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浦肯野细胞的空间相关动力学是小脑皮质对行为产生作用的关键。

Purkinje cell spatial correlation dynamics are key to cerebellar cortical contributions to behavior.

作者信息

Streng Martha L, Carter Russell E, Kottke Benjamin W, Togneri Kayla, Wasserman Emma, Rajendran Vijay, Kodandaramaiah Suhasa B, Krook-Magnuson Esther, Ebner Timothy J

机构信息

Department of Neuroscience, University of Minnesota, Minneapolis, MN, USA.

Department of Mechanical Engineering, University of Minnesota, Minneapolis, MN, USA.

出版信息

J Neurosci. 2025 Jun 24. doi: 10.1523/JNEUROSCI.1915-24.2025.

Abstract

A major challenge in cerebellar physiology is determining how the stereotypic, conserved circuitry of the cerebellar cortex, with its dominant parasagittal and transverse architectures, underlies its fundamental computations and contributions to behavior. Recent advances have allowed for the resolution of Purkinje cell dendritic activity at large scales, but the full roles of these Purkinje cell dynamics during behavior remain undetermined. To interrogate Purkinje cell dynamics at the population level during behavior, we implemented a novel approach for awake, chronic, wide-field Ca imaging of the cerebellar cortex. We performed wide-field cerebellar recordings in mice of both sexes exhibiting sparse expression of the Ca indicator GCaMP6s, which importantly allowed for the resolution of both dendritic and somatic Purkinje cell activity. Blind source separation of wide-field dynamics using spatial independent component analysis (sICA) extracts components consisting of either Purkinje cell dendrites or somata, with distinct activity and spatial properties. These independent components (ICs) tend to be either parasagittally organized and likely reflective of dendritic activity, or more spatially distributed populations of Purkinje cell somata. We observe broad, bilateral activation of both these dendritic and somatic ICs during behavior, but they exhibit distinct and divergent patterns of spatial correlations occurring primarily along the parasagittal and transverse directions, consistent with the main geometry of the cerebellar cortex. Somatic correlation dynamics are robustly modulated by prediction errors and reflect ultimate behavioral outcomes. These results provide a novel link between cerebellar structure and function, with the correlation dynamics of Purkinje cell activity a key feature during behavior. The cerebellar cortex exhibits highly conserved, elegant cytoarchitecture, but a full understanding of how this organization contributes to cerebellar processing is limited. We performed wide-field Ca recordings of the primary output neurons of the cerebellar cortex, Purkinje cells, and find that they are organized into distinct networks, which are either parasagittally organized or distributed populations of somatic activity. While both networks are highly engaged during behavior, they exhibit distinct spatial correlation dynamics consistent with the main geometry of the cerebellar cortex, with somatic correlation dynamics conveying information about prediction error and behavioral outcomes. Together, these results provide new insights into the functional organization of Purkinje cells and implicate somatic network correlation dynamics as a key feature of cerebellar processing.

摘要

小脑生理学面临的一个主要挑战是确定小脑皮质刻板、保守的神经回路,及其占主导地位的矢状旁和横向结构,是如何构成其基本计算过程并对行为产生影响的。最近的进展使得大规模解析浦肯野细胞树突活动成为可能,但这些浦肯野细胞动力学在行为过程中的完整作用仍未确定。为了在行为过程中群体水平上研究浦肯野细胞动力学,我们实施了一种用于清醒、慢性、小脑皮质宽视野钙成像的新方法。我们在表达钙指示剂GCaMP6s的雌雄小鼠中进行了宽视野小脑记录,这一方法重要之处在于能够分辨树突和胞体的浦肯野细胞活动。使用空间独立成分分析(sICA)对宽视野动力学进行盲源分离,提取由浦肯野细胞树突或胞体组成的成分,这些成分具有不同的活动和空间特性。这些独立成分(ICs)往往要么呈矢状旁组织排列,可能反映树突活动,要么是更分散分布的浦肯野细胞胞体群体。我们观察到在行为过程中这些树突和胞体ICs均出现广泛的双侧激活,但它们表现出主要沿矢状旁和横向方向发生的不同且有差异的空间相关模式,这与小脑皮质的主要几何结构一致。胞体相关动力学受到预测误差的强烈调制,并反映最终的行为结果。这些结果在小脑结构与功能之间建立了新的联系,浦肯野细胞活动的相关动力学是行为过程中的一个关键特征。小脑皮质呈现出高度保守、精致的细胞结构,但对这种组织结构如何促进小脑处理过程的全面理解仍然有限。我们对小脑皮质的主要输出神经元浦肯野细胞进行了宽视野钙记录,发现它们被组织成不同的网络,这些网络要么呈矢状旁组织排列,要么是胞体活动的分散群体。虽然这两个网络在行为过程中都高度活跃,但它们表现出与小脑皮质主要几何结构一致的不同空间相关动力学,胞体相关动力学传达有关预测误差和行为结果的信息。总之,这些结果为浦肯野细胞的功能组织提供了新的见解,并表明胞体网络相关动力学是小脑处理过程的一个关键特征。

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