Schulz David J, Goaillard Jean-Marc, Marder Eve E
Biological Sciences, 218A LeFevre Hall, University of Missouri, Columbia, MO 65211, USA.
Proc Natl Acad Sci U S A. 2007 Aug 7;104(32):13187-91. doi: 10.1073/pnas.0705827104. Epub 2007 Jul 25.
The postdevelopmental basis of cellular identity and the unique cellular output of a particular neuron type are of particular interest in the nervous system because a detailed understanding of circuits responsible for complex processes in the brain is impeded by the often ambiguous classification of neurons in these circuits. Neurons have been classified by morphological, electrophysiological, and neurochemical techniques. More recently, molecular approaches, particularly microarray, have been applied to the question of neuronal identity. With the realization that proteins expressed exclusively in only one type of neuron are rare, expression profiles obtained from neuronal subtypes are analyzed to search for diagnostic patterns of gene expression. However, this expression profiling hinges on one critical and implicit assumption: that neurons of the same type in different animals achieve their conserved functional output via conserved levels and quantitative relationships of gene expression. Here we exploit the unambiguously identifiable neurons in the crab stomatogastric ganglion to investigate the precise quantitative expression profiling of neurons at the level of single-cell ion channel expression. By measuring absolute mRNA levels of six different channels in the same individually identified neurons, we demonstrate that not only do individual cell types possess highly variable levels of channel expression but that this variability is constrained by unique patterns of correlated channel expression.
细胞身份的发育后基础以及特定神经元类型独特的细胞输出在神经系统中备受关注,因为大脑中负责复杂过程的神经回路的详细理解常因这些回路中神经元分类的模糊性而受阻。神经元已通过形态学、电生理学和神经化学技术进行分类。最近,分子方法,尤其是微阵列,已应用于神经元身份问题。随着认识到仅在一种神经元类型中特异性表达的蛋白质很少见,对从神经元亚型获得的表达谱进行分析以寻找基因表达的诊断模式。然而,这种表达谱分析依赖于一个关键且隐含的假设:不同动物中同一类型的神经元通过基因表达的保守水平和定量关系实现其保守的功能输出。在这里,我们利用蟹口胃神经节中明确可识别的神经元来研究单细胞离子通道表达水平上神经元的精确定量表达谱。通过测量同一单个识别神经元中六种不同通道的绝对mRNA水平,我们证明不仅单个细胞类型具有高度可变的通道表达水平,而且这种变异性受相关通道表达的独特模式限制。