Department of Neuroscience, Erasmus University Medical Center, Rotterdam, The Netherlands.
Netherlands Institute of Neuroscience, Amsterdam, The Netherlands.
Nat Commun. 2023 Nov 21;14(1):7581. doi: 10.1038/s41467-023-43139-9.
Local feedforward and recurrent connectivity are rife in the frontal areas of the cerebral cortex, which gives rise to rich heterogeneous dynamics observed in such areas. Recently, similar local connectivity motifs have been discovered among Purkinje and molecular layer interneurons of the cerebellar cortex, however, task-related activity in these neurons has often been associated with relatively simple facilitation and suppression dynamics. Here, we show that the rodent cerebellar cortex supports heterogeneity in task-related neuronal activity at a scale similar to the cerebral cortex. We provide a computational model that inculcates recent anatomical insights into local microcircuit motifs to show the putative basis for such heterogeneity. We also use cell-type specific chronic viral lesions to establish the involvement of cerebellar lobules in associative learning behaviors. Functional heterogeneity in neuronal profiles may not merely be the remit of the associative cerebral cortex, similar principles may be at play in subcortical areas, even those with seemingly crystalline and homogenous cytoarchitectures like the cerebellum.
大脑皮层的额区存在丰富的局部前馈和反馈连接,这导致了在这些区域中观察到的丰富的异质动力学。最近,在小脑皮层的浦肯野细胞和分子层中间神经元中也发现了类似的局部连接模式,然而,这些神经元的与任务相关的活动通常与相对简单的促进和抑制动力学有关。在这里,我们表明,啮齿动物小脑皮层支持与任务相关的神经元活动的异质性,其规模与大脑皮层相似。我们提供了一个计算模型,将最近的解剖学见解融入到局部微电路模式中,以展示这种异质性的潜在基础。我们还使用细胞类型特异性慢性病毒损伤来确定小脑叶在联想学习行为中的参与。神经元形态的功能异质性可能不仅仅局限于大脑皮层的联想功能,类似的原则可能在皮层下区域发挥作用,即使是那些具有明显晶体状和同质细胞构筑的区域,如小脑。