Sugimori M, Llinás R R
Department of Physiology and Biophysics, New York University Medical Center, NY 10016.
Proc Natl Acad Sci U S A. 1990 Jul;87(13):5084-8. doi: 10.1073/pnas.87.13.5084.
Real-time visualization of intracellular calcium concentration ([Ca2+]i) changes in mammalian Purkinje cells in vitro, utilizing the dye Fura-2, indicates that calcium action potentials are generated in the dendritic tree and follow a particular activation sequence. During spontaneous oscillations or after direct current injection, dendritic spikes are initiated as slow and graded plateau potentials at the level of the tertiary or spiny branchlets of the dendrite. As the plateau potentials become sufficiently high to reach the firing threshold for full dendritic spike generation, calcium entry is observed at the more proximal branches of the dendritic tree. These action potentials are then conducted orthodromically toward the soma and may invade other branches in the arbor antidromically. Simultaneous recording of the intracellular electrical activity and the Fura-2 fluorescent signal indicates that the intracellular calcium transients are accompanied by a very rapid increase in intracellular calcium concentration. This increase in [Ca2+]i exhibits an almost equally fast return to baseline after the termination of the action potential, indicating the presence of very efficient calcium sequestering and extruding mechanisms in the dendrites. Iontophoretic application of glutamate at the dendritic level provided a further demonstration of the spatial separation of plateau potentials from dendritic spikes and gives further insights into the details of dendritic integration in this neuron.
利用Fura-2染料对体外培养的哺乳动物浦肯野细胞内钙浓度([Ca2+]i)变化进行实时可视化观察,结果表明钙动作电位在树突中产生,并遵循特定的激活顺序。在自发振荡期间或直流注入后,树突棘在树突三级分支或有棘小分支水平上以缓慢的分级平台电位开始。当平台电位足够高以达到产生完整树突棘动作电位的激发阈值时,在树突树的更近端分支处观察到钙内流。然后这些动作电位以顺向方式向胞体传导,并可能以逆向方式侵入树突中的其他分支。细胞内电活动和Fura-2荧光信号的同步记录表明,细胞内钙瞬变伴随着细胞内钙浓度的非常快速的增加。动作电位终止后,[Ca2+]i的这种增加几乎同样迅速地恢复到基线,表明树突中存在非常有效的钙螯合和排出机制。在树突水平上离子导入谷氨酸进一步证明了平台电位与树突棘的空间分离,并进一步深入了解了该神经元中树突整合的细节。