Area-specific synapse structure in branched posterior nucleus axons reveals a new level of complexity in thalamocortical networks

Thalamocortical posterior nucleus (Po) axons innervating the vibrissal somatosensory (S1) and motor (MC) cortices are key links in the brain neuronal network that allows rodents to explore the environment whisking with their motile snout vibrissae. Here, using fine-scale high-end 3D electron microsc...

Full description

Bibliographic Details
Authors: Rodriguez-Moreno, Javier, Porrero Calzado, César, Rollenhagen, Astrid, Rubio-Teves, Mario, Casas-Torremocha, Diana, Alonso-Nanclares, Lidia, Yakoubi, Rachida, Santuy, Andrea, Merchan-Pérez, Angel, DeFelipe, Javier, Lübke, Joachim H.R., Clasca Cabre, Francisco
Format: article
Publication Date:2020
Country:España
Institution:Universidad Autónoma de Madrid
Repository:Biblos-e Archivo. Repositorio Institucional de la UAM
Language:English
OAI Identifier:oai:repositorio.uam.es:10486/693159
Online Access:http://hdl.handle.net/10486/693159
https://dx.doi.org/10.1523/JNEUROSCI.2886-19.2020
Access Level:Open access
Keyword:3D electron microscopy
Mitochondria
Motor cortex
Somatosensory cortex
Synapse
Thalamus
Medicina
Description
Summary:Thalamocortical posterior nucleus (Po) axons innervating the vibrissal somatosensory (S1) and motor (MC) cortices are key links in the brain neuronal network that allows rodents to explore the environment whisking with their motile snout vibrissae. Here, using fine-scale high-end 3D electron microscopy, we demonstrate in adult male C57BL/6 wild-type mice marked differences between MC versus S1 Po synapses in (1) bouton and active zone size, (2) neurotransmitter vesicle pool size, (3) distribution of mitochondria around synapses, and (4) proportion of synapses established on dendritic spines and dendritic shafts. These differences are as large, or even more pronounced, than those between Po and ventro-posterior thalamic nucleus synapses in S1. Moreover, using single-axon transfection labeling, we demonstrate that the above differences actually occur on the MC versus the S1 branches of individual Po cell axons that innervate both areas. Along with recently-discovered divergences in efficacy and plasticity, the synaptic structure differences reported here thus reveal a new subcellular level of complexity. This is a finding that upends current models of thalamocortical circuitry, and that might as well illuminate the functional logic of other branched projection axon systems.