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Steroid-triggered, cell-autonomous death of a Drosophila motoneuron during metamorphosis.蜕皮期间果蝇运动神经元的类固醇触发的细胞自主死亡。
Neural Dev. 2011 Apr 27;6:15. doi: 10.1186/1749-8104-6-15.
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Patterning and organization of motor neuron dendrites in the Drosophila larva.果蝇幼虫中运动神经元树突的模式形成与组织
Dev Biol. 2009 Dec 15;336(2):213-21. doi: 10.1016/j.ydbio.2009.09.041. Epub 2009 Oct 7.
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Lineage and birth date specify motor neuron targeting and dendritic architecture in adult Drosophila.谱系和出生日期决定成年果蝇中运动神经元的靶向性和树突结构。
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Antagonistic roles for Ultrabithorax and Antennapedia in regulating segment-specific apoptosis of differentiated motoneurons in the Drosophila embryonic central nervous system.超双胸和触角足在调控果蝇胚胎中枢神经系统中分化运动神经元的节段特异性凋亡方面的拮抗作用。
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Differential potencies of effector genes in adult Drosophila.成年果蝇中效应基因的差异效力。
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The adult abdominal neuromuscular junction of Drosophila: a model for synaptic plasticity.果蝇的成年腹部神经肌肉接头:突触可塑性的模型。
J Neurobiol. 2006 Sep 1;66(10):1140-55. doi: 10.1002/neu.20279.
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Programmed cell death mechanisms of identifiable peptidergic neurons in Drosophila melanogaster.黑腹果蝇中可识别的肽能神经元的程序性细胞死亡机制
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Homeotic gene function in the muscles of Drosophila larvae.同源异型基因在果蝇幼虫肌肉中的功能。
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The expression pattern of the Drosophila vesicular glutamate transporter: a marker protein for motoneurons and glutamatergic centers in the brain.果蝇囊泡谷氨酸转运体的表达模式:一种用于运动神经元和大脑中谷氨酸能中心的标记蛋白。
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Segment-specific prevention of pioneer neuron apoptosis by cell-autonomous, postmitotic Hox gene activity.通过细胞自主的有丝分裂后Hox基因活性进行特定节段的先驱神经元凋亡预防。
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表达 dHb9 的幼虫运动神经元在变态过程中持续存在,以支配成虫特有的肌肉靶点并在果蝇羽化中发挥作用。

dHb9 expressing larval motor neurons persist through metamorphosis to innervate adult-specific muscle targets and function in Drosophila eclosion.

作者信息

Banerjee Soumya, Toral Marcus, Siefert Matthew, Conway David, Dorr Meredith, Fernandes Joyce

机构信息

École Polytechnique Fédérale De Lausanne (EPFL), CH-1015, Lausanne, Switzerland.

Department of Biology, Miami University, Oxford, Ohio, 45056.

出版信息

Dev Neurobiol. 2016 Dec;76(12):1387-1416. doi: 10.1002/dneu.22400. Epub 2016 Jun 6.

DOI:10.1002/dneu.22400
PMID:27168166
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5106342/
Abstract

The Drosophila larval nervous system is radically restructured during metamorphosis to produce adult specific neural circuits and behaviors. Genesis of new neurons, death of larval neurons and remodeling of those neurons that persistent collectively act to shape the adult nervous system. Here, we examine the fate of a subset of larval motor neurons during this restructuring process. We used a dHb9 reporter, in combination with the FLP/FRT system to individually identify abdominal motor neurons in the larval to adult transition using a combination of relative cell body location, axonal position, and muscle targets. We found that segment specific cell death of some dHb9 expressing motor neurons occurs throughout the metamorphosis period and continues into the post-eclosion period. Many dHb9 > GFP expressing neurons however persist in the two anterior hemisegments, A1 and A2, which have segment specific muscles required for eclosion while a smaller proportion also persist in A2-A5. Consistent with a functional requirement for these neurons, ablating them during the pupal period produces defects in adult eclosion. In adults, subsequent to the execution of eclosion behaviors, the NMJs of some of these neurons were found to be dismantled and their muscle targets degenerate. Our studies demonstrate a critical continuity of some larval motor neurons into adults and reveal that multiple aspects of motor neuron remodeling and plasticity that are essential for adult motor behaviors. © 2016 Wiley Periodicals, Inc. Develop Neurobiol 76: 1387-1416, 2016.

摘要

果蝇幼虫的神经系统在变态发育过程中会进行彻底重组,以产生成虫特有的神经回路和行为。新神经元的产生、幼虫神经元的死亡以及那些持续存在的神经元的重塑共同作用,塑造了成虫的神经系统。在此,我们研究了在这一重组过程中一部分幼虫运动神经元的命运。我们使用了一种dHb9报告基因,结合FLP/FRT系统,通过相对细胞体位置、轴突位置和肌肉靶点的组合,在幼虫到成虫的转变过程中单独识别腹部运动神经元。我们发现,一些表达dHb9的运动神经元在整个变态发育期间都会发生节段特异性细胞死亡,并持续到羽化后阶段。然而,许多表达dHb9>GFP的神经元在两个前半节段A1和A2中持续存在,这两个节段具有羽化所需的节段特异性肌肉,而较小比例的神经元也在A2 - A5中持续存在。与这些神经元的功能需求一致,在蛹期消融它们会导致成虫羽化出现缺陷。在成虫中,在执行羽化行为之后,发现其中一些神经元的神经肌肉接头被拆解,其肌肉靶点退化。我们的研究证明了一些幼虫运动神经元到成虫的关键连续性,并揭示了运动神经元重塑和可塑性的多个方面对成虫运动行为至关重要。© 2016威利期刊公司。《发育神经生物学》76: 1387 - 1416,2016年。