首页> 美国卫生研究院文献>The Journal of Neuroscience >Heteromultimeric Delayed-Rectifier K+ Channels in Schwann Cells: Developmental Expression and Role in Cell Proliferation
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Heteromultimeric Delayed-Rectifier K+ Channels in Schwann Cells: Developmental Expression and Role in Cell Proliferation

机译:施万细胞中的异源多聚延迟整流K +通道:发育表达和细胞增殖中的作用。

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摘要

Schwann cells (SCs) are responsible for myelination of nerve fibers in the peripheral nervous system. Voltage-dependent K+ currents, including inactivating A-type (KA), delayed-rectifier (KD), and inward-rectifier (KIR) K+ channels, constitute the main conductances found in SCs. Physiological studies have shown that KD channels may play an important role in SC proliferation and that they are downregulated in the soma as proliferation ceases and myelination proceeds. Recent studies have begun to address the molecular identity of K+ channels in SCs. Here, we show that a large repertoire of K+ channel α subunits of theShaker (Kv1.1, Kv1.2, Kv1.4, and Kv1.5),Shab (Kv2.1), and Shaw (Kv3.1b and Kv3.2) families is expressed in mouse SCs and sciatic nerve. We characterized heteromultimeric channel complexes that consist of either Kv1.5 and Kv1.2 or Kv1.5 and Kv1.4. In postnatal day 4 (P4) sciatic nerve, most of the Kv1.2 channel subunits are involved in heteromultimeric association with Kv1.5. Despite the presence of Kv1.1 and Kv1.2 α subunits, the K+ currents were unaffected by dendrotoxin I (DTX), suggesting that DTX-sensitive channel complexes do not account substantially for SC KDcurrents. SC proliferation was found to be potently blocked by quinidine or 4-aminopyridine but not by DTX. Consistent with previous physiological studies, our data show that there is a marked downregulation of all KD channel α subunits from P1–P4 to P40 in the sciatic nerve. Our results suggest that KD currents are accounted for by a complex combinatorial activity of distinct K+channel complexes and confirm that KDchannels are involved in SC proliferation.
机译:雪旺氏细胞(SCs)负责周围神经系统中神经纤维的髓鞘化。电压相关的K + 电流,包括失活的A型(KA),延迟整流器(KD)和向内整流器(KIR)的K + 通道,构成了SC中发现的主要电导。生理研究表明,KD通道可能在SC增殖中起重要作用,并且随着增殖的停止和髓鞘的进行,它们在体细胞中被下调。最近的研究已经开始解决SC中K + 通道的分子同一性。在这里,我们显示了Shaker(Kv1.1,Kv1.2,Kv1.4和Kv1.5),Shab(Kv2.1)和K + 通道α亚基的丰富库Shaw(Kv3.1b和Kv3.2)家族在小鼠SC和坐骨神经中表达。我们表征了由Kv1.5和Kv1.2或Kv1.5和Kv1.4组成的异多聚体通道复合物。在出生后第4天(P4)坐骨神经中,大多数Kv1.2通道亚单位都与Kv1.5异源多聚体相关。尽管存在Kv1.1和Kv1.2α亚基,但K + 电流不受树突毒素I(DTX)的影响,这表明DTX敏感的通道复合物基本上不能解释SC KDcurrents。发现SC增殖被奎尼丁或4-氨基吡啶有效地阻断,但未被DTX阻断。与以前的生理学研究一致,我们的数据显示坐骨神经中所有KD通道α亚基从P1-P4到P40都有明显下调。我们的结果表明,KD电流是由不同的K + 通道复合物的复杂组合活动所占,并证实KD通道参与了SC增殖。

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