突触输入与局部皮层活动的耦合在神经元之间存在差异,并在刺激开始后发生适应性变化。
Coupling of synaptic inputs to local cortical activity differs among neurons and adapts after stimulus onset.
作者信息
Wright Nathaniel C, Hoseini Mahmood S, Yasar Tansel Baran, Wessel Ralf
机构信息
Department of Physics, Washington University in St. Louis , St. Louis, Missouri.
出版信息
J Neurophysiol. 2017 Dec 1;118(6):3345-3359. doi: 10.1152/jn.00398.2017. Epub 2017 Sep 20.
Cortical activity contributes significantly to the high variability of sensory responses of interconnected pyramidal neurons, which has crucial implications for sensory coding. Yet, largely because of technical limitations of in vivo intracellular recordings, the coupling of a pyramidal neuron's synaptic inputs to the local cortical activity has evaded full understanding. Here we obtained excitatory synaptic conductance ( g) measurements from putative pyramidal neurons and local field potential (LFP) recordings from adjacent cortical circuits during visual processing in the turtle whole brain ex vivo preparation. We found a range of g-LFP coupling across neurons. Importantly, for a given neuron, g-LFP coupling increased at stimulus onset and then relaxed toward intermediate values during continued visual stimulation. A model network with clustered connectivity and synaptic depression reproduced both the diversity and the dynamics of g-LFP coupling. In conclusion, these results establish a rich dependence of single-neuron responses on anatomical, synaptic, and emergent network properties. NEW & NOTEWORTHY Cortical neurons are strongly influenced by the networks in which they are embedded. To understand sensory processing, we must identify the nature of this influence and its underlying mechanisms. Here we investigate synaptic inputs to cortical neurons, and the nearby local field potential, during visual processing. We find a range of neuron-to-network coupling across cortical neurons. This coupling is dynamically modulated during visual processing via biophysical and emergent network properties.
皮层活动对相互连接的锥体神经元感觉反应的高度变异性有显著贡献,这对感觉编码具有至关重要的意义。然而,很大程度上由于体内细胞内记录的技术限制,锥体神经元的突触输入与局部皮层活动之间的耦合尚未得到充分理解。在这里,我们在离体龟全脑标本的视觉处理过程中,从假定的锥体神经元获得了兴奋性突触电导(g)测量值,并从相邻皮层回路获得了局部场电位(LFP)记录。我们发现不同神经元之间存在一系列的g-LFP耦合。重要的是,对于给定的神经元,g-LFP耦合在刺激开始时增加,然后在持续的视觉刺激过程中向中间值松弛。一个具有聚类连接性和突触抑制的模型网络再现了g-LFP耦合的多样性和动态变化。总之,这些结果确立了单神经元反应对解剖学、突触和新兴网络特性的丰富依赖性。新内容及值得注意之处:皮层神经元受到其所处网络的强烈影响。为了理解感觉处理过程,我们必须确定这种影响的性质及其潜在机制。在这里,我们研究了视觉处理过程中皮层神经元的突触输入以及附近的局部场电位。我们发现皮层神经元之间存在一系列的神经元与网络的耦合。这种耦合在视觉处理过程中通过生物物理和新兴网络特性进行动态调制。