Liu Yanqi, Foustoukos Georgios, Crochet Sylvain, Petersen Carl C H
Laboratory of Sensory Processing, Brain Mind Institute, Faculty of Life Sciences, École Polytechnique Fédérale de Lausanne (EPFL), Lausanne, Switzerland.
Front Neuroanat. 2022 Jan 25;15:791015. doi: 10.3389/fnana.2021.791015. eCollection 2021.
Communication between cortical areas contributes importantly to sensory perception and cognition. On the millisecond time scale, information is signaled from one brain area to another by action potentials propagating across long-range axonal arborizations. Here, we develop and test methodology for imaging and annotating the brain-wide axonal arborizations of individual excitatory layer 2/3 neurons in mouse barrel cortex through single-cell electroporation and two-photon serial section tomography followed by registration to a digital brain atlas. Each neuron had an extensive local axon within the barrel cortex. In addition, individual neurons innervated subsets of secondary somatosensory cortex; primary somatosensory cortex for upper limb, trunk, and lower limb; primary and secondary motor cortex; visual and auditory cortical regions; dorsolateral striatum; and various fiber bundles. In the future, it will be important to assess if the diversity of axonal projections across individual layer 2/3 mouse barrel cortex neurons is accompanied by functional differences in their activity patterns.
皮质区域之间的交流对感觉知觉和认知起着重要作用。在毫秒时间尺度上,信息通过跨长距离轴突分支传播的动作电位从一个脑区传递到另一个脑区。在这里,我们开发并测试了一种方法,通过单细胞电穿孔和双光子连续断层扫描,随后与数字脑图谱配准,对小鼠桶状皮质中单个兴奋性第2/3层神经元的全脑轴突分支进行成像和标注。每个神经元在桶状皮质内都有广泛的局部轴突。此外,单个神经元支配次级体感皮质的亚群;上肢、躯干和下肢的初级体感皮质;初级和次级运动皮质;视觉和听觉皮质区域;背外侧纹状体;以及各种纤维束。未来,评估小鼠第2/3层桶状皮质单个神经元轴突投射的多样性是否伴随着其活动模式的功能差异将很重要。