» Articles » PMID: 10456092

Long-term Potentiation is Associated with New Excitatory Spine Synapses on Rat Dentate Granule Cells

Overview
Journal Learn Mem
Specialty Neurology
Date 1996 Sep 1
PMID 10456092
Citations 29
Authors
Affiliations
Soon will be listed here.
Abstract

To investigate possible morphological correlates to long-term potentiation (LTP), three-dimensional reconstruction of serial electron micrographs was employed. LTP was induced in the perforant path/dentate granule cell synapse in two rats. The surgically isolated contralateral side served as control, along with two untreated animals. Longitudinally sectioned and transversally sectioned dendrites were sampled from the middle fifth of the molecular layer and all visibly connected spines were identified. A mixed, unbalanced, nested variance component model was used to make a valid statistical comparison between the LTP and control groups. The spine density was higher in the experimental than in the control groups. The changes were statistically significant in both the longitudinal and transverse sample. In addition, spines with a divided stem and two heads (bifurcating spines) were seen at a higher frequency in the LTP material compared with the contralateral material. From a subset of dendrites all connected spines were reconstructed and detailed measurements of head, neck, and PSD dimensions were made. We failed to find significant differences following LTP on either of the dimensions measured. The results suggest that new spine synapses are formed following LTP, including some of the bifurcating type.

Citing Articles

Long-Term Potentiation Produces a Sustained Expansion of Synaptic Information Storage Capacity in Adult Rat Hippocampus.

Samavat M, Bartol T, Bromer C, Hubbard D, Hanka D, Kuwajima M bioRxiv. 2024; .

PMID: 38260636 PMC: 10802612. DOI: 10.1101/2024.01.12.574766.


Ultrastructural effects of sleep and wake on the parallel fiber synapses of the cerebellum.

Loschky S, Spano G, Marshall W, Schroeder A, Nemec K, Schiereck S Elife. 2022; 11.

PMID: 36576248 PMC: 9797193. DOI: 10.7554/eLife.84199.


Homeostatic control of synaptic rewiring in recurrent networks induces the formation of stable memory engrams.

Gallinaro J, Gasparovic N, Rotter S PLoS Comput Biol. 2022; 18(2):e1009836.

PMID: 35143489 PMC: 8865699. DOI: 10.1371/journal.pcbi.1009836.


Increased signaling by the autism-related Engrailed-2 protein enhances dendritic branching and spine density, alters synaptic structural matching, and exaggerates protein synthesis.

Soltani A, Lebrun S, Carpentier G, Zunino G, Chantepie S, Maiza A PLoS One. 2017; 12(8):e0181350.

PMID: 28809922 PMC: 5557355. DOI: 10.1371/journal.pone.0181350.


Opposing Effects of Neuronal Activity on Structural Plasticity.

Fauth M, Tetzlaff C Front Neuroanat. 2016; 10:75.

PMID: 27445713 PMC: 4923203. DOI: 10.3389/fnana.2016.00075.