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本文引用的文献

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A Study of the Effect on Development of "Minute" Mutations in Drosophila Melanogaster.果蝇“微小”突变对发育影响的研究。
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The Minute Reaction in the Development of DROSOPHILA MELANOGASTER.果蝇发育过程中的分钟反应。
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Silencing of ribosomal protein L3 genes in N. tabacum reveals coordinate expression and significant alterations in plant growth, development and ribosome biogenesis.烟草中核糖体蛋白L3基因的沉默揭示了植物生长、发育和核糖体生物发生中的协同表达及显著变化。
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5
Genetic and bioinformatic analysis of 41C and the 2R heterochromatin of Drosophila melanogaster: a window on the heterochromatin-euchromatin junction.黑腹果蝇41C及2R异染色质的遗传与生物信息学分析:打开异染色质 - 常染色质交界处的一扇窗
Genetics. 2004 Feb;166(2):807-22. doi: 10.1534/genetics.166.2.807.
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Heterochromatin: silence is golden.异染色质:沉默是金。
Curr Biol. 2003 Dec 2;13(23):R895-8. doi: 10.1016/j.cub.2003.11.006.
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Silencing the Drosophila ribosomal protein L14 gene using targeted RNA interference causes distinct somatic anomalies.利用靶向RNA干扰使果蝇核糖体蛋白L14基因沉默会导致明显的躯体异常。
Gene. 2003 Nov 27;320:41-8. doi: 10.1016/s0378-1119(03)00827-8.
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Genetic analysis of the second chromosome centromeric heterochromatin of Drosophila melanogaster.黑腹果蝇第二条染色体着丝粒异染色质的遗传分析。
Genome. 2003 Jun;46(3):343-52. doi: 10.1139/g03-010.
9
FISH analysis of Drosophila melanogaster heterochromatin using BACs and P elements.利用细菌人工染色体(BACs)和P因子对黑腹果蝇异染色质进行荧光原位杂交(FISH)分析。
Chromosoma. 2003 Jul;112(1):26-37. doi: 10.1007/s00412-003-0241-9. Epub 2003 Jun 25.
10
Body size and cell size in Drosophila: the developmental response to temperature.果蝇的体型与细胞大小:对温度的发育响应
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对RpL38和RpL5的遗传分析,这两个微小基因位于黑腹果蝇2号染色体的着丝粒异染色质中。

Genetic analysis of RpL38 and RpL5, two minute genes located in the centric heterochromatin of chromosome 2 of Drosophila melanogaster.

作者信息

Marygold Steven J, Coelho Carmen M A, Leevers Sally J

机构信息

Growth Regulation Laboratory, Cancer Research UK--London Research Institute, London WC2A 3PX, United Kingdom.

出版信息

Genetics. 2005 Feb;169(2):683-95. doi: 10.1534/genetics.104.034124. Epub 2004 Nov 1.

DOI:10.1534/genetics.104.034124
PMID:15520262
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1449105/
Abstract

The Minute mutations of Drosophila melanogaster are thought to disrupt genes that encode ribosomal proteins (RPs) and thus impair ribosome function and protein synthesis. However, relatively few Minutes have been tied to distinct RP genes and more Minute loci are likely to be discovered. We have identified point mutations in RpL38 and RpL5 in a screen for factors limiting for growth of the D. melanogaster wing. Here, we present the first genetic characterization of these loci. RpL38 is located in the centric heterochromatin of chromosome arm 2R and is identical to a previously identified Minute, M(2)41A, and also l(2)41Af. RpL5 is located in the 2L centric heterochromatin and defines a novel Minute gene. Both genes are haplo-insufficient, as heterozygous mutations cause the classic Minute phenotypes of small bristles and delayed development. Surprisingly, we find that RpL38(-)/+ and RpL5(-)/+ adult flies have abnormally large wings as a result of increased cell size, emphasizing the importance of translational regulation in the control of growth. Taken together, our data provide new molecular and genetic information on two previously uncharacterized Minute/RP genes, the heterochromatic regions in which they reside, and the role of their protein products in the control of organ growth.

摘要

黑腹果蝇的“分钟”突变被认为会破坏编码核糖体蛋白(RPs)的基因,从而损害核糖体功能和蛋白质合成。然而,与不同RP基因相关的“分钟”突变相对较少,可能还有更多的“分钟”位点有待发现。我们在一项筛选限制黑腹果蝇翅膀生长的因子的实验中,鉴定出了RpL38和RpL5中的点突变。在此,我们展示了这些位点的首次遗传学特征描述。RpL38位于染色体臂2R的着丝粒异染色质中,与先前鉴定的一个“分钟”基因M(2)41A相同,也与l(2)41Af相同。RpL5位于2L着丝粒异染色质中,并定义了一个新的“分钟”基因。这两个基因都是单倍体不足的,因为杂合突变会导致小刚毛和发育延迟等典型的“分钟”表型。令人惊讶的是,我们发现RpL38(-)/+和RpL5(-)/+成年果蝇由于细胞大小增加而翅膀异常大,这强调了翻译调控在生长控制中的重要性。综上所述,我们的数据提供了关于两个以前未被表征的“分钟”/RP基因、它们所在的异染色质区域以及它们的蛋白质产物在器官生长控制中的作用的新分子和遗传信息。