Goto Y, O'Donnell P
Center for Neuropharmacology and Neuroscience, Albany Medical College, Albany, New York 12208, USA.
J Neurosci. 2001 Jun 15;21(12):4498-504. doi: 10.1523/JNEUROSCI.21-12-04498.2001.
Nucleus accumbens neurons show membrane potential fluctuations between a very negative resting membrane potential and periodical plateau depolarizations. Because action potential firing occurs only during the depolarized state, the control of transitions between states is important for information processing within this region, with an impact on accumbens-related behaviors. It has been proposed that ensembles of active neurons in the nucleus accumbens could be based on a population of cells depolarizing simultaneously into the UP state. In this study, in vivo intracellular recordings from accumbens neurons were performed simultaneously with local field potential recordings to examine whether the nucleus accumbens can exhibit synchronization of membrane potential states in a population of neurons. These simultaneous recordings indicated that local field potential shifts occurred synchronously with transitions to the UP state. Furthermore, manipulations that evoked prolonged plateau depolarizations also evoked field potentials of similar duration. Such signals likely occurred because of simultaneous membrane potential changes in a population of neurons. Together with our previous studies, these results suggest that membrane potential states in the nucleus accumbens can be synchronized by synaptic inputs from the hippocampus.
伏隔核神经元在非常负的静息膜电位和周期性平台去极化之间表现出膜电位波动。由于动作电位发放仅发生在去极化状态期间,因此状态之间转换的控制对于该区域内的信息处理很重要,会影响与伏隔核相关的行为。有人提出,伏隔核中活跃神经元的集合可能基于一群同时去极化进入UP状态的细胞。在本研究中,对伏隔核神经元进行体内细胞内记录,并同时进行局部场电位记录,以检查伏隔核是否能在一群神经元中表现出膜电位状态的同步性。这些同步记录表明,局部场电位变化与向UP状态的转换同步发生。此外,诱发长时间平台去极化的操作也诱发了类似持续时间的场电位。这种信号可能是由于一群神经元中同时发生的膜电位变化而产生的。与我们之前的研究一起,这些结果表明伏隔核中的膜电位状态可以通过来自海马体的突触输入而同步。