Alle Henrik, Roth Arnd, Geiger Jörg R P
Independent Hertie Research Group, Max-Planck-Institute for Brain Research, 60528 Frankfurt, Germany.
Science. 2009 Sep 11;325(5946):1405-8. doi: 10.1126/science.1174331.
Action potentials in nonmyelinated axons are considered to contribute substantially to activity-dependent brain metabolism. Here we show that fast Na+ current decay and delayed K+ current onset during action potentials in nonmyelinated mossy fibers of the rat hippocampus minimize the overlap of their respective ion fluxes. This results in total Na+ influx and associated energy demand per action potential of only 1.3 times the theoretical minimum, in contrast to the factor of 4 used in previous energy budget calculations for neural activity. Analysis of ionic conductance parameters revealed that the properties of Na+ and K+ channels are matched to make axonal action potentials energy-efficient, minimizing their contribution to activity-dependent metabolism.
无髓鞘轴突中的动作电位被认为对活动依赖的脑代谢有重要贡献。在这里,我们表明,大鼠海马体无髓鞘苔藓纤维动作电位期间快速的Na⁺电流衰减和延迟的K⁺电流起始使它们各自离子通量的重叠最小化。这导致每个动作电位的总Na⁺内流和相关能量需求仅为理论最小值的1.3倍,这与先前神经活动能量预算计算中使用的4倍因子形成对比。对离子电导参数的分析表明,Na⁺和K⁺通道的特性相匹配,以使轴突动作电位具有能量效率,将它们对活动依赖代谢的贡献降至最低。