首页> 外文期刊>Frontiers in Cellular Neuroscience >Long term ex vivo culturing of Drosophila brain as a method to live image pupal brains: insights into the cellular mechanisms of neuronal remodeling
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Long term ex vivo culturing of Drosophila brain as a method to live image pupal brains: insights into the cellular mechanisms of neuronal remodeling

机译:长期培养果蝇大脑的离体培养live大脑动态图像的方法:洞察神经元重塑的细胞机制

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Holometabolous insects, including Drosophila melanogaster , undergo complete metamorphosis that includes a pupal stage. During metamorphosis, the Drosophila nervous system undergoes massive remodeling and growth, that include cell death and large-scale axon and synapse elimination as well as neurogenesis, developmental axon regrowth, and formation of new connections. Neuronal remodeling is an essential step in the development of vertebrate and invertebrate nervous systems. Research on the stereotypic remodeling of Drosophila mushroom body (MB) γ neurons has contributed to our knowledge of the molecular mechanisms of remodeling but our knowledge of the cellular mechanisms remain poorly understood. A major hurdle in understanding various dynamic processes that occur during metamorphosis is the lack of time-lapse resolution. The pupal case and opaque fat bodies that enwrap the central nervous system (CNS) make live-imaging of the central brain in-vivo impossible. We have established an ex vivo long-term brain culture system that supports the development and neuronal remodeling of pupal brains. By optimizing culture conditions and dissection protocols, we have observed development in culture at kinetics similar to what occurs in vivo . Using this new method, we have obtained the first time-lapse sequence of MB γ neurons undergoing remodeling in up to a single cell resolution. We found that axon pruning is initiated by blebbing, followed by one-two nicks that seem to initiate a more widely spread axon fragmentation. As such, we have set up some of the tools and methodologies needed for further exploration of the cellular mechanisms of neuronal remodeling, not limited to the MB. The long-term ex vivo brain culture system that we report here could be used to study dynamic aspects of neurodevelopment of any Drosophila neuron.
机译:包括果蝇(Drosophila melanogaster)在内的全代谢昆虫经历了包括a期在内的完全变态。在变态过程中,果蝇神经系统经历了巨大的重塑和生长,包括细胞死亡和大规模的轴突和突触消除,以及神经发生,发育性轴突再生和新连接的形成。神经元重塑是脊椎动物和无脊椎动物神经系统发育的重要步骤。果蝇蘑菇体(MB)γ神经元的定型重塑的研究有助于我们对重塑的分子机制的了解,但对细胞机制的了解仍然知之甚少。理解变形过程中发生的各种动态过程的主要障碍是缺乏延时分辨率。 case的情况和包裹中枢神经系统(CNS)的不透明脂肪体使体内中枢大脑的实时成像变得不可能。我们建立了一个体外长期脑培养系统,该系统支持brain脑的发育和神经元重塑。通过优化培养条件和解剖方案,我们观察到了与体内发生的动力学相似的动力学发展。使用这种新方法,我们获得了以单个细胞分辨率进行重构的MBγ神经元的第一个延时序列。我们发现轴突修剪是通过起泡而引发的,其次是一两个刻痕,这些缺口似乎引发了轴突的更广泛散布。因此,我们已经建立了进一步探索神经元重塑的细胞机制所需的一些工具和方法,而不仅限于MB。我们在这里报告的长期离体脑培养系统可用于研究任何果蝇神经元神经发育的动态方面。

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