Björnfors E Rebecka, El Manira Abdeljabbar
Department of Neuroscience, Karolinska Institute, Stockholm, Sweden.
Elife. 2016 Aug 25;5:e18579. doi: 10.7554/eLife.18579.
Flexibility in the bilateral coordination of muscle contraction underpins variable locomotor movements or gaits. While the locomotor rhythm is generated by ipsilateral excitatory interneurons, less is known about the commissural excitatory interneurons. Here we examined how the activity of the V0v interneurons - an important commissural neuronal class - varies with the locomotor speed in adult zebrafish. Although V0v interneurons are molecularly homogenous, their activity pattern during locomotion is not uniform. They consist of two distinct types dependent on whether they display rhythmicity or not during locomotion. The rhythmic V0v interneurons were further subdivided into three sub-classes engaged sequentially, first at slow then intermediate and finally fast locomotor speeds. Their order of recruitment is defined by scaling their synaptic current with their input resistance. Thus we uncover, in an adult vertebrate, a novel organizational principle for a key class of commissural interneurons and their recruitment pattern as a function of locomotor speed.
肌肉收缩的双侧协调性灵活性是各种运动动作或步态的基础。虽然运动节律是由同侧兴奋性中间神经元产生的,但对于连合兴奋性中间神经元的了解较少。在这里,我们研究了V0v中间神经元(一种重要的连合神经元类型)的活动如何随成年斑马鱼的运动速度而变化。尽管V0v中间神经元在分子水平上是同质的,但其在运动过程中的活动模式并不均匀。它们由两种不同类型组成,这取决于它们在运动过程中是否表现出节律性。有节律的V0v中间神经元进一步细分为三个亚类,它们依次被激活,首先在慢速运动时,然后在中等速度运动时,最后在快速运动时。它们的激活顺序是通过将其突触电流与其输入电阻进行缩放来定义的。因此,我们在成年脊椎动物中发现了一类关键连合中间神经元的一种新的组织原则及其作为运动速度函数的募集模式。