Committee on Neurobiology, Institute for Mind & Biology, The University of Chicago, Chicago, IL, 60637, USA.
Cogn Neurodyn. 2008 Sep;2(3):179-94. doi: 10.1007/s11571-008-9053-1. Epub 2008 Jun 19.
Oscillatory phenomena have been a focus of dynamical systems research since the time of the classical studies on the pendulum by Galileo. Fast cortical oscillations also have a long and storied history in neurophysiology, and olfactory oscillations have led the way with a depth of explanation not present in the literature of most other cortical systems. From the earliest studies of odor-evoked oscillations by Adrian, many reports have focused on mechanisms and functional associations of these oscillations, in particular for the so-called gamma oscillations. As a result, much information is now available regarding the biophysical mechanisms that underlie the oscillations in the mammalian olfactory system. Recent studies have expanded on these and addressed functionality directly in mammals and in the analogous insect system. Sub-bands within the rodent gamma oscillatory band associated with specific behavioral and cognitive states have also been identified. All this makes oscillatory neuronal networks a unique interdisciplinary platform from which to study neurocognitive and dynamical phenomena in intact, freely behaving animals. We present here a summary of what has been learned about the functional role and mechanisms of gamma oscillations in the olfactory system as a guide for similar studies in other cortical systems.
自伽利略对钟摆进行经典研究以来,震荡现象一直是动力系统研究的焦点。快速皮质震荡在神经生理学中也有着悠久而丰富的历史,而嗅觉震荡则以一种在大多数其他皮质系统文献中所没有的深度解释引领了潮流。从阿德里安最早对气味诱发震荡的研究开始,许多报告就一直聚焦于这些震荡的机制和功能关联,特别是所谓的伽马震荡。因此,现在有大量关于哺乳动物嗅觉系统震荡背后的生物物理机制的信息。最近的研究扩展了这些研究,并在哺乳动物和类似的昆虫系统中直接研究了其功能。与特定行为和认知状态相关的啮齿动物伽马震荡带中的子带也已被确定。所有这些都使得震荡神经元网络成为一个独特的跨学科平台,可以用来研究完整的、自由行为的动物中的神经认知和动力学现象。在这里,我们总结了关于嗅觉系统中伽马震荡的功能作用和机制的知识,作为在其他皮质系统中进行类似研究的指南。