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A genetic screen for novel components of the notch signaling pathway during Drosophila bristle development.果蝇刚毛发育过程中Notch信号通路新组分的遗传筛选。
Genetics. 1998 Sep;150(1):211-20. doi: 10.1093/genetics/150.1.211.
2
Analysis of dominant enhancers and suppressors of activated Notch in Drosophila.果蝇中活化Notch的显性增强子和抑制子分析。
Genetics. 1996 Nov;144(3):1127-41. doi: 10.1093/genetics/144.3.1127.
3
Insight into Notch Signaling Steps That Involve from Dominant-Modifier Screens in .从显性修饰筛查看 Notch 信号通路步骤。
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Drosophila Notch receptor activity suppresses Hairless function during adult external sensory organ development.果蝇Notch受体活性在成虫外部感觉器官发育过程中抑制无翅功能。
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5
Only a subset of the binary cell fate decisions mediated by Numb/Notch signaling in Drosophila sensory organ lineage requires Suppressor of Hairless.在果蝇感觉器官谱系中,由Numb/Notch信号介导的二元细胞命运决定中,只有一部分需要无毛抑制因子。
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6
Identification of chromosomal deficiencies that modify Drosophila mastermind mutant phenotypes.鉴定可改变果蝇中介体突变体表型的染色体缺失。
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7
Echinoid mutants exhibit neurogenic phenotypes and show synergistic interactions with the Notch signaling pathway.海胆类突变体表现出神经源性表型,并与Notch信号通路呈现协同相互作用。
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Genetic characterization of the Drosophila melanogaster Suppressor of deltex gene: A regulator of notch signaling.黑腹果蝇deltex基因抑制因子的遗传特征:Notch信号通路的一个调节因子
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Regulation of Notch signaling by multiple Ankyrin repeat containing protein Mask.含多个锚蛋白重复序列的蛋白Mask对Notch信号通路的调控
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Integration of Drosophila and Human Genetics to Understand Notch Signaling Related Diseases.果蝇与人类遗传学的整合,以了解与 Notch 信号相关的疾病。
Adv Exp Med Biol. 2018;1066:141-185. doi: 10.1007/978-3-319-89512-3_8.
4
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Transcription factor networks in Drosophila melanogaster.黑腹果蝇中的转录因子网络。
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9
ATP-dependent chromatin remodeling complexes in Drosophila.果蝇中依赖ATP的染色质重塑复合物
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10
Identification of a family of mastermind-like transcriptional coactivators for mammalian notch receptors.鉴定哺乳动物Notch受体的一类类主调控分子转录共激活因子。
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本文引用的文献

1
The Mutational Basis for the "Allelic" Modifier Mutants, ENHANCER and SUPPRESSOR OF HAIRLESS, of DROSOPHILA MELANOGASTER.果蝇黑腹果蝇“等位基因”修饰突变体、无毛增强子和抑制子的突变基础。
Genetics. 1970 Mar;64(3-4):471-9. doi: 10.1093/genetics/64.3-4.471.
2
Functional interactions of neurogenic genes of Drosophila melanogaster.果蝇神经发生基因的功能相互作用。
Genetics. 1988 Mar;118(3):499-508. doi: 10.1093/genetics/118.3.499.
3
Only a subset of the binary cell fate decisions mediated by Numb/Notch signaling in Drosophila sensory organ lineage requires Suppressor of Hairless.在果蝇感觉器官谱系中,由Numb/Notch信号介导的二元细胞命运决定中,只有一部分需要无毛抑制因子。
Development. 1997 Nov;124(22):4435-46. doi: 10.1242/dev.124.22.4435.
4
Suppressor of Hairless-independent events in Notch signaling imply novel pathway elements.Notch信号通路中与无毛抑制因子无关的事件暗示了新的信号通路元件。
Development. 1997 Nov;124(21):4265-73. doi: 10.1242/dev.124.21.4265.
5
Feedback regulation is central to Delta-Notch signalling required for Drosophila wing vein morphogenesis.反馈调节是果蝇翅脉形态发生所需的Delta-Notch信号传导的核心。
Development. 1997 Sep;124(17):3283-91. doi: 10.1242/dev.124.17.3283.
6
Feed-back mechanisms affecting Notch activation at the dorsoventral boundary in the Drosophila wing.影响果蝇翅膀背腹边界Notch激活的反馈机制。
Development. 1997 Sep;124(17):3241-51. doi: 10.1242/dev.124.17.3241.
7
Fringe modulates Notch-ligand interactions.边缘蛋白调节Notch配体相互作用。
Nature. 1997 Jun 26;387(6636):908-12. doi: 10.1038/43191.
8
Beaded of Goldschmidt, an antimorphic allele of Serrate, encodes a protein lacking transmembrane and intracellular domains.戈德施密特珠状蛋白,锯齿状蛋白的一个反效等位基因,编码一种缺乏跨膜结构域和细胞内结构域的蛋白质。
Genetics. 1997 Feb;145(2):359-74. doi: 10.1093/genetics/145.2.359.
9
Notch signaling inhibits muscle cell differentiation through a CBF1-independent pathway.Notch信号通路通过一条不依赖CBF1的途径抑制肌肉细胞分化。
Development. 1996 Dec;122(12):3765-73. doi: 10.1242/dev.122.12.3765.
10
Analysis of dominant enhancers and suppressors of activated Notch in Drosophila.果蝇中活化Notch的显性增强子和抑制子分析。
Genetics. 1996 Nov;144(3):1127-41. doi: 10.1093/genetics/144.3.1127.

果蝇刚毛发育过程中Notch信号通路新组分的遗传筛选。

A genetic screen for novel components of the notch signaling pathway during Drosophila bristle development.

作者信息

Go M J, Artavanis-Tsakonas S

机构信息

Department of Cell Biology and Biology, Howard Hughes Medical Institute, Boyer Center for Molecular Medicine, Yale University, New Haven, Connecticut 06536-0812, USA.

出版信息

Genetics. 1998 Sep;150(1):211-20. doi: 10.1093/genetics/150.1.211.

DOI:10.1093/genetics/150.1.211
PMID:9725840
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1460305/
Abstract

The Notch receptor is the central element in a cell signaling mechanism controlling a broad spectrum of cell fate choices. Genetic modifier screens in Drosophila and subsequent molecular studies have identified several Notch pathway components, but the biochemical nature of signaling is still elusive. Here, we report the results of a genetic modifier screen of the bristle phenotype of a gain-of-function Notch allele, Abruptex16. Abruptex mutations interfere with lateral inhibition/specification events that control the segregation of epidermal and sensory organ precursor lineages, thus inhibiting bristle formation. Mutations that reduce Notch signaling suppress this phenotype. This screen of approximately 50,000 flies led to the identification of a small number of dominant suppressors in seven complementation groups. These include known components in the pathway, Notch, mastermind, Delta, and Hairless, as well as two novel mutations. The first, A122, appears to interact with Notch only during bristle development. The other, M285, displays extensive genetic interactions with the Notch pathway elements and appears, in general, capable of suppressing Notch gain-of-function phenotypes while enhancing Notch loss-of-function phenotypes, suggesting that it plays an important role in Notch signaling.

摘要

Notch受体是细胞信号传导机制中的核心元件,控制着广泛的细胞命运选择。在果蝇中进行的遗传修饰筛选以及随后的分子研究已经鉴定出了几种Notch信号通路成分,但信号传导的生化本质仍然难以捉摸。在这里,我们报告了对功能获得性Notch等位基因Abruptex16的刚毛表型进行遗传修饰筛选的结果。Abruptex突变干扰了控制表皮和感觉器官前体谱系分离的侧向抑制/特化事件,从而抑制了刚毛的形成。降低Notch信号传导的突变可抑制这种表型。对大约50,000只果蝇的筛选导致在七个互补组中鉴定出少数显性抑制子。这些包括该信号通路中的已知成分,Notch、mastermind、Delta和Hairless,以及两个新的突变。第一个是A122,似乎仅在刚毛发育过程中与Notch相互作用。另一个是M285,与Notch信号通路元件表现出广泛的遗传相互作用,并且总体上似乎能够抑制Notch功能获得性表型,同时增强Notch功能丧失性表型,这表明它在Notch信号传导中起重要作用。