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A Challenge of Numbers and Diversity: Neurogenesis in the Drosophila Optic Lobe

机译:数字和多样性的挑战:果蝇视神经叶中的神经发生。

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The brain areas that endow insects with the ability to see consist of remarkably complex neural circuits. Reiterated arrays of many diverse neuron subtypes are assembled into modular yet coherent functional retinotopic maps. Tremendous progress in developing genetic tools and cellular markers over the past years advanced our understanding of the mechanisms that control the stepwise production and differentiation of neurons in the visual system of Drosophila melanogaster. The postembryonic optic lobe utilizes at least two modes of neurogenesis that are distinct from other parts of the fly central nervous system. In the first optic ganglion, the lamina, neuroepithelial cells give rise to precursor cells, whose proliferation and differentiation depend on anterograde signals from photoreceptor axons. In the second optic ganglion, the medulla, the coordinated activity of four signaling pathways orchestrates the gradual conversion of neuroepithelial cells into neuroblasts, while a specific cascade of temporal identity transcription factors controls subtype diversification of their progeny.
机译:赋予昆虫视力的大脑区域由非常复杂的神经回路组成。将许多不同神经元亚型的重复阵列组装成模块化但连贯的功能性视网膜视位图。在过去的几年中,在开发遗传工具和细胞标记物方面取得了巨大进展,这使我们对控制果蝇视觉系统中神经元逐步产生和分化的机制的理解更加深入。胚后视神经叶利用至少两种不同于苍蝇中枢神经系统其他部位的神经发生方式。在第一个视神经节中,椎板中的神经上皮细胞产生前体细胞,其增殖和分化取决于感光受体轴突的顺行信号。在第二神经节髓质中,四个信号传导途径的协调活动可协调神经上皮细胞向成神经细胞的逐渐转化,而特定的时间同一性转录因子级联则控制其子代的亚型多样化。

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