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Membrane Distribution and Activity of a Neuronal Voltage-Gated K+ Channel is Modified by Replacement of Complex Type N-Glycans with Hybrid Type

机译:神经元电压门控K +通道的膜分布和活性通过用混合型取代复杂型N-聚糖来修饰

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摘要

Abnormal modifications in N-glycosylation processing are commonly associated with neurological disorders, although the impact of specific N-glycans on neuronal excitability is unknown. By replacement of complex types of N-glycans with hybrid types in neuroblastoma cells, we provide the first study that addresses how distinct N-glycan types impact neuronal excitability. Using CRISPR/Cas9 technology, NB_1, a clonal cell line derived from rat neuroblastoma cells (NB), was modified to create an N-glycosylation mutant cell line, NB_1 (-Mgat2), which expresses predominantly hybrid type N-glycans. Western and lectin blotting, flow cytometry, TIRF and DIC microscopy, and patch clamp studies were conducted. Lectin binding revealed the predominant type of N-glycans expressed in NB_1 (-Mgat2) is hybrid while those of NB and NB_1 are complex. Kv3.1 b-expressing cells with complex N-glycans localized more glycosylated Kv3.1b to the neurites than cells with hybrid N-glycans. Further the absence of N-glycan attachment to Kv3.1b was critical for sub-plasma distribution of Kv3.1b to neurites in primary adult mammalian neurons, along with NB cells. Replacement of complex type N-glycans with hybrid type hindered the opening and closing rates of outward ionic currents of Kv3.1 b-expressing NB cells. The lacks of N-glycan attachment hindered the rates even more but were not significantly different between the NB cell lines. Taken together, our evidence supports N-glycosylation impacts the sub-plasma membrane localization and activity of Kv3.1 b-containing channels. We propose that N-glycosylation processing of Kv3.1 b-containing channels contributes to neuronal excitability, and abnormal modifications in N-glycosylation processing of Kv3.1b could contribute to neurological diseases.
机译:N-糖基化过程中的异常修饰通常与神经系统疾病有关,尽管尚不清楚特定N-聚糖对神经元兴奋性的影响。通过用神经母细胞瘤细胞中的杂合类型替换复杂类型的N-聚糖,我们提供了第一个研究,该研究针对不同的N-聚糖类型如何影响神经元兴奋性。使用CRISPR / Cas9技术,对NB_1(一种源自大鼠神经母细胞瘤细胞(NB)的克隆细胞系)进行了修饰,以创建N-糖基化突变细胞系NB_1(-Mgat2),该细胞系主要表达杂交型N-聚糖。进行了蛋白质印迹和凝集素印迹,流式细胞术,TIRF和DIC显微镜以及膜片钳研究。凝集素结合揭示了在NB_1(-Mgat2)中表达的N-聚糖的主要类型是杂种,而NB和NB_1中的N-聚糖是复杂的。与具有杂合N-聚糖的细胞相比,具有复杂N-聚糖的Kv3.1 b表达细胞在神经突中的糖基化Kv3.1b定位更多。此外,不存在与Kv3.1b结合的N-聚糖对于将Kv3.1b的亚血浆分布到初级成年哺乳动物神经元以及NB细胞中的神经突至关重要。用杂合型取代复杂的N型聚糖阻碍了表达Kv3.1b的NB细胞的向外离子流的打开和闭合速率。 N-聚糖附着的缺乏进一步阻碍了该速率,但是在NB细胞系之间没有显着差异。综上所述,我们的证据支持N-糖基化影响亚细胞质膜的定位和含Kv3.1b通道的活性。我们建议,包含Kv3.1 b的通道的N-糖基化处理有助于神经元兴奋性,而在Kv3.1b的N-糖基化处理中的异常修饰可能有助于神经系统疾病。

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