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全球不同细胞类型自发神经活动的时空同步结构。

Global spatiotemporal synchronizing structures of spontaneous neural activities in different cell types.

机构信息

Britton Chance Center for Biomedical Photonics and MoE Key Laboratory for Biomedical Photonics, Advanced Biomedical Imaging Facility, Wuhan National Laboratory for Optoelectronics, Huazhong University of Science and Technology, Wuhan, Hubei, 430074, China.

Research Unit of Multimodal Cross Scale Neural Signal Detection and Imaging, Chinese Academy of Medical Science, HUST-Suzhou Institute for Brainsmatics, JITRI, Suzhou, 215100, China.

出版信息

Nat Commun. 2024 Apr 3;15(1):2884. doi: 10.1038/s41467-024-46975-5.

Abstract

Increasing evidence has revealed the large-scale nonstationary synchronizations as traveling waves in spontaneous neural activity. However, the interplay of various cell types in fine-tuning these spatiotemporal patters remains unclear. Here, we performed comprehensive exploration of spatiotemporal synchronizing structures across different cell types, states (awake, anesthesia, motion) and developmental axis in male mice. We found traveling waves in glutamatergic neurons exhibited greater variety than those in GABAergic neurons. Moreover, the synchronizing structures of GABAergic neurons converged toward those of glutamatergic neurons during development, but the evolution of waves exhibited varying timelines for different sub-type interneurons. Functional connectivity arises from both standing and traveling waves, and negative connections can be elucidated by the spatial propagation of waves. In addition, some traveling waves were correlated with the spatial distribution of gene expression. Our findings offer further insights into the neural underpinnings of traveling waves, functional connectivity, and resting-state networks, with cell-type specificity and developmental perspectives.

摘要

越来越多的证据表明,在自发神经活动中,大规模的非平稳同步以行波的形式出现。然而,各种细胞类型在精细调节这些时空模式中的相互作用仍不清楚。在这里,我们在雄性小鼠中对不同细胞类型、状态(清醒、麻醉、运动)和发育轴上的时空同步结构进行了全面探索。我们发现,谷氨酸能神经元中的行波比 GABA 能神经元中的行波更具多样性。此外,在发育过程中,GABA 能神经元的同步结构趋于与谷氨酸能神经元的同步结构趋同,但不同亚型中间神经元的波的演化具有不同的时间线。功能连接既来自于静止波也来自于行波,波的空间传播可以揭示负连接。此外,一些行波与基因表达的空间分布相关。我们的研究结果进一步揭示了行波、功能连接和静息态网络的神经基础,具有细胞类型特异性和发育观点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/54a8/10991327/3602b38546de/41467_2024_46975_Fig1_HTML.jpg

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