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果蝇受体连接蛋白酪氨酸磷酸酶基因的定向诱变与遗传分析

Targeted mutagenesis and genetic analysis of a Drosophila receptor-linked protein tyrosine phosphatase gene.

作者信息

Hamilton B A, Ho A, Zinn Kai

机构信息

Division of Biology 216-76, California Institute of Technology, 91125, Pasadena, CA, USA.

出版信息

Rouxs Arch Dev Biol. 1995 Jan;204(3):187-192. doi: 10.1007/BF00241271.

Abstract

Several Drosophila receptor-linked protein tyrosine phosphatases (R-PTPs) are selectively expressed on axons of the developing embryonic central nervous system. The extracellular domains of these axonal R-PTPs are homologous to neural adhesion molecules. Thus, R-PTPs may directly couple cell recognition to signal transduction via control of tyrosine phosphorylation. To examine the function of these molecules during nervous system development, we wished to generate mutations in R-PTP genes. It was unclear whether a mutation in a single R-PTP gene would confer lethality, however, because the similarities in sequence and expression pattern between the axonal R-PTPs suggest that they may have partially redundant functions. To circumvent this problem, we developed a directed mutagenesis strategy based on local transposition of P elements, and used this approach to isolate a null mutation in the DPTP99A gene. This strategy, which we describe in detail here, should be applicable to any Drosophila gene within a lettered division of an appropriately marked P element. Flies lacking DPTP99A expression are viable and fertile, and we have been unable to detect any alterations in the embryonic nervous system of DPTP99A embryos using a variety of antibody markers.

摘要

几种果蝇受体连接蛋白酪氨酸磷酸酶(R-PTPs)在发育中的胚胎中枢神经系统轴突上选择性表达。这些轴突R-PTPs的细胞外结构域与神经粘附分子同源。因此,R-PTPs可能通过控制酪氨酸磷酸化将细胞识别直接与信号转导偶联起来。为了研究这些分子在神经系统发育过程中的功能,我们希望在R-PTP基因中产生突变。然而,尚不清楚单个R-PTP基因突变是否会导致致死性,因为轴突R-PTPs之间的序列和表达模式相似性表明它们可能具有部分冗余功能。为了规避这个问题,我们基于P因子的局部转座开发了一种定向诱变策略,并使用这种方法分离出DPTP99A基因的一个无效突变。我们在此详细描述的这种策略,应该适用于适当标记的P因子字母分区内的任何果蝇基因。缺乏DPTP99A表达的果蝇是有活力和可育的,并且我们使用多种抗体标记物在DPTP99A胚胎的胚胎神经系统中未能检测到任何改变。

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