Department of Physiology, Michigan State University, East Lansing, Michigan 48824, USA.
J Neurochem. 2011 Dec;119(6):1205-16. doi: 10.1111/j.1471-4159.2011.07528.x. Epub 2011 Nov 3.
Neocortical circuits are most sensitive to sensory experience during a critical period of early development. Previous studies implicate that brain-derived neurotrophic factor (BDNF) and GABAergic inhibition may control the timing of the critical period. By using an in vitro maturation model, we found that neurons at DIV (day in vitro) 7, around a period when functional synapses start to form and GABAergic inhibition emerges, displayed the most dynamic activation of extracellular signal-regulated kinase 1/2 (ERK1/2) and CREB by exogenous BDNF. The BDNF-stimulated transcriptional up-regulation of CREB target genes was also the highest in DIV 7 neurons. The basal level of ERK1/2 and CREB activity, as well as the expression of CREB target genes, increased along with maturation, and neurons at DIV 13 and 22 displayed less dynamic responses to BDNF. Furthermore, we found that the developmentally regulated GABAergic inhibition correlated with the decline of BDNF-mediated signaling during maturation. BDNF stimulation along with suppression of GABAergic inhibition enhanced the activation of ERK1/2-CREB signaling and gene transcription in mature neurons. Conversely, BDNF stimulation along with enhancement of GABAergic inhibition reduced the overall induction of intracellular signaling in younger neurons. We propose that the less dynamic molecular changes may play a certain role in the loss of plasticity during maturation.
新皮层回路在早期发育的关键时期对感官体验最为敏感。先前的研究表明,脑源性神经营养因子 (BDNF) 和 GABA 能抑制可能控制关键期的时间。通过使用体外成熟模型,我们发现 DIV (体外日) 7 的神经元,大约在功能突触开始形成和 GABA 能抑制出现的时期,对外源 BDNF 表现出最动态的细胞外信号调节激酶 1/2 (ERK1/2) 和 CREB 的激活。BDNF 刺激的 CREB 靶基因的转录上调也在 DIV 7 神经元中最高。ERK1/2 和 CREB 活性的基础水平以及 CREB 靶基因的表达随着成熟而增加,DIV 13 和 22 的神经元对 BDNF 的反应不那么动态。此外,我们发现发育调节的 GABA 能抑制与成熟过程中 BDNF 介导的信号转导下降相关。BDNF 刺激伴随着 GABA 能抑制的抑制增强了成熟神经元中 ERK1/2-CREB 信号转导和基因转录的激活。相反,BDNF 刺激伴随着 GABA 能抑制的增强减少了年轻神经元中细胞内信号的整体诱导。我们提出,较少的动态分子变化可能在成熟过程中的可塑性丧失中起一定作用。