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通过子宫内电穿孔实现小鼠浦肯野细胞中的选择性和调节性基因表达。

Selective and regulated gene expression in murine Purkinje cells by in utero electroporation.

机构信息

Department of Physiology, School of Medicine, Keio University, 35 Shinanomachi, Shinjuku-ku, Tokyo 160-8582, Japan.

出版信息

Eur J Neurosci. 2012 Oct;36(7):2867-76. doi: 10.1111/j.1460-9568.2012.08203.x. Epub 2012 Jul 10.

Abstract

Cerebellar Purkinje cells, which convey the only output from the cerebellar cortex, play an essential role in cerebellar functions, such as motor coordination and motor learning. To understand how Purkinje cells develop and function in the mature cerebellum, an efficient method for molecularly perturbing them is needed. Here we demonstrate that Purkinje cell progenitors at embryonic day (E)11.5 could be efficiently and preferentially transfected by spatially directed in utero electroporation (IUE) with an optimized arrangement of electrodes. Electrophysiological analyses indicated that the electroporated Purkinje cells maintained normal membrane properties, synaptic responses and synaptic plasticity at postnatal days 25-28. By combining the L7 promoter and inducible Cre/loxP system with IUE, transgenes were expressed even more specifically in Purkinje cells and in a temporally controlled manner. We also show that three different fluorescent proteins could be simultaneously expressed, and that Bassoon, a large synaptic protein, could be expressed in the electroporated Purkinje cells. Moreover, phenotypes of staggerer mutant mice, which have a deletion in the gene encoding retinoid-related orphan receptor α (RORα1), were recapitulated by electroporating a dominant-negative form of RORα1 into Purkinje cells at E11.5. Together, these results indicate that this new IUE protocol, which allows the selective, effective and temporally regulated expression of multiple foreign genes transfected into Purkinje cell progenitors in vivo, without changing the cells' physiological characteristics, is a powerful tool for elucidating the molecular mechanisms underlying early Purkinje cell developmental events, such as dendritogenesis and migration, and synaptic plasticity in mature Purkinje cells.

摘要

小脑浦肯野细胞是小脑皮层唯一的输出神经元,在小脑功能(如运动协调和运动学习)中发挥着重要作用。为了了解浦肯野细胞在成熟小脑中的发育和功能,需要有一种有效的方法来对其进行分子干扰。在这里,我们证明了胚胎期第 11.5 天(E11.5)的浦肯野细胞祖细胞可以通过空间定向的子宫内电穿孔(IUE),以优化的电极排列,高效且优先地进行转染。电生理分析表明,转染后的浦肯野细胞在出生后第 25-28 天仍保持正常的膜特性、突触反应和突触可塑性。通过将 L7 启动子和诱导型 Cre/loxP 系统与 IUE 结合,转染基因在浦肯野细胞中的表达更加特异,且具有时间控制的特点。我们还表明,三种不同的荧光蛋白可以同时表达,并且大型突触蛋白 Bassoon 可以在转染的浦肯野细胞中表达。此外, staggerer 突变小鼠的表型可以通过在 E11.5 将显性负形式的 RORα1 转染到浦肯野细胞中来再现。综上所述,该新的 IUE 方案允许在体内对浦肯野细胞祖细胞进行选择性、高效和时间调节的多种外源基因的转染,而不改变细胞的生理特征,是阐明早期浦肯野细胞发育事件(如树突发生和迁移)和成熟浦肯野细胞中突触可塑性的分子机制的有力工具。

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