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Hierarchical control of locomotion by distinct types of spinal V2a interneurons in zebrafish

机译:斑马鱼中不同类型的脊柱V2A型脊柱v2a中间核的层次控制

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In all vertebrates, excitatory spinal interneurons execute dynamic adjustments in the timing and amplitude of locomotor movements. Currently, it is unclear whether interneurons responsible for timing control are distinct from those involved in amplitude control. Here, we show that in larval zebrafish, molecularly, morphologically and electrophysiologically distinct types of V2a neurons exhibit complementary patterns of connectivity. Stronger higher-order connections from type I neurons to other excitatory V2a and inhibitory V0d interneurons provide timing control, while stronger last-order connections from type II neurons to motor neurons provide amplitude control. Thus, timing and amplitude are coordinated by distinct interneurons distinguished not by their occupation of hierarchically-arranged anatomical layers, but rather by differences in the reliability and probability of higher-order and last-order connections that ultimately form a single anatomical layer. These findings contribute to our understanding of the origins of timing and amplitude control in the spinal cord.
机译:在所有脊椎动物中,兴奋性脊柱型在运动运动的时序和幅度中执行动态调整。目前,目前尚不清楚负责定时控制的互联网是否与幅度控制涉及的那些。在这里,我们表明,在幼虫斑马鱼,分子,形态学和电生理学上不同类型的V2A神经元表现出互补的连接模式。从I型神经元到其他兴奋性V2A和抑制V0D中间核的更强的高阶连接提供定时控制,而来自II型神经元的最终连接到电机神经元提供幅度控制。因此,通过占用分层排列的解剖层的不同的中间核来协调定时和幅度,而是通过最终形成单个解剖层的高阶和上次连接的可靠性和概率的差异。这些发现有助于我们对脊髓中的时序和幅度控制的起源的理解。

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