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本文引用的文献

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Primacy of Flexor Locomotor Pattern Revealed by Ancestral Reversion of Motor Neuron Identity.运动神经元身份的祖先逆转揭示屈肌运动模式的首要地位
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The intrinsic operation of the networks that make us locomote.使我们能够移动的神经网络的内在运作。
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V1 and v2b interneurons secure the alternating flexor-extensor motor activity mice require for limbed locomotion.V1 和 v2b 中间神经元确保了四肢运动所需的交替屈肌-伸肌运动活动。
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Ultrasensitive fluorescent proteins for imaging neuronal activity.用于记录神经元活动的超高灵敏荧光蛋白
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Dual-mode operation of neuronal networks involved in left-right alternation.涉及左右交替的神经网络的双模操作。
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脊髓运动回路基于运动神经元的位置和特性,按照分层规则发育形成。

Spinal Locomotor Circuits Develop Using Hierarchical Rules Based on Motorneuron Position and Identity.

作者信息

Hinckley Christopher A, Alaynick William A, Gallarda Benjamin W, Hayashi Marito, Hilde Kathryn L, Driscoll Shawn P, Dekker Joseph D, Tucker Haley O, Sharpee Tatyana O, Pfaff Samuel L

机构信息

Gene Expression Laboratory and the Howard Hughes Medical Institute, Salk Institute for Biological Studies, 10010 North Torrey Pines, La Jolla, CA 92037, USA.

Institute of Cellular and Molecular Biology, The University of Texas at Austin, Austin, TX 78712, USA.

出版信息

Neuron. 2015 Sep 2;87(5):1008-21. doi: 10.1016/j.neuron.2015.08.005.

DOI:10.1016/j.neuron.2015.08.005
PMID:26335645
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4592696/
Abstract

The coordination of multi-muscle movements originates in the circuitry that regulates the firing patterns of spinal motorneurons. Sensory neurons rely on the musculotopic organization of motorneurons to establish orderly connections, prompting us to examine whether the intraspinal circuitry that coordinates motor activity likewise uses cell position as an internal wiring reference. We generated a motorneuron-specific GCaMP6f mouse line and employed two-photon imaging to monitor the activity of lumbar motorneurons. We show that the central pattern generator neural network coordinately drives rhythmic columnar-specific motorneuron bursts at distinct phases of the locomotor cycle. Using multiple genetic strategies to perturb the subtype identity and orderly position of motorneurons, we found that neurons retained their rhythmic activity-but cell position was decoupled from the normal phasing pattern underlying flexion and extension. These findings suggest a hierarchical basis of motor circuit formation that relies on increasingly stringent matching of neuronal identity and position.

摘要

多肌肉运动的协调起源于调节脊髓运动神经元放电模式的神经回路。感觉神经元依靠运动神经元的肌肉定位组织来建立有序连接,这促使我们研究协调运动活动的脊髓内神经回路是否同样将细胞位置用作内部布线参考。我们生成了一种运动神经元特异性GCaMP6f小鼠品系,并采用双光子成像来监测腰段运动神经元的活动。我们发现,中枢模式发生器神经网络在运动周期的不同阶段协调驱动有节奏的柱状特异性运动神经元爆发。通过多种遗传策略干扰运动神经元的亚型身份和有序位置,我们发现神经元保留了它们的节律性活动,但细胞位置与屈伸背后的正常相位模式脱钩。这些发现表明了运动回路形成的分层基础,该基础依赖于神经元身份和位置的越来越严格的匹配。