Epithelial domains and the primordial antennal nervous system of the embryonic grasshopper Schistocerca gregaria.

Q4 Neuroscience
George Boyan, Erica Ehrhardt
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引用次数: 3

Abstract

The antenna is a key sensory organ in insects. Factors which pattern its epithelium and the spacing of sensillae will play an important role in shaping its contribution to adaptive behavior. The antenna of the grasshopper S. gregaria has three major articulations: scape, pedicel, and flagellum. During postembryonic development, the flagellum lengthens as segments (so-called meristal annuli) are added at each molt. However, the five most apical annuli do not subdivide; thus, their epithelial domains must already be defined during embryogenesis. We investigated epithelial compartmentalization and its relationship to the developing primordial nervous system of the antenna by simultaneous immunolabeling against the epithelial cell surface molecule Lachesin, against neuron-specific horseradish peroxidase, and against the mitosis marker phospho-histone 3. We found that Lachesin is initially expressed in a highly ordered pattern of "rings" and a "sock" in the apical antennal epithelium of the early embryo. These expression domains appear in a stereotypic order and prefigure later articulations. Proliferative cells segregate into these developing domains and pioneer- and sensory-cell precursors were molecularly identified. Our study allows pioneer neurons, guidepost cells, and the earliest sensory cell clusters of the primordial nervous system to be allocated to their respective epithelial domain. As the apical-most five domains remain stable through subsequent development, lengthening of the flagellum must originate from more basal regions and is likely to be under the control of factors homologous to those which regulate boundary and joint formation in the antenna of Drosophila.

胚胎蚱蜢的上皮结构域和原始触角神经系统。
触角是昆虫的重要感觉器官。影响其上皮结构和感受器间距的因素将在其适应行为的形成中发挥重要作用。蚱蜢的触角有三个主要关节:触角、花梗和鞭毛。在胚胎后发育过程中,鞭毛在每次蜕皮时增加片段(所谓的分生环)而变长。然而,最顶端的五个环没有细分;因此,它们的上皮结构域在胚胎发生时就已经确定了。我们通过同时免疫标记上皮细胞表面分子Lachesin、神经元特异性辣根过氧化物酶和有丝分裂标志物磷酸组蛋白3来研究上皮区隔化及其与天线原始神经系统发育的关系。我们发现Lachesin最初在早期胚胎的顶端触角上皮中以高度有序的“环”和“袜”模式表达。这些表达域以刻板的顺序出现,预示着以后的发音。增殖细胞分裂到这些发育区域,先锋细胞和感觉细胞的前体被分子鉴定。我们的研究允许将原始神经系统的先锋神经元、路标细胞和最早的感觉细胞簇分配到各自的上皮结构域。由于最顶端的五个结构域在随后的发育中保持稳定,鞭毛的延长一定起源于更基础的区域,并且可能受到与果蝇天线中调节边界和关节形成的同源因素的控制。
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来源期刊
Invertebrate Neuroscience
Invertebrate Neuroscience NEUROSCIENCES-
自引率
0.00%
发文量
0
审稿时长
>12 weeks
期刊介绍: Invertebrate Neurosciences publishes peer-reviewed original articles, reviews and technical reports describing recent advances in the field of invertebrate neuroscience. The journal reports on research that exploits the simplicity and experimental tractability of the invertebrate preparations to underpin fundamental advances in neuroscience. Articles published in Invertebrate Neurosciences serve to highlight properties of signalling in the invertebrate nervous system that may be exploited in the field of antiparisitics, molluscicides and insecticides. Aspects of particular interest include: Functional analysis of the invertebrate nervous system; Molecular neuropharmacology and toxicology; Neurogenetics and genomics; Functional anatomy; Neurodevelopment; Neuronal networks; Molecular and cellular mechanisms of behavior and behavioural plasticity.
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