Brodin L, Grillner S
Brain Res. 1985 Dec 23;360(1-2):149-58. doi: 10.1016/0006-8993(85)91230-2.
Fictive locomotion can be evoked in an in vitro preparation of the lamprey spinal cord by an activation of N-methyl-D-aspartate (NMDA) or kainate receptors. To obtain further knowledge of the putative transmitters underlying this activation the effects of L-glutamate and L-aspartate were examined. These endogenous amino acids exerted a distinctly different effect as compared to the synthetic amino acids (N-methyl-D,L-aspartate and kainate) previously tested. In a wide dose range L-glutamate and L-aspartate elicited fictive locomotion only when the bathing solution was rapidly circulated over the spinal cord surface. In the absence of fluid circulation the activity rapidly ceased. To test if this effect was due to an uptake of amino acids, two amino acid uptake inhibitors were administered. After exposure to p-chloromercuriphenylsulphonate (pCMS) or dihydrokainate (DHK), L-glutamate and L-aspartate elicited continuous fictive locomotion independently of whether the bathing fluid was circulated or not. This treatment also markedly lowered the threshold doses of L-glutamate and L-aspartate, while the effects of NMA and kainate were barely affected. Fictive locomotion induced by sensory stimulation of the tailfin was also prolonged by dihydrokainate. These findings suggest that a highly effective amino acid uptake system is present in the lamprey spinal cord and furthermore that it takes part in the inactivation of synaptically released acidic amino acid neurotransmitters, which are of importance for the initiation of locomotion.
通过激活N-甲基-D-天冬氨酸(NMDA)或海人藻酸受体,可在七鳃鳗脊髓的体外制备物中诱发虚构运动。为了进一步了解这种激活背后的假定递质,研究了L-谷氨酸和L-天冬氨酸的作用。与先前测试的合成氨基酸(N-甲基-D,L-天冬氨酸和海人藻酸)相比,这些内源性氨基酸产生了明显不同的作用。在很宽的剂量范围内,只有当浴液在脊髓表面快速循环时,L-谷氨酸和L-天冬氨酸才会诱发虚构运动。在没有液体循环的情况下,活动迅速停止。为了测试这种作用是否是由于氨基酸的摄取,给予了两种氨基酸摄取抑制剂。在暴露于对氯汞苯磺酸盐(pCMS)或二氢海人藻酸(DHK)后,无论浴液是否循环,L-谷氨酸和L-天冬氨酸都会诱发持续的虚构运动。这种处理还显著降低了L-谷氨酸和L-天冬氨酸的阈剂量,而NMA和海人藻酸的作用几乎没有受到影响。二氢海人藻酸也延长了尾鳍感觉刺激诱导的虚构运动。这些发现表明,七鳃鳗脊髓中存在一个高效的氨基酸摄取系统,而且它参与了突触释放的酸性氨基酸神经递质的失活,这些神经递质对运动的启动很重要。