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Cloning and expression of a zebrafish SCN1B ortholog and identification of a species-specific splice variant

机译:斑马鱼SCN1B直系同源基因的克隆与表达及物种特异性剪接变体的鉴定

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Background Voltage-gated Na+ channel β1 (Scn1b) subunits are multi-functional proteins that play roles in current modulation, channel cell surface expression, cell adhesion, cell migration, and neurite outgrowth. We have shown previously that β1 modulates electrical excitability in vivo using a mouse model. Scn1b null mice exhibit spontaneous seizures and ataxia, slowed action potential conduction, decreased numbers of nodes of Ranvier in myelinated axons, alterations in nodal architecture, and differences in Na+ channel α subunit localization. The early death of these mice at postnatal day 19, however, make them a challenging model system to study. As a first step toward development of an alternative model to investigate the physiological roles of β1 subunits in vivo we cloned two β1-like subunit cDNAs from D. rerio. Results Two β1-like subunit mRNAs from zebrafish, scn1ba_tv1 and scn1ba_tv2, arise from alternative splicing of scn1ba. The deduced amino acid sequences of Scn1ba_tv1 and Scn1ba_tv2 are identical except for their C-terminal domains. The C-terminus of Scn1ba_tv1 contains a tyrosine residue similar to that found to be critical for ankyrin association and Na+ channel modulation in mammalian β1. In contrast, Scn1ba_tv2 contains a unique, species-specific C-terminal domain that does not contain a tyrosine. Immunohistochemical analysis shows that, while the expression patterns of Scn1ba_tv1 and Scn1ba_tv2 overlap in some areas of the brain, retina, spinal cord, and skeletal muscle, only Scn1ba_tv1 is expressed in optic nerve where its staining pattern suggests nodal expression. Both scn1ba splice forms modulate Na+ currents expressed by zebrafish scn8aa, resulting in shifts in channel gating mode, increased current amplitude, negative shifts in the voltage dependence of current activation and inactivation, and increases in the rate of recovery from inactivation, similar to the function of mammalian β1 subunits. In contrast to mammalian β1, however, neither zebrafish subunit produces a complete shift to the fast gating mode and neither subunit produces complete channel inactivation or recovery from inactivation. Conclusion These data add to our understanding of structure-function relationships in Na+ channel β1 subunits and establish zebrafish as an ideal system in which to determine the contribution of scn1ba to electrical excitability in vivo.
机译:背景电压门控Na + 通道β1(Scn1b)亚基是多功能蛋白,在电流调节,通道细胞表面表达,细胞粘附,细胞迁移和神经突生长中发挥作用。先前我们已经证明,使用小鼠模型,β1在体内调节电兴奋性。 Scn1b缺失小鼠表现出自发性癫痫发作和共济失调,动作电位传导减慢,髓鞘轴突中Ranvier结节数量减少,淋巴结结构改变以及Na + 通道α亚基定位的差异。但是,这些小鼠在出生后第19天的早期死亡,使其成为具有挑战性的研究模型系统。作为开发替代模型以研究体内β1亚基的生理作用的第一步,我们克隆了来自D. rerio的两个β1样亚基cDNA。结果scn1ba的可变剪接产生了来自斑马鱼的两个β1样亚基mRNA,即scn1ba_tv1和scn1ba_tv2。 Scn1ba_tv1和Scn1ba_tv2的推导氨基酸序列除了它们的C端结构域外是相同的。 Scn1ba_tv1的C端含有一个酪氨酸残基,类似于酪氨酸残基,该残基对于锚蛋白缔合和哺乳动物β1的Na + 通道调节至关重要。相反,Scn1ba_tv2包含一个独特的,物种特异性的C末端域,该域不包含酪氨酸。免疫组织化学分析显示,虽然Scn1ba_tv1和Scn1ba_tv2的表达模式在脑,视网膜,脊髓和骨骼肌的某些区域重叠,但仅Scn1ba_tv1在视神经中表达,其染色模式提示淋巴结表达。两种scn1ba剪接形式均能调节斑马鱼scn8aa表达的Na + 电流,从而导致通道门控模式的偏移,电流幅度的增加,电流激活和失活的电压依赖性的负向偏移以及电流速率的增加。从失活中恢复过来,类似于哺乳动物β1亚基的功能。但是,与哺乳动物的β1相反,斑马鱼的两个亚基都不会完全转变为快速门控模式,并且两个亚基都不会导致通道完全失活或从失活中恢复。结论这些数据加深了我们对Na + 通道β1亚单位的结构-功能关系的了解,并建立了斑马鱼作为确定scn1ba对体内电兴奋性的贡献的理想系统。

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