Mitchell Jude F, Sundberg Kristy A, Reynolds John H
Systems Neurobiology Lab, The Salk Institute, La Jolla, CA 92037-1099, USA.
Neuron. 2007 Jul 5;55(1):131-41. doi: 10.1016/j.neuron.2007.06.018.
The cortex contains multiple cell types, but studies of attention have not distinguished between them, limiting understanding of the local circuits that transform attentional feedback into improved visual processing. Parvalbumin-expressing inhibitory interneurons can be distinguished from pyramidal neurons based on their briefer action potential durations. We recorded neurons in area V4 as monkeys performed an attention-demanding task. We find that the distribution of action potential durations is strongly bimodal. Neurons with narrow action potentials have higher firing rates and larger attention-dependent increases in absolute firing rate than neurons with broad action potentials. The percentage increase in response is similar across the two classes. We also find evidence that attention increases the reliability of the neuronal response. This modulation is more than two-fold stronger among putative interneurons. These findings lead to the surprising conclusion that the strongest attentional modulation occurs among local interneurons that do not transmit signals between areas.
大脑皮层包含多种细胞类型,但注意力研究尚未对它们进行区分,这限制了人们对将注意力反馈转化为改善视觉处理的局部神经回路的理解。表达小白蛋白的抑制性中间神经元可根据其更短的动作电位持续时间与锥体神经元区分开来。当猴子执行一项需要注意力的任务时,我们记录了V4区域的神经元。我们发现动作电位持续时间的分布呈强烈的双峰性。与动作电位较宽的神经元相比,动作电位较窄的神经元具有更高的放电率,并且绝对放电率的注意力依赖性增加更大。两类神经元的反应增加百分比相似。我们还发现有证据表明注意力提高了神经元反应的可靠性。在假定的中间神经元中,这种调节要强两倍多。这些发现得出了一个惊人的结论,即最强的注意力调节发生在不跨区域传递信号的局部中间神经元中。