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本文引用的文献

1
The dynamics of neuronal migration.神经元迁移的动力学。
Adv Exp Med Biol. 2014;800:25-36. doi: 10.1007/978-94-007-7687-6_2.
2
Molecular pathways controlling the sequential steps of cortical projection neuron migration.控制皮质投射神经元迁移顺序步骤的分子途径。
Adv Exp Med Biol. 2014;800:1-24. doi: 10.1007/978-94-007-7687-6_1.
3
Pocket proteins pRb and p107 are required for cortical lamination independent of apoptosis.口袋蛋白 pRb 和 p107 对于皮质分层是必需的,而与细胞凋亡无关。
Dev Biol. 2013 Dec 1;384(1):101-13. doi: 10.1016/j.ydbio.2013.09.015. Epub 2013 Sep 19.
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Gene targeting in mice: a review.小鼠基因打靶:综述
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Integrative mechanisms of oriented neuronal migration in the developing brain.脑发育过程中定向神经元迁移的整合机制。
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6
Expression of exogenous LIN28 contributes to proliferation and survival of mouse primary cortical neurons in vitro.外源性LIN28的表达有助于体外培养的小鼠原代皮质神经元的增殖和存活。
Neuroscience. 2013 Sep 17;248:448-58. doi: 10.1016/j.neuroscience.2013.06.023. Epub 2013 Jun 24.
7
The retinoblastoma protein is essential for survival of postmitotic neurons.视网膜母细胞瘤蛋白是有丝分裂后神经元存活所必需的。
J Neurosci. 2012 Oct 17;32(42):14809-14. doi: 10.1523/JNEUROSCI.1912-12.2012.
8
COUP-TFI promotes radial migration and proper morphology of callosal projection neurons by repressing Rnd2 expression.COUP-TFI 通过抑制 Rnd2 表达促进胼胝体投射神经元的放射状迁移和正确形态发生。
Development. 2011 Nov;138(21):4685-97. doi: 10.1242/dev.068031. Epub 2011 Sep 28.
9
Efficient gene delivery into multiple CNS territories using in utero electroporation.利用子宫内电穿孔技术将基因高效导入多个中枢神经系统区域。
J Vis Exp. 2011 Jun 23(52):2957. doi: 10.3791/2957.
10
Neuronal migration defects in the Loa dynein mutant mouse.Loa 动力蛋白突变小鼠的神经元迁移缺陷。
Neural Dev. 2011 May 25;6:26. doi: 10.1186/1749-8104-6-26.

通过子宫内电穿孔诱导蛋白质缺失以确定转基因模型中神经元迁移的缺陷。

Induction of protein deletion through in utero electroporation to define deficits in neuronal migration in transgenic models.

作者信息

Svoboda Devon S, Clark Alysen, Park David S, Slack Ruth S

机构信息

Department of Cellular and Molecular Medicine, University of Ottawa;

Department of Cellular and Molecular Medicine, University of Ottawa.

出版信息

J Vis Exp. 2015 Jan 12(95):51983. doi: 10.3791/51983.

DOI:10.3791/51983
PMID:25650557
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4354530/
Abstract

Genetic deletion using the Cre-Lox system in transgenic mouse lines is a powerful tool used to study protein function. However, except in very specific Cre models, deletion of a protein throughout a tissue or cell population often leads to complex phenotypes resulting from multiple interacting mechanisms. Determining whether a phenotype results from disruption of a cell autonomous mechanism, which is intrinsic to the cell in question, or from a non-cell autonomous mechanism, which would result from impairment of that cell's environment, can be difficult to discern. To gain insight into protein function in an in vivo context, in utero electroporation (IUE) enables gene deletion in a small subset of cells within the developing cortex or some other selected brain region. IUE can be used to target specific brain areas, including the dorsal telencephalon, medial telencephalon, hippocampus, or ganglionic eminence. This facilitates observation of the consequences of cell autonomous gene deletion in the context of a healthy environment. The goal of this protocol is to show how IUE can be used to analyze a defect in radial migration in a floxed transgenic mouse line, with an emphasis on distinguishing between the cell autonomous and non-cell autonomous effects of protein deletion. By comparing the phenotype resulting from gene deletion within the entire cortex versus IUE-mediated gene deletion in a limited cell population, greater insight into protein function in brain development can be obtained than by using either technique in isolation.

摘要

在转基因小鼠品系中使用Cre-Lox系统进行基因删除是研究蛋白质功能的一种强大工具。然而,除了在非常特殊的Cre模型中,在整个组织或细胞群体中删除一种蛋白质通常会导致由多种相互作用机制产生的复杂表型。确定一种表型是由所讨论细胞固有的细胞自主机制破坏引起的,还是由该细胞环境受损导致的非细胞自主机制引起的,可能很难辨别。为了在体内环境中深入了解蛋白质功能,子宫内电穿孔(IUE)能够在发育中的皮质或其他选定的脑区的一小部分细胞中进行基因删除。IUE可用于靶向特定的脑区,包括背侧端脑、内侧端脑、海马体或神经节隆起。这有助于在健康环境中观察细胞自主基因删除的后果。本方案的目的是展示如何使用IUE来分析floxed转基因小鼠品系中放射状迁移的缺陷,重点是区分蛋白质删除的细胞自主效应和非细胞自主效应。通过比较整个皮质内基因删除与IUE介导的有限细胞群体中的基因删除所产生的表型,与单独使用任何一种技术相比,可以更深入地了解大脑发育中的蛋白质功能。