色纹诱导基因无翼在斑点果蝇钟形感受器的特定细胞类型中表达。

IF 0.8 3区 生物学 Q4 CELL BIOLOGY
Development Genes and Evolution Pub Date : 2021-07-01 Epub Date: 2021-03-27 DOI:10.1007/s00427-021-00674-z
Masato Koseki, Nobuaki K Tanaka, Shigeyuki Koshikawa
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引用次数: 5

摘要

斑点果蝇Drosophila guttifera在翅膀上有独特的色素沉积模式,并被用作进化研究的模型,探索新性状的进化获得机制。在这个物种中,一个形态编码基因,无翅,在物种特定的位置表达,并诱导独特的色素沉着模式。为了产生翼静脉上的一些色素沉着斑,无翼被认为是在发育中的钟形感受器细胞中表达的,但目前尚不清楚在四种细胞类型中哪一种表达无翼。通过原位杂交和免疫组化,我们发现两种细胞类型,穹窿细胞和窝窝细胞,表达无翅。这是一个独特的情况下,非神经元的SOP(感觉器官前体)的后代细胞产生无翼作为色素沉着模式形成的诱导剂。我们的发现为通过分析穹窿细胞和窝窝细胞的基因调控来阐明一种独特的无翼表达模式的进化机制开辟了一条道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The color pattern inducing gene wingless is expressed in specific cell types of campaniform sensilla of a polka-dotted fruit fly, Drosophila guttifera.

A polka-dotted fruit fly, Drosophila guttifera, has a unique pigmentation pattern on its wings and is used as a model for evo-devo studies exploring the mechanism of evolutionary gain of novel traits. In this species, a morphogen-encoding gene, wingless, is expressed in species-specific positions and induces a unique pigmentation pattern. To produce some of the pigmentation spots on wing veins, wingless is thought to be expressed in developing campaniform sensillum cells, but it was unknown which of the four cell types there express(es) wingless. Here we show that two of the cell types, dome cells and socket cells, express wingless, as indicated by in situ hybridization together with immunohistochemistry. This is a unique case in which non-neuronal SOP (sensory organ precursor) progeny cells produce Wingless as an inducer of pigmentation pattern formation. Our finding opens a path to clarifying the mechanism of evolutionary gain of a unique wingless expression pattern by analyzing gene regulation in dome cells and socket cells.

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来源期刊
Development Genes and Evolution
Development Genes and Evolution 生物-发育生物学
CiteScore
4.30
自引率
0.00%
发文量
13
审稿时长
>12 weeks
期刊介绍: Development Genes and Evolution publishes high-quality reports on all aspects of development biology and evolutionary biology. The journal reports on experimental and bioinformatics work at the systemic, cellular and molecular levels in the field of animal and plant systems, covering key aspects of the following topics: Embryological and genetic analysis of model and non-model organisms Genes and pattern formation in invertebrates, vertebrates and plants Axial patterning, embryonic induction and fate maps Cellular mechanisms of morphogenesis and organogenesis Stem cells and regeneration Functional genomics of developmental processes Developmental diversity and evolution Evolution of developmentally relevant genes Phylogeny of animals and plants Microevolution Paleontology.
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