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首页> 外文期刊>Current Biology: CB >Wiring Economy and Volume Exclusion Determine Neuronal Placement in the Drosophila Brain
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Wiring Economy and Volume Exclusion Determine Neuronal Placement in the Drosophila Brain

机译:接线经济性和体积排阻决定果蝇大脑中的神经元位置

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Wiring economy has successfully explained the individual placement of neurons in simple nervous systems like that of Caenorhabditis elegans [1-3] and the locations of coarser structures like cortical areas in complex vertebrate brains [4]. However, it remains unclear whether wiring economy can explain the placement of individual neurons in brains larger than that of C. elegans. Indeed, given the greater number of neuronal interconnections in larger brains, simply minimizing the length of connections results in unrealistic configurations, with multiple neurons occupying the same position in space. Avoiding such configurations, or volume exclusion, repels neurons from each other, thus counteracting wiring economy. Here we test whether wiring economy together with volume exclusion can explain the placement of neurons in a module of the Drosophila melanogaster brain known as lamina cartridge [5-13]. We used newly developed techniques for semiautomated reconstruction from serial electron microscopy (EM) [14] to obtain the shapes of neurons, the location of synapses, and the resultant synaptic connectivity. We show that wiring length minimization and volume exclusion together can explain the structure of the lamina microcircuit. Therefore, even in brains larger than that of C. elegans, at least for some circuits, optimization can play an important role in individual neuron placement.
机译:节约经济成功地解释了神经元在简单神经系统中的单个位置,如秀丽隐杆线虫[1-3],以及较复杂的结构,如复杂脊椎动物大脑中皮质区域的位置[4]。然而,目前尚不清楚布线经济性能否解释单个神经元在比秀丽隐杆线虫更大的大脑中的位置。确实,鉴于较大大脑中神经元互连的数量更多,简单地最小化连接长度会导致配置不切实际,多个神经元在空间中占据相同位置。避免这种配置或体积排阻会彼此排斥神经元,从而抵消了布线的经济性。在这里,我们测试布线经济性和体积排阻是否可以解释神经元在果蝇黑脑大脑模块(称为椎板)中的位置[5-13]。我们使用新开发的技术,用于通过串行电子显微镜(EM)进行半自动重建[14],以获得神经元的形状,突触的位置以及所产生的突触连接性。我们表明,最小化布线长度和体积排阻可以解释层状微电路的结构。因此,即使在比秀丽隐杆线虫更大的大脑中,至少对于某些电路而言,优化在单个神经元放置中也可以发挥重要作用。

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