Faber Samantha P, Timme Nicholas M, Beggs John M, Newman Ehren L
Department of Psychological and Brain Sciences, Indiana University Bloomington, Bloomington, IN, USA.
Department of Psychology, Indiana University-Purdue University Indianapolis, Indianapolis, IN, USA.
Netw Neurosci. 2019 Feb 1;3(2):384-404. doi: 10.1162/netn_a_00069. eCollection 2019.
To understand how neural circuits process information, it is essential to identify the relationship between computation and circuit organization. Rich clubs, highly interconnected sets of neurons, are known to propagate a disproportionate amount of information within cortical circuits. Here, we test the hypothesis that rich clubs also perform a disproportionate amount of computation. To do so, we recorded the spiking activity of on average ∼300 well-isolated individual neurons from organotypic cortical cultures. We then constructed weighted, directed networks reflecting the effective connectivity between the neurons. For each neuron, we quantified the amount of computation it performed based on its inputs. We found that rich-club neurons compute ∼160% more information than neurons outside of the rich club. The amount of computation performed in the rich club was proportional to the amount of information propagation by the same neurons. This suggests that in these circuits, information propagation drives computation. In total, our findings indicate that rich-club organization in effective cortical circuits supports not only information propagation but also neural computation.
为了理解神经回路如何处理信息,确定计算与回路组织之间的关系至关重要。富集群是神经元高度互连的集合,已知其在皮质回路中传播不成比例的大量信息。在此,我们测试富集群也执行不成比例的大量计算这一假设。为此,我们记录了来自器官型皮质培养物中平均约300个分离良好的单个神经元的放电活动。然后,我们构建了反映神经元之间有效连接性的加权有向网络。对于每个神经元,我们根据其输入量化它执行的计算量。我们发现,富集群神经元比富集群外的神经元多计算约160%的信息。富集群中执行的计算量与相同神经元的信息传播量成正比。这表明在这些回路中,信息传播驱动计算。总的来说,我们的研究结果表明,有效皮质回路中的富集群组织不仅支持信息传播,还支持神经计算。