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Altered activity of mPFC pyramidal neurons and parvalbumin-expressing interneurons during social interactions in a
Destynie Medeiros1, Likhitha Polepalli1, Wei Li1
1Department of Neurobiology, School of Medicine, University of Alabama at Birmingham, Birmingham, Alabama, United States.
Abstract:
Social memory impairments in Mecp2 knockout (KO) mice result from altered neuronal activity in the monosynaptic projection from the ventral hippocampus (vHIP) to the medial prefrontal cortex (mPFC). The hippocampal network is hyperactive in this model for Rett syndrome (RTT), and such atypically heightened neuronal activity propagates to the mPFC through this monosynaptic projection, resulting in altered mPFC network activity and social memory deficits. However, the underlying mechanism of cellular dysfunction within this projection between vHIP pyramidal neurons (PYRs) and mPFC PYRs and parvalbumin interneurons (PV-INs) resulting in social memory impairments in Mecp2 KO mice has yet to be elucidated. We confirmed social memory (but not sociability) deficits in Mecp2 KO mice using a new four-chamber social memory arena, designed to minimize the impact of the tethering to optical fibers required for simultaneous in vivo fiber photometry of Ca2+-sensor signals during social interactions. mPFC PYRs of wild-type (WT) mice showed increases in the amplitude of population Ca2+ signals during explorations of a novel toy mouse and interactions with both familiar and novel mice, whereas PYRs of Mecp2 KO mice showed smaller population Ca2+ signals during interactions only with live mice. On the other hand, mPFC PV-INs of Mecp2 KO mice showed larger population Ca2+ signals during interactions with a familiar cage-mate compared with those signals in PYRs, a difference absent in the WT mice. These observations suggest atypically heightened inhibition and impaired excitation in the mPFC network of Mecp2 KO mice during social interactions, potentially driving their deficit in social memory.NEW & NOTEWORTHY The hippocampus is hyperactive in a mouse model for Rett syndrome, and such atypically heightened activity propagates to the medial prefrontal cortex (mPFC) through a monosynaptic projection, resulting in altered mPFC activity and social memory deficits. Here, we used fiber photometry of population Ca2+ signals as surrogates of neuronal activity, and show that atypically heightened inhibition from pyramidal neuron (PYR)-targeting GABAergic parvalbumin interneurons, and impaired PYR activity in the mPFC of Rett mice during social interactions, driving their deficit in social memory.
Insights
Mice with Mecp2 mutations, modeling Rett syndrome, show social memory deficits due to altered brain activity. Specifically, heightened inhibition and impaired excitation in the medial prefrontal cortex disrupt social interactions and memory.
Area of Science:
- Neuroscience
- Genetics
- Behavioral Science
Background:
- Social memory deficits are a key symptom in Rett syndrome.
- These impairments in Mecp2 knockout (KO) mice are linked to altered neuronal activity in the ventral hippocampus (vHIP) to medial prefrontal cortex (mPFC) pathway.
- The precise cellular mechanisms causing these deficits remain unclear.
Purpose of the Study:
- To investigate the cellular mechanisms underlying social memory deficits in Mecp2 KO mice.
- To analyze neuronal activity in the vHIP-mPFC projection during social interactions.
- To correlate specific neuronal activity patterns with social memory performance.
Main Methods:
- Used a four-chamber social memory arena for Mecp2 KO and wild-type (WT) mice.
- Employed in vivo fiber photometry to measure population Ca2+ signals in the mPFC.
- Recorded activity in pyramidal neurons (PYRs) and parvalbumin interneurons (PV-INs) during social interactions.
Main Results:
- Mecp2 KO mice exhibited social memory deficits but not sociability issues.
- mPFC PYR activity was reduced in Mecp2 KO mice during interactions with live mice compared to WT mice.
- mPFC PV-INs showed heightened activity in Mecp2 KO mice during familiar social interactions, unlike in WT mice.
Conclusions:
- Social memory impairments in Mecp2 KO mice are associated with atypically heightened inhibition and impaired excitation in the mPFC.
- Altered activity of mPFC PYRs and PV-INs during social interactions contributes to social memory deficits in this Rett syndrome model.

