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Updated: Jul 30, 2025

Investigating Long-term Synaptic Plasticity in Interlamellar Hippocampus CA1 by Electrophysiological Field Recording
Published on: August 11, 2019
Sexually differentiated microglia and CA1 hippocampal synaptic connectivity
Tim M Prengel1, Bianka Brunne1, Moataz Habiballa1
1Institute of Neuroanatomy, University Medical Center Hamburg Eppendorf, Hamburg, Germany.
Abstract:
Microglia have been shown to sculpt postnatal circuitry from birth up to adulthood due to their role in both synapse formation, synaptic pruning, and the elimination of weak, redundant synapses. Microglia are differentiated in a sex-dependent manner. In this study, we tested whether sexual differentiation of microglia results in sex-dependent postnatal reorganization of CA1 synaptic connectivity in the hippocampus. The stereological counting of synapses in mice using electron microscopy showed a continuous rise in synapse density until the fourth week, followed by a plateau phase and loss of synapses from the eighth week onwards, with no difference between sexes. This course of alteration in synapse numbers did not differ between sexes. However, selectively, on postnatal day (P) 14 the density of synapses was significantly higher in the female than in the male hippocampus. Higher synapse density in females was paralleled by higher activity of microglia, as indicated by morphological changes, CD68 expression, and proximity of microglia to synaptic sites. In Thy1-GFP mice, consistent with increased synapse numbers, bouton density was also clearly increased in females at P14. At this time point, CD47 expression, the "don't eat me" signal of neurons, was similar in males and females. The decrease in bouton density thereafter in conjunction with increased synapse numbers argues for a role of microglia in the formation of multispine boutons (MSB). Our data in females at P14 support the regulatory role of microglia in synapse density. Sexual differentiation of microglia, however, does not substantially affect long-term synaptic reorganization in the hippocampus.
Insights
Sex differences in microglia influence synapse density in the female hippocampus at postnatal day 14. However, this does not significantly alter long-term hippocampal synaptic reorganization in mice.
Area of Science:
- Neuroscience
- Developmental Biology
- Cell Biology
Background:
- Microglia play a crucial role in shaping neural circuits through synapse formation and elimination.
- Microglia exhibit sex-dependent differentiation, suggesting potential sex-specific roles in brain development.
Purpose of the Study:
- To investigate if sex-dependent microglial differentiation leads to sex-specific postnatal reorganization of hippocampal CA1 synaptic connectivity.
- To examine the role of microglia in synapse density regulation during early postnatal development.
Main Methods:
- Stereological counting of synapses using electron microscopy in mice.
- Analysis of microglial activity markers (morphology, CD68, proximity to synapses).
- Assessment of synaptic bouton density in Thy1-GFP mice.
Main Results:
- Synapse density increased continuously until week 4, then plateaued and declined, with no overall sex difference.
- Females exhibited significantly higher synapse density on postnatal day 14 compared to males.
- Higher female synapse density correlated with increased microglial activity and bouton density at postnatal day 14.
- Microglial role in regulating synapse density, particularly in forming multispine boutons, is supported.
Conclusions:
- While sexual differentiation of microglia influences synapse density transiently in females, it does not substantially impact long-term hippocampal synaptic reorganization.
- Microglia are key regulators of synapse density during early postnatal development, with sex-specific effects observed at a specific developmental window.

