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浦肯野细胞微区介导单个运动的不同运动学。

Purkinje cell microzones mediate distinct kinematics of a single movement.

机构信息

Department of Neuroscience, Erasmus MC, Rotterdam, The Netherlands.

Department of Translational Neuroscience, University Medical Center Utrecht, Brain Center, Utrecht University, Utrecht, The Netherlands.

出版信息

Nat Commun. 2023 Jul 19;14(1):4358. doi: 10.1038/s41467-023-40111-5.

Abstract

The classification of neuronal subpopulations has significantly advanced, yet its relevance for behavior remains unclear. The highly organized flocculus of the cerebellum, known to fine-tune multi-axial eye movements, is an ideal substrate for the study of potential functions of neuronal subpopulations. Here, we demonstrate that its recently identified subpopulations of 9+ and 9- Purkinje cells exhibit an intermediate Aldolase C expression and electrophysiological profile, providing evidence for a graded continuum of intrinsic properties among PC subpopulations. By identifying and utilizing two Cre-lines that genetically target these floccular domains, we show with high spatial specificity that these subpopulations of Purkinje cells participate in separate micromodules with topographically organized connections. Finally, optogenetic excitation of the respective subpopulations results in movements around the same axis in space, yet with distinct kinematic profiles. These results indicate that Purkinje cell subpopulations integrate in discrete circuits and mediate particular parameters of single movements.

摘要

神经元亚群的分类已经取得了显著进展,但它与行为的关系尚不清楚。小脑的高度组织化的绒球,被认为是精细调整多轴眼球运动的基础,是研究神经元亚群潜在功能的理想底物。在这里,我们证明其最近鉴定的 9+和 9-浦肯野细胞亚群表现出中间醛缩酶 C 的表达和电生理特征,为浦肯野细胞亚群之间的内在特性的梯度连续体提供了证据。通过鉴定和利用两种针对这些绒球域的 Cre 线,我们以高空间特异性显示这些浦肯野细胞亚群参与具有拓扑组织连接的单独微模块。最后,光遗传刺激各自的亚群会导致在相同的空间轴上产生运动,但运动学特征却不同。这些结果表明,浦肯野细胞亚群整合到离散的电路中,并介导单个运动的特定参数。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5731/10356806/5b7146282787/41467_2023_40111_Fig1_HTML.jpg

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