Département de Kinanthropologie Université du Québec à Montréal, Montréal, Québec H3C 3P8, Canada.
J Neurosci. 2010 Jan 13;30(2):523-33. doi: 10.1523/JNEUROSCI.3433-09.2010.
A unilateral activation of the mesencephalic locomotor region (MLR) produces symmetrical bilateral locomotion in all vertebrate species tested to date. How this occurs remains unresolved. This study examined the possibility that the symmetry occurred at the level of the inputs from the MLR to reticulospinal (RS) cells. In lamprey semi-intact preparations, we recorded intracellular responses of pairs of large, homologous RS cells on both sides to stimulation of the MLR on one side. The synaptic responses on both sides were very similar in shape, amplitude, and threshold intensity. Increasing MLR stimulation intensity produced a symmetrical increase in the magnitude of the responses on both sides. Ca(2+) imaging confirmed the bilateral activation of smaller-sized RS cells as well. In a high-divalent cation solution, the synaptic responses of homologous RS cells persisted and exhibited a constant latency during high-frequency stimulation. Moreover, during gradual replacement of normal Ringer's solution with a Ca(2+)-free solution, the magnitude of responses showed a gradual reduction with a similar time course in the homologous RS cells. These results support the idea that the MLR projects monosynaptically to RS cells on both sides with symmetrical inputs. During locomotion of the semi-intact preparation, the discharge pattern was also very similar in homologous bilateral RS cells. Anatomical experiments confirmed the presence of MLR neurons projecting ipsilaterally to the reticular formation intermingled with neurons projecting contralaterally. We conclude that the bilaterally symmetrical MLR inputs to RS cells are likely contributors to generating symmetrical locomotor activity.
中脑运动区(MLR)的单侧激活会在迄今为止测试的所有脊椎动物物种中产生对称的双侧运动。这种情况是如何发生的仍未解决。本研究探讨了这种对称性是否发生在 MLR 到网状脊髓(RS)细胞输入的水平上。在七鳃鳗半完整制剂中,我们记录了来自 MLR 一侧刺激的双侧同源 RS 细胞对侧的成对大型 RS 细胞的细胞内反应。两侧的突触反应在形状、幅度和阈值强度上非常相似。增加 MLR 刺激强度会导致两侧反应幅度的对称增加。Ca(2+)成像也证实了较小 RS 细胞的双侧激活。在高二价阳离子溶液中,同源 RS 细胞的突触反应持续存在,并在高频刺激期间表现出恒定的潜伏期。此外,在逐渐用无 Ca(2+)溶液替代正常 Ringer 溶液期间,同源 RS 细胞的反应幅度随着相似的时间过程逐渐减小。这些结果支持 MLR 以对称输入投射到双侧 RS 细胞的单突触假说。在半完整制剂的运动过程中,同源双侧 RS 细胞的放电模式也非常相似。解剖学实验证实,存在向网状结构同侧投射的 MLR 神经元与向对侧投射的神经元混合在一起。我们得出结论,RS 细胞双侧对称的 MLR 输入可能是产生对称运动活动的原因之一。