Excitatory and inhibitory synapses form a tight subcellular balance along dendrites that decorrelates over development
Horton, S.; Mastrolia, V.; Jackson, R.; Kemlo, S.; Pereira Machado, P.; Alejandra Carbajal, M.; Hindges, R.; Fleck, R.; Aguiar, P.; Neves, G.; Burrone, J.
Show abstract
A balance between excitation and inhibition is crucial for neurotypical brain function. Indeed, disruptions in this relationship are frequently associated with the pathophysiology of neurodevelopmental disorders. Nevertheless, how this balance is established during the dynamic period of neurodevelopment remains unexplored. Using multiple techniques, including in utero electroporation, electron microscopy and electrophysiology, we reveal a tight correlation in the distribution of excitatory and inhibitory synapses along dendrites of developing CA1 hippocampal neurons. This balance was present within short dendritic stretches (<20{micro}m), and surprisingly, was most pronounced during early development, sharply declining with maturity. The tight matching between excitation and inhibition was unexpected, as inhibitory synapses lacked an active zone when formed and exhibited compromised evoked release. We propose that inhibitory synapses form as a stabilising scaffold, to counterbalance growing excitation levels. This relationship diminishes over time, suggesting a critical role for a subcellular balance in early neuronal function and circuit formation.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- MDGAs are fast-diffusing molecules that delay excitatory synapse development by altering neuroligin behavior 97%
- Cortical ChAT+ neurons co-transmit acetylcholine and GABA in a target- and brain-region specific manner 96%
- Developmental increase of inhibition drives decorrelation of neural activity 96%
Similar papers in this journal
Similar papers in this journal
- CTNND2 regulation by the SRGAP2 protein family links human evolution to synaptic neoteny 97%
- Parvalbumin expression identifies subicular principal cells with high projection specificity 96%
- Ca2+-phospholipid-dependent regulation of Munc13-1 is essential for post-tetanic potentiation at mossy fiber synapses and supports working memory 96%
Similar papers in this journal
- Modular Arrangement of Synaptic and Intrinsic Homeostatic Plasticity within Visual Cortical Circuits 97%
- All-or-none disconnection of pyramidal inputs onto parvalbumin-positive interneurons gates ocular dominance plasticity 96%
- Reciprocal interaction between cortical SST and PV interneurons in regulating top-down retinothalamic refinement 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.