Loebel Alex, Silberberg Gilad, Helbig Daniela, Markram Henry, Tsodyks Misha, Richardson Magnus J E
Department of Neurobiology, Weizmann Institute of Science Rehovot, Israel.
Front Comput Neurosci. 2009 Nov 24;3:27. doi: 10.3389/neuro.10.027.2009. eCollection 2009.
Inter-pyramidal synaptic connections are characterized by a wide range of EPSP amplitudes. Although repeatedly observed at different brain regions and across layers, little is known about the synaptic characteristics that contribute to this wide range. In particular, the range could potentially be accounted for by differences in all three parameters of the quantal model of synaptic transmission, i.e. the number of release sites, release probability and quantal size. Here, we present a rigorous statistical analysis of the transmission properties of excitatory synaptic connections between layer-5 pyramidal neurons of the somato-sensory cortex. Our central finding is that the EPSP amplitude is strongly correlated with the number of estimated release sites, but not with the release probability or quantal size. In addition, we found that the number of release sites can be more than an order of magnitude higher than the typical number of synaptic contacts for this type of connection. Our findings indicate that transmission at stronger synaptic connections is mediated by multiquantal release from their synaptic contacts. We propose that modulating the number of release sites could be an important mechanism in regulating neocortical synaptic transmission.
锥体间突触连接的特点是兴奋性突触后电位(EPSP)幅度范围广泛。尽管在不同脑区和各层中都反复观察到这一现象,但对于造成这种广泛范围的突触特性却知之甚少。特别是,这个范围可能是由突触传递量子模型的所有三个参数的差异造成的,即释放位点的数量、释放概率和量子大小。在这里,我们对体感皮层第5层锥体神经元之间兴奋性突触连接的传递特性进行了严格的统计分析。我们的核心发现是,EPSP幅度与估计的释放位点数量密切相关,而与释放概率或量子大小无关。此外,我们发现释放位点的数量可能比这种类型连接的典型突触接触数量高出一个数量级以上。我们的研究结果表明,较强突触连接的传递是由其突触接触的多量子释放介导的。我们提出,调节释放位点的数量可能是调节新皮层突触传递的一个重要机制。