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改变黑腹果蝇中肘脉中断基因表达时间和模式的突变。

Mutations that alter the timing and pattern of cubitus interruptus gene expression in Drosophila melanogaster.

作者信息

Slusarski D C, Motzny C K, Holmgren R

机构信息

Department of Biochemistry, Molecular Biology and Cell Biology, Northwestern University, Evanston, Illinois 60208-3500.

出版信息

Genetics. 1995 Jan;139(1):229-40. doi: 10.1093/genetics/139.1.229.

DOI:10.1093/genetics/139.1.229
PMID:7705626
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1206321/
Abstract

The cubitus interruptus (ci) gene is a member of the Drosophila segment polarity gene family and encodes a protein with a zinc finger domain homologous to the vertebrate Gli genes and the nematode tra-1 gene. Three classes of existing mutations in the ci locus alter the regulation of ci expression and can be used to examine ci function during development. The first class of ci mutations causes interruptions in wing veins four and five due to inappropriate expression of the ci product in the posterior compartment of imaginal discs. The second class of mutations eliminates ci protein early in embryogenesis and causes the deletion of structures that are derived from the region including and adjacent to the engrailed expressing cells. The third class of mutations eliminates ci protein later in embryogenesis and blocks the formation of the ventral naked cuticle. The loss of ci expression at these two different stages in embryonic development correlates with the subsequent elimination of wingless expression. Adults heterozygous for the unique ciCe mutation have deletions between wing veins three and four. A similar wing defect is present in animals mutant for the segment polarity gene fused that encodes a putative serine/threonine kinase. In ciCe/+ and fused mutants, the deletions between wing veins three and four correlate with increased ci protein levels in the anterior compartment. Thus, proper regulation of both the ci mRNA and protein appears to be critical for normal Drosophila development.

摘要

肘脉中断(ci)基因是果蝇体节极性基因家族的成员,编码一种具有锌指结构域的蛋白质,该结构域与脊椎动物的Gli基因和线虫的tra-1基因同源。ci基因座中现有的三类突变改变了ci表达的调控,可用于研究发育过程中ci的功能。第一类ci突变由于ci产物在成虫盘后区的不适当表达,导致翅脉4和5中断。第二类突变在胚胎发育早期消除ci蛋白,并导致源自包括engrailed表达细胞及其相邻区域的结构缺失。第三类突变在胚胎发育后期消除ci蛋白,并阻止腹侧裸表皮的形成。在胚胎发育的这两个不同阶段ci表达的缺失与随后无翅表达的消除相关。ciCe独特突变的杂合成虫在翅脉3和4之间有缺失。在编码假定丝氨酸/苏氨酸激酶的体节极性基因fused突变的动物中也存在类似的翅缺陷。在ciCe/+和fused突变体中,翅脉3和4之间的缺失与前区ci蛋白水平的增加相关。因此,ci mRNA和蛋白的正确调控对于果蝇的正常发育似乎至关重要。

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本文引用的文献

1
Studies on the Position Effect at the Cubitus Interruptus Locus of Drosophila Melanogaster.黑腹果蝇肘脉中断位点位置效应的研究
Genetics. 1955 May;40(3):343-73. doi: 10.1093/genetics/40.3.343.
2
Molecular cloning of sequences from wingless, a segment polarity gene in Drosophila: the spatial distribution of a transcript in embryos.从无翅基因(果蝇的一个体节极性基因)中克隆序列:在胚胎中转录本的空间分布。
EMBO J. 1987 Jun;6(6):1765-73. doi: 10.1002/j.1460-2075.1987.tb02429.x.
3
A role for wingless in the segmental gradient of Drosophila?无翅基因在果蝇体节梯度中起作用吗?
Development. 1993 Feb;117(2):677-87. doi: 10.1242/dev.117.2.677.
4
Drosophila hedgehog acts as a morphogen in cellular patterning.果蝇的刺猬蛋白在细胞模式形成中作为一种形态发生素发挥作用。
Cell. 1994 Feb 11;76(3):449-60. doi: 10.1016/0092-8674(94)90110-4.
5
Segment polarity gene interactions modulate epidermal patterning in Drosophila embryos.体节极性基因相互作用调节果蝇胚胎中的表皮模式形成。
Development. 1993 Oct;119(2):501-17. doi: 10.1242/dev.119.2.501.
6
Genetic analysis of hedgehog signalling in the Drosophila embryo.果蝇胚胎中刺猬信号通路的遗传分析。
Dev Suppl. 1993:115-24.
7
The genetic basis of patterned baldness in Drosophila.
Cell. 1994 Mar 11;76(5):781-4. doi: 10.1016/0092-8674(94)90351-4.
8
Mutations affecting segment number and polarity in Drosophila.影响果蝇体节数量和极性的突变
Nature. 1980 Oct 30;287(5785):795-801. doi: 10.1038/287795a0.
9
Sequence, structure, and codon preference of the Drosophila ribosomal protein 49 gene.果蝇核糖体蛋白49基因的序列、结构及密码子偏好性
Nucleic Acids Res. 1984 Jul 11;12(13):5495-513. doi: 10.1093/nar/12.13.5495.
10
Analysis of a whole chromosome in Drosophila.果蝇全染色体分析
Cold Spring Harb Symp Quant Biol. 1974;38:581-9. doi: 10.1101/sqb.1974.038.01.062.