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High-content microscopy identifies new neurite outgrowth regulators

机译:高含量显微镜识别新的神经态过度监管机构

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Neurons, with their long axons and elaborate dendritic arbour, establish the complex circuitry that is essential for the proper functioning of the nervous system. Whereas a catalogue of structural, molecular, and functional differences between axons and dendrites is accumulating, the mechanisms involved in early events of neuronal differentiation, such as neurite initiation and elongation, are less well understood, mainly because the key molecules involved remain elusive. Here we describe the establishment and application of a microscopy-based approach designed to identify novel proteins involved in neurite initiation and/or elongation. We identified 21 proteins that affected neurite outgrowth when ectopically expressed in cells. Complementary time-lapse microscopy allowed us to discriminate between early and late effector proteins. Localization experiments with GFP-tagged proteins in fixed and living cells revealed a further 14 proteins that associated with neurite tips either early or late during neurite outgrowth. Coexpression experiments of the new effector proteins provide a first glimpse on a possible functional relationship of these proteins during neurite outgrowth. Altogether, we demonstrate the potential of the systematic microscope-based screening approaches described here to tackle the complex biological process of neurite outgrowth regulation.
机译:Neurons,具有长轴突和精心制作的树突乔木,建立了对神经系统正常运作至关重要的复杂电路。虽然结构,分子和树突之间的结构,分子和功能差的目录积累,但是涉及神经元分化的早期事件的机制,例如神经沸石引发和伸长率,较小地理解,主要是因为所涉及的关键分子仍然难以捉摸。在这里,我们描述了一种基于显微镜的方法的建立和应用,所述方法旨在识别参与神经沸石引发和/或伸长的新型蛋白质。我们确定了21种蛋白质,当在细胞中不同地表达时,会影响神经突的过度。互补的延迟显微镜使我们能够区分早期和晚期效应蛋白。固定和活细胞中的GFP标记蛋白质的本地化实验揭示了一种另外的14个蛋白质,其在神经突幼虫期间早期或晚期与神经突提示相关联。新效应蛋白的共表达实验提供了在神经突遗传过程中可能与这些蛋白质的可能关系的第一瞥。完全,我们展示了系统中描述的基于系统显微镜的筛选方法的潜力,以解决神经沸石过度调节的复杂生物过程。

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