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首页> 外文期刊>Neuroscience: An International Journal under the Editorial Direction of IBRO >Alternate splicing of the shal gene and the origin of I(A) diversity among neurons in a dynamic motor network.
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Alternate splicing of the shal gene and the origin of I(A) diversity among neurons in a dynamic motor network.

机译:shal基因的可变剪接和动态运动网络中神经元之间I(A)多样性的起源。

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摘要

The pyloric motor system, in the crustacean stomatogastric ganglion, produces a continuously adaptive behavior. Each cell type in the neural circuit possesses a distinct yet dynamic electrical phenotype that is essential for normal network function. We previously demonstrated that the transient potassium current (I(A)) in the different component neurons is unique and modulatable, despite the fact that the shal gene encodes the alpha-subunits that mediate I(A) in every cell. We now examine the hypothesis that alternate splicing of shal is responsible for pyloric I(A) diversity. We found that alternate splicing generates at least 14 isoforms. Nine of the isoforms were expressed in Xenopus oocytes and each produced a transient potassium current with highly variable properties. While the voltage dependence and inactivation kinetics of I(A) vary significantly between pyloric cell types, there are few significant differences between different shal isoforms expressed in oocytes. Pyloric I(A) diversity cannot be reproduced in oocytes by any combination of shal splice variants.While the function of alternate splicing of shal is not yet understood, our studies show that it does not by itself explain the biophysical diversity of I(A) seen in pyloric neurons.
机译:甲壳动物气胃神经节中的幽门运动系统产生持续的适应行为。神经回路中的每种细胞类型都具有独特但动态的电子表型,这对于正常的网络功能至关重要。我们先前证明了不同成分神经元中的瞬时钾电流(I(A))是唯一且可调节的,尽管shal基因编码介导每个细胞中I(A)的alpha亚基这一事实。我们现在检查假说,沙尔的交替剪接是幽门I(A)多样性的原因。我们发现交替剪接产生至少14个同工型。九种同工型在非洲爪蟾卵母细胞中表达,各自产生具有高度可变特性的瞬时钾电流。尽管幽门细胞类型之间I(A)的电压依赖性和失活动力学有显着差异,但卵母细胞表达的不同shal亚型之间几乎没有显着差异。 shal剪接变体的任何组合都不能在卵母细胞中复制幽门I(A)多样性。虽然尚不清楚shal的可变剪接功能,但我们的研究表明它本身并不能解释I(A)的生物物理多样性。在幽门神经元中可见。

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