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脑宽纤维示踪显示丘脑血管投射神经元优先皮质投射到脑桥被盖核。

Preferential subcortical collateral projections of pedunculopontine nucleus-targeting cortical pyramidal neurons revealed by brain-wide single fiber tracing.

机构信息

Division of Life Sciences and Medicine, University of Science and Technology of China, Hefei, 230026, Anhui, China.

Interdisciplinary Center for Brain Information, The Brain Cognition and Brain Disease Institute, Shenzhen Institute of Advanced Technology, Chinese Academy of Sciences, Shenzhen, 518055, Guangdong, China.

出版信息

Mol Brain. 2022 Oct 29;15(1):88. doi: 10.1186/s13041-022-00975-y.

DOI:10.1186/s13041-022-00975-y
PMID:36309684
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9618196/
Abstract

The pedunculopontine nucleus (PPN) is a heterogeneous midbrain structure involved in various brain functions, such as motor control, learning, reward, and sleep. Previous studies using conventional tracers have shown that the PPN receives extensive afferent inputs from various cortical areas. To examine how these cortical axons make collateral projections to other subcortical areas, we used a dual-viral injection strategy to sparsely label PPN-targeting cortical pyramidal neurons in CaMKIIα-Cre transgenic mice. Using a high-speed volumetric imaging with on-the-fly-scan and Readout (VISoR) technique, we visualized brain-wide axonal projections of individual PPN-targeting neurons from several cortical areas, including the prelimbic region (PL), anterior cingulate area (ACA) and secondary motor cortex (MOs). We found that each PPN-projecting neuron had a unique profile of collateralization, with some subcortical areas being preferential targets. In particular, PPN-projecting neurons from all three traced cortical areas exhibited common preferential collateralization to several nuclei, with most neurons targeting the striatum (STR), lateral hypothalamic area (LHA) and periaqueductal gray (PAG), and a substantial portion of neurons also targeting the zona incerta (ZI), median raphe nucleus (MRN) and substantia nigra pars reticulata (SNr). Meanwhile, very specific collateralization patterns were found for other nuclei, including the intermediate reticular nucleus (IRN), parvicellular reticular nucleus (PARN) and gigantocellular reticular nucleus (GRN), which receive collateral inputs almost exclusively from the MOs. These observations provide potential anatomical mechanisms for cortical neurons to coordinate the PPN with other subcortical areas in performing different physiological functions.

摘要

被盖脚桥核(PPN)是一个异质的中脑结构,参与多种大脑功能,如运动控制、学习、奖励和睡眠。先前使用传统示踪剂的研究表明,PPN 接收来自各种皮质区域的广泛传入输入。为了研究这些皮质轴突如何向其他皮质下区域发出侧支投射,我们使用双病毒注射策略,在 CaMKIIα-Cre 转基因小鼠中稀疏标记靶向 PPN 的皮质锥体神经元。使用高速容积成像与实时扫描和读出(VISoR)技术,我们可视化了来自几个皮质区域的单个靶向 PPN 的神经元的大脑范围的轴突投射,包括前额叶皮层(PL)、前扣带皮层(ACA)和次级运动皮层(MOs)。我们发现,每个靶向 PPN 的神经元都有独特的侧支化特征,一些皮质下区域是优先靶标。特别是,来自所有三个追踪皮质区域的靶向 PPN 的神经元表现出对几个核的共同优先侧支化,大多数神经元靶向纹状体(STR)、外侧下丘脑区域(LHA)和导水管周围灰质(PAG),很大一部分神经元还靶向未定带(ZI)、中缝核(MRN)和黑质网状部(SNr)。同时,还发现了其他核的非常特定的侧支化模式,包括中间网状核(IRN)、小细胞网状核(PARN)和巨细胞网状核(GRN),它们几乎仅接收来自 MOs 的侧支输入。这些观察结果为皮质神经元提供了潜在的解剖学机制,以协调 PPN 与其他皮质下区域执行不同的生理功能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/561f/9618196/88a669ceb197/13041_2022_975_Fig1_HTML.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/561f/9618196/88a669ceb197/13041_2022_975_Fig1_HTML.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/561f/9618196/88a669ceb197/13041_2022_975_Fig1_HTML.jpg

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