Buchmann Institute for Molecular Life Sciences, Goethe University, Frankfurt, Germany.
Institute for Biophysical Chemistry, Goethe University, Frankfurt, Germany.
Elife. 2018 Sep 11;7:e34997. doi: 10.7554/eLife.34997.
Locomotion circuits developed in simple animals, and circuit motifs further evolved in higher animals. To understand locomotion circuit motifs, they must be characterized in many models. The nematode possesses one of the best-studied circuits for undulatory movement. Yet, for 1/6 of the cholinergic motor neurons (MNs), the AS MNs, functional information is unavailable. Ventral nerve cord (VNC) MNs coordinate undulations, in small circuits of complementary neurons innervating opposing muscles. AS MNs differ, as they innervate muscles and other MNs asymmetrically, without complementary partners. We characterized AS MNs by optogenetic, behavioral and imaging analyses. They generate asymmetric muscle activation, enabling navigation, and contribute to coordination of dorso-ventral undulation as well as anterio-posterior bending wave propagation. AS MN activity correlated with forward and backward locomotion, and they functionally connect to premotor interneurons (PINs) for both locomotion regimes. Electrical feedback from AS MNs via gap junctions may affect only backward PINs.
运动回路存在于简单动物中,并在高等动物中进一步进化。为了理解运动回路的模式,必须在许多模型中对其进行特征描述。线虫具有研究得最好的波动运动回路之一。然而,对于六分之一的胆碱能运动神经元(MNs),即 AS MNs,其功能信息是未知的。腹神经索(VNC)MNs 通过小的互补神经元回路协调波动,这些神经元支配着相对的肌肉。AS MNs 不同,因为它们不对称地支配肌肉和其他 MNs,没有互补的伙伴。我们通过光遗传学、行为和成像分析来描述 AS MNs。它们产生不对称的肌肉激活,从而实现导航,并有助于协调背腹波动以及前后弯曲波的传播。AS MN 的活动与前进和后退运动相关,它们在两种运动模式下都与运动前神经元(PINs)有功能连接。AS MN 通过缝隙连接的电反馈可能只影响向后的 PINs。