Department of Neurophysiology, Brain Research Institute, University of Zurich, Winterthurerstrasse 190, CH-8057 Zurich, Switzerland.
Curr Opin Neurobiol. 2009 Oct;19(5):520-9. doi: 10.1016/j.conb.2009.09.003. Epub 2009 Oct 23.
Neural computations are implemented in densely interconnected networks of excitable neurons as temporal sequences of coactive neuronal ensembles. Ensemble activity is produced by the interaction of external stimuli with internal states but has been difficult to directly study in the past. Currently, high-resolution optical imaging techniques are emerging as powerful tools to investigate neuronal ensembles in living animals and to characterize their spatiotemporal properties. Here we review recent advances of two-photon calcium imaging and highlight ongoing technical improvements as well as emerging applications. Significant progress has been made in the extent and speed of imaging and in the adaptation of imaging techniques to awake animals. These advances facilitate studies of the functional organization of local neural networks, their experience-dependent reconfiguration, and their functional impairment in diseases. Optical probing of neuronal ensemble dynamics in vivo thus promises to reveal fundamental principles of neural circuit function and dysfunction.
神经计算是通过兴奋神经元的密集相互连接网络作为协同活动神经元集合的时间序列来实现的。集合活动是由外部刺激与内部状态的相互作用产生的,但在过去一直难以直接研究。目前,高分辨率的光学成像技术正在成为研究活体动物中神经元集合并描述其时空特性的强大工具。在这里,我们回顾了双光子钙成像的最新进展,并强调了正在进行的技术改进和新兴应用。在成像的范围和速度以及成像技术在清醒动物中的应用方面都取得了重大进展。这些进展促进了对局部神经网络功能组织、其依赖经验的重新配置以及在疾病中的功能障碍的研究。因此,对体内神经元集合动力学的光学探测有望揭示神经回路功能和功能障碍的基本原理。