4.4 Article

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

Journal

MOLECULAR BRAIN
Volume 15, Issue 1, Pages -

Publisher

BMC
DOI: 10.1186/s13041-022-00975-y

Keywords

Pedunculopontine nucleus; CaMKII alpha-positive neuron; Collateral projection; Anterior cingulate area; Prelimbic region; Motor cortex; VISoR whole-brain imaging

Categories

Funding

  1. NSFC-Guangdong Joint Fund [U20A6005]
  2. Strategic Priority Research Program of Chinese Academy of Sciences [XDB32000000]
  3. Collaborative Innovation in colleges and universities of Anhui Province [GXXT-2021-001]

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This study employed a dual-viral injection strategy to label cortical pyramidal neurons targeting the pedunculopontine nucleus (PPN) in mice. By using a high-speed volumetric imaging technique, the researchers visualized the brain-wide axonal projections of these neurons from various cortical areas and identified unique collateralization patterns to different subcortical areas. The findings provide potential anatomical mechanisms for the coordination between the PPN and other subcortical areas in performing different physiological functions.
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 CaMKII alpha-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.

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