Department of Biology, Brandeis University, Waltham, Massachusetts 02453, USA.
Dev Neurobiol. 2011 Jan 1;71(1):62-70. doi: 10.1002/dneu.20811.
The diverse cell types that comprise neocortical circuits each have characteristic integrative and firing properties that are specialized to perform specific functions within the network. Parvalbumin-positive fast-spiking (FS) interneurons are a particularly specialized cortical cell-type that controls the dynamics of ongoing activity and prevents runaway excitation by virtue of remarkably high firing rates, a feature that is permitted by narrow action potentials and the absence of spike-frequency adaptation. Although several neuronal intrinsic membrane properties undergo activity-dependent plasticity, the role of network activity in shaping and maintaining specialized, cell-type-specific firing properties is unknown. We tested whether the specialized firing properties of mature FS interneurons are sensitive to activity perturbations by inactivating a portion of motor cortex in vivo for 48 h and measuring resulting plasticity of FS intrinsic and firing properties with whole-cell recording in acute slices. Many of the characteristic properties of FS interneurons, including nonadapting high-frequency spiking and narrow action potentials, were profoundly affected by activity deprivation both at an age just after maturation of FS firing properties and also a week after their maturation. Using microarray screening, we determined that although normal maturation of FS electrophysiological specializations is accompanied by large-scale transcriptional changes, the effects of deprivation on the same specializations involve more modest transcriptional changes, and may instead be primarily mediated by post-transcriptional mechanisms.
组成新皮层回路的各种细胞类型都具有特征性的整合和发射特性,这些特性专门用于在网络中执行特定功能。γ-氨基丁酸能中间神经元(PV 阳性快发神经元)是一种特别专门化的皮层细胞类型,通过极高的放电率来控制活动的动力学,并防止兴奋失控,这一特性是由狭窄的动作电位和缺乏尖峰频率适应所允许的。尽管几种神经元内在的膜特性发生了活动依赖性的可塑性,但网络活动在塑造和维持专门的、细胞类型特异性的发射特性方面的作用尚不清楚。我们通过在体激活运动皮层 48 小时来测试成熟的 FS 中间神经元的专门发射特性是否对活动干扰敏感,并在急性切片中进行全细胞膜片钳记录来测量 FS 内在和发射特性的可塑性。FS 中间神经元的许多特征性特性,包括不适应的高频尖峰和狭窄的动作电位,在 FS 放电特性成熟后不久以及成熟一周后,都会受到活动剥夺的强烈影响。通过微阵列筛选,我们确定尽管 FS 电生理特性的正常成熟伴随着大规模的转录变化,但同样的剥夺对这些特殊功能的影响涉及到更适度的转录变化,可能主要是通过转录后机制介导的。