心房仅显示Kv3.1b转录本。 全细胞膜片钳研究表明,IKur,d在小鼠中不存在。犬心室肌细胞,免疫组织化学和蛋白质印迹分析表明,犬心室中不存在dKv3.1蛋白。 我们得出结论,狗心房中存在Shaw型通道dKv3.1,但心室中不存在,这是犬房IKur,d的可能分子基础。
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