Netherlands Institute for Neuroscience, Amsterdam, The Netherlands.
Exp Neurol. 2013 Apr;242:27-32. doi: 10.1016/j.expneurol.2012.02.007. Epub 2012 Feb 21.
Calcium imaging has become a widely used technique to probe neuronal activity on the cellular and subcellular levels. In contrast to standard electrophysiological methods, calcium imaging resolves sub- and suprathreshold activation patterns in structures as small as fine dendritic branches and spines. This review highlights recent findings gained on the subcellular level using calcium imaging, with special emphasis on synaptic transmission and plasticity in individual spines. Since imaging allows monitoring activity across populations of synapses, it has recently been adopted to investigate how dendrites integrate information from many synapses. Future experiments, ideally carried out in vivo, will reveal how the dendritic tree integrates and computes afferent signals. For example, it is now possible to directly test the concept that dendritic inputs are clustered and that single dendrites or dendritic stretches act as independent computational units.
钙成像技术已广泛应用于探测细胞和亚细胞水平的神经元活动。与标准的电生理方法相比,钙成像可以解析小至精细树突分支和棘突的亚阈值和超阈值激活模式。本综述重点介绍了使用钙成像技术在亚细胞水平上获得的最新发现,特别强调了单个棘突中的突触传递和可塑性。由于成像可以在突触群体中监测活动,它最近被用于研究树突如何整合来自许多突触的信息。未来的实验,理想情况下在体内进行,将揭示树突如何整合和计算传入信号。例如,现在可以直接测试树突输入被聚类的概念,以及单个树突或树突延伸段作为独立的计算单元的概念。