Garden Derek L F, Dodson Paul D, O'Donnell Cian, White Melanie D, Nolan Matthew F
Centre for Neuroscience Research and Centre for Integrative Physiology, R(D)SVS, University of Edinburgh, Hugh Robson Building, Edinburgh, EH8 9XD, Scotland, UK.
Neuron. 2008 Dec 10;60(5):875-89. doi: 10.1016/j.neuron.2008.10.044.
Neurons important for cognitive function are often classified by their morphology and integrative properties. However, it is unclear if within a single class of neuron these properties tune synaptic responses to the salient features of the information that each neuron represents. We demonstrate that for stellate neurons in layer II of the medial entorhinal cortex, the waveform of postsynaptic potentials, the time window for detection of coincident inputs, and responsiveness to gamma frequency inputs follow a dorsal-ventral gradient similar to the topographical organization of grid-like spatial firing fields of neurons in this area. We provide evidence that these differences are due to a membrane conductance gradient mediated by HCN and leak potassium channels. These findings suggest key roles for synaptic integration in computations carried out within the medial entorhinal cortex and imply that tuning of neural information processing by membrane ion channels is important for normal cognitive function.
对认知功能至关重要的神经元通常根据其形态和整合特性进行分类。然而,尚不清楚在单一类型的神经元中,这些特性是否会调整突触反应,以适应每个神经元所代表信息的显著特征。我们证明,对于内嗅皮层第二层的星状神经元,突触后电位的波形、检测同步输入的时间窗口以及对γ频率输入的反应性遵循背腹梯度,类似于该区域神经元网格状空间放电场的拓扑组织。我们提供的证据表明,这些差异是由HCN和泄漏钾通道介导的膜电导梯度所致。这些发现表明突触整合在内嗅皮层内进行的计算中起关键作用,并暗示膜离子通道对神经信息处理的调节对于正常认知功能很重要。