Netzeband J G, Parsons K L, Sweeney D D, Gruol D L
Department of Neuropharmacology and Alcohol Research Center, The Scripps Research Institute, La Jolla, California 92037, USA.
J Neurophysiol. 1997 Jul;78(1):63-75. doi: 10.1152/jn.1997.78.1.63.
Selective agonists for metabotropic glutamate receptor (mGluR) subtypes were tested on mature, cultured rat cerebellar Purkinje neurons (> or = 21 days in vitro) to identify functionally relevant mGluRs expressed by these neurons and to investigate the transduction pathways associated with mGluR-mediated changes in membrane excitability. Current-clamp recordings (nystatin/perforated-patch method) were used to measure the membrane response of Purkinje neurons to brief microperfusion pulses (1.5 s) of the group I (mGluR1/mGluR5) agonists (1S,3R)-1-aminocyclopentane-1,3-dicarboxylic acid (300 microM), quisqualate (5 microM), and (R,S)-3,5-dihydroxyphenylglycine (50-500 microM). All group I mGluR agonists elicited biphasic membrane responses and burst activity in the Purkinje neurons. In addition, the group I mGluR agonists produced alterations in the active membrane properties of the Purkinje neurons and depressed the OFF response after hyperpolarizing current injection. In parallel microscopic Ca2+ imaging experiments, application of the group I mGluR agonists to fura-2-loaded cells elicited increases in intracellular Ca2+ in both the somatic and dendritic regions. The group II (mGluR2/mGluR3) agonist (2S,3S,4S)-alpha-(carboxycyclopropyl)-glycine (10 microM) and the group III (mGluR4/mGluR6/mGluR7/mGluR8) agonists L(+)-2-amino-4-phosphonobutyric acid (1 mM) and O-phospho-L-serine (200 microM) had no effect on the membrane potential or intracellular Ca2+ levels of the Purkinje neurons. The cultured Purkinje neurons, but not granule neurons or interneurons, showed immunostaining for mGluR1alpha in both the somatic and dendritic regions. All effects of the group I mGluR agonists were blocked by (+)-alpha-methyl-4-carboxyphenylglycine (1 mM), an mGluR antagonist. Furthermore, the phospholipase C inhibitor 1-[6-((17beta-3-methoxyestra-1,3,5(10)-trien-17-yl)amino)hexyl]-1H -pyrrole-2,5-dione (2 microM) blocked the group I mGluR agonist-mediated electrophysiological response and greatly attenuated the Ca2+ signal elicited by group I mGluR agonists, particularly in the dendrites. The inactive analogue 1-[6-((17beta-3-methoxyestra-1,3,5(10)-trien-17-yl)amino)hexyl]-2, 5-pyrrolidine-dione (2 microM) was relatively ineffective against the electrophysiological response and Ca2+ signal. These results indicate that functional group I mGluRs (but not group II or III mGluRs) can be activated on mature Purkinje neurons in culture and result in changes in neuronal excitability and intracellular Ca2+ mediated through phospholipase C. These data obtained from a defined neuronal type, the Purkinje neuron, confirm biochemical and molecular studies on the transduction mechanisms of group I mGluRs and show that this transduction pathway is linked to neuronal excitability and intracellular Ca2+ release in the Purkinje neurons.
在成熟的培养大鼠小脑浦肯野神经元(体外培养≥21天)上测试了代谢型谷氨酸受体(mGluR)亚型的选择性激动剂,以鉴定这些神经元表达的功能相关mGluR,并研究与mGluR介导的膜兴奋性变化相关的转导途径。采用电流钳记录(制霉菌素/穿孔膜片法)来测量浦肯野神经元对I组(mGluR1/mGluR5)激动剂(1S,3R)-1-氨基环戊烷-1,3-二羧酸(300μM)、喹啉酸(5μM)和(R,S)-3,5-二羟基苯甘氨酸(50 - 500μM)的短暂微灌注脉冲(1.5秒)的膜反应。所有I组mGluR激动剂均在浦肯野神经元中引发双相膜反应和爆发活动。此外,I组mGluR激动剂改变了浦肯野神经元的主动膜特性,并抑制了超极化电流注入后的OFF反应。在平行的显微镜Ca²⁺成像实验中,将I组mGluR激动剂应用于负载fura - 2的细胞,在体细胞和树突区域均引起细胞内Ca²⁺增加。II组(mGluR2/mGluR3)激动剂(2S,3S,4S)-α-(羧基环丙基)-甘氨酸(10μM)以及III组(mGluR4/mGluR6/mGluR7/mGluR8)激动剂L(+)-2-氨基-4-膦酰丁酸(1 mM)和O-磷酸-L-丝氨酸(200μM)对浦肯野神经元的膜电位或细胞内Ca²⁺水平没有影响。培养的浦肯野神经元,而非颗粒神经元或中间神经元,在体细胞和树突区域均显示出mGluR1α免疫染色。I组mGluR激动剂的所有效应均被mGluR拮抗剂(+)-α-甲基-4-羧基苯甘氨酸(1 mM)阻断。此外,磷脂酶C抑制剂1-[6-((17β-3-甲氧基雌甾-1,3,5(10)-三烯-17-基)氨基)己基]-1H-吡咯-2,5-二酮((2μM)阻断了I组mGluR激动剂介导的电生理反应,并极大地减弱了I组mGluR激动剂引发的Ca²⁺信号,尤其是在树突中。无活性类似物1-[6-((17β-3-甲氧基雌甾-1,3,5(10)-三烯-17-基)氨基)己基]-2,5-吡咯烷二酮(2μM)对电生理反应和Ca²⁺信号的作用相对较小。这些结果表明,功能性I组mGluR(而非II组或III组mGluR)可在培养的成熟浦肯野神经元上被激活,并导致通过磷脂酶C介导的神经元兴奋性和细胞内Ca²⁺变化。从特定神经元类型浦肯野神经元获得的这些数据证实了关于I组mGluR转导机制的生化和分子研究,并表明该转导途径与浦肯野神经元的神经元兴奋性和细胞内Ca²⁺释放相关。