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Imaging spinal neuron ensembles active during locomotion with genetically encoded calcium indicators

机译:在具有遗传编码的钙指标的运动过程中,成像脊柱神经元在运动过程中活跃

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Advances inmolecular-genetic tools for labeling neuronal subtypes, and the emerging development of robust genetic probes for neural activity, are likely to revolutionize our understanding of the functional organization of neural circuits. In principle, these tools should be able to detect activity at cellular resolution for large ensembles of identified neuron types as they participate in specific behaviors. This report describes the use of genetically encoded calcium indicators (GECIs), combined with two-photon microscopy, to characterize V1 interneurons, known to be critical for setting the duration of the step cycle. All V1 interneurons arise from a common precursor population and express engrailed-1 (En1). Our data show that although neighboring interneurons that arise from the same developmental lineage and share many features, such as projection patterns and neurotransmitter profiles, they are not irrevocably committed to having the same pattern of activity.
机译:用于标记神经元亚型的分散遗传工具的预付款,以及用于神经活动的强大遗传探针的新出现发展,很可能彻底改变我们对神经电路功能组织的理解。原则上,这些工具应该能够在参与特定行为的情况下以鉴定的神经元类型的大型集成来检测蜂窝分辨率的活动。本报告描述了使用遗传编码的钙指示剂(GECI),与双光子显微镜结合起来,以表征V1 Interneurons,已知为设置步骤循环的持续时间是至关重要的。所有v1型在常见的前体群体中出现并表达engregailed-1(EN1)。我们的数据表明,尽管从同一发展谱系中出现的相邻的内核并分享许多特征,例如投影模式和神经递质轮廓,但它们并不是不可撤销地致力于具有相同的活动模式。

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