Xu Jun, Kang Ning, Jiang Li, Nedergaard Maiken, Kang Jian
Department of Cell Biology and Anatomy, New York Medical College, Valhalla, New York 10595, USA.
J Neurosci. 2005 Feb 16;25(7):1750-60. doi: 10.1523/JNEUROSCI.4217-04.2005.
The efficiency of neural circuits is enhanced not only by increasing synaptic strength but also by increasing intrinsic excitability. In contrast to the detailed analysis of long-term potentiation (LTP), less attention has been given to activity-dependent changes in the intrinsic neuronal excitability. By stimulating hippocampal CA1 pyramidal neurons with synaptic inputs correlating with postsynaptic neuronal spikes, we elicited an LTP of intrinsic excitability (LTP-IE) concurring with synaptic LTP. LTP-IE was manifested as a decrease in the action potential threshold that was attributable to a hyperpolarized shift in the activation curve of voltage-gated sodium channels (VGSCs) rather than activity-dependent changes in synaptic inputs or A-type K+ channels. Cell-attached patch recording of VGSC activities indicated such an activity-dependent change in VGSCs. Induction of LTP-IE was blocked by the NMDA receptor antagonist APV, intracellular BAPTA, the CaM kinase inhibitors KN-62 and autocamtide-2-related inhibitory peptide, and the protein synthesis inhibitors emetine and anisomycin. The results suggest that induction of LTP-IE shares a similar signaling pathway with the late phase of synaptic LTP and requires activation of the NMDA glutamate receptor subtype, Ca2+ influx, activity of CaM kinase II, and function of the protein synthesis. This new form of hippocampal neuronal plasticity could be a cellular correlate of learning and memory besides synaptic LTP.
神经回路的效率不仅通过增加突触强度得以提高,还通过增强内在兴奋性来实现。与对长时程增强(LTP)的详细分析不同,对神经元内在兴奋性的活动依赖性变化关注较少。通过用与突触后神经元动作电位相关的突触输入刺激海马CA1锥体神经元,我们诱发了与突触LTP同时出现的内在兴奋性长时程增强(LTP-IE)。LTP-IE表现为动作电位阈值降低,这归因于电压门控钠通道(VGSCs)激活曲线的超极化移位,而非突触输入或A 型钾通道的活动依赖性变化。对VGSC活动的细胞贴附式膜片钳记录表明了VGSCs的这种活动依赖性变化。LTP-IE的诱导被NMDA受体拮抗剂APV、细胞内BAPTA、CaM激酶抑制剂KN-62和自磷酸化钙调蛋白2相关抑制肽以及蛋白质合成抑制剂依米丁和茴香霉素所阻断。结果表明,LTP-IE的诱导与突触LTP的晚期阶段共享相似的信号通路,并且需要NMDA谷氨酸受体亚型的激活、Ca2+内流、CaM激酶II的活性以及蛋白质合成的功能。这种新的海马神经元可塑性形式可能是除突触LTP之外学习和记忆的细胞关联物。