Sharafeldin Abdelrahman, Mock Vanessa L, Meisenhelter Stephen, Hembrook-Short Jacqueline R, Briggs Farran
Department of Neuroscience, University of Rochester School of Medicine, Rochester, NY 14642, USA.
Ernest J. Del Monte Institute for Neuroscience, University of Rochester School of Medicine, Rochester, NY 14642, USA.
Cereb Cortex Commun. 2020;1(1):tgaa014. doi: 10.1093/texcom/tgaa014. Epub 2020 Apr 24.
The effects of visual spatial attention on neuronal firing rates have been well characterized for neurons throughout the visual processing hierarchy. Interestingly, the mechanisms by which attention generates more or fewer spikes in response to a visual stimulus remain unknown. One possibility is that attention boosts the likelihood that synaptic inputs to a neuron result in spikes. We performed a novel analysis to measure local field potentials (LFPs) just prior to spikes, or reverse spike-triggered LFP "wavelets," for neurons recorded in primary visual cortex (V1) of monkeys performing a contrast change detection task requiring covert shifts in visual spatial attention. We used dimensionality reduction to define LFP wavelet shapes with single numerical values, and we found that LFP wavelet shape changes correlated with changes in neuronal firing rate. We then tested whether a simple classifier could predict monkeys' focus of attention from LFP wavelet shape. LFP wavelet shapes sampled in discrete windows were predictive of the locus of attention for some neuronal types. These findings suggest that LFP wavelets are a useful proxy for local network activity influencing spike generation, and changes in LFP wavelet shape are predictive of the focus of attention.
视觉空间注意力对整个视觉处理层级中神经元放电频率的影响已得到充分表征。有趣的是,注意力针对视觉刺激产生或多或少的峰电位的机制仍然未知。一种可能性是,注意力提高了神经元的突触输入产生峰电位的可能性。我们进行了一项新颖的分析,以测量猴子在执行需要视觉空间注意力隐蔽转移的对比度变化检测任务时,在初级视觉皮层(V1)中记录的神经元产生峰电位之前的局部场电位(LFP),即反向峰电位触发的LFP“小波”。我们使用降维方法用单个数值定义LFP小波形状,并且发现LFP小波形状变化与神经元放电频率变化相关。然后,我们测试了一个简单的分类器是否可以根据LFP小波形状预测猴子的注意力焦点。在离散窗口中采样的LFP小波形状对于某些神经元类型能够预测注意力的位置。这些发现表明,LFP小波是影响峰电位产生的局部网络活动的有用代理,并且LFP小波形状的变化可以预测注意力焦点。