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Adolescent administration of ketamine impairs excitatory synapse formation onto parvalbumin-positive GABAergic interneurons in mouse prefrontal cortex.

Jia-Wei Zhang, Hai-Qian Zhou, Zhen Zhu, Yang-Yang Ding, Ying He, Xiao-Lian Wei, Chen-Fan Xiao, Yun-Fei Li, Wei-Peng Lin, Dong-Min Yin

Biochemical and Biophysical Research Communications September 17, 2024 DOI: 10.1016/j.bbrc.2024.150272 (opens in new tab)

Study at a glance

AI-extracted from the abstract
Characteristics Animal study Peer reviewed
Population Rats
Intervention sub-chronic ketamine administration
Topics Ketamine Neuroplasticity Esketamine
Keywords Adolescence Excitatory synapse Pv interneuron Mpfc Neurodevelopment Drug effects Adolescent psychiatry Synaptic connectivity
Citations 7
Key points Sub-chronic ketamine administration during adolescence reduces excitatory synapses on PV neurons in the mPFC, causing persistent hyperexcitability and impairments in socialization and working memory into adulthood.

Abstract

Ketamine, an N-methyl-d-aspartate (NMDA) receptor antagonist, induces deficits in cognition and information processing following chronic abuse. Adolescent ketamine misuse represents a significant global public health issue; however, the neurodevelopmental mechanisms underlying this phenomenon remain largely elusive. This study investigated the long-term effects of sub-chronic ketamine (Ket) administration on the medial prefrontal cortex (mPFC) and associated behaviors. In this study, Ket administration during early adolescence displayed a reduced density of excitatory synapses on parvalbumin (PV) neurons persisting into adulthood. However, the synaptic development of excitatory pyramidal neurons was not affected by ketamine administration. Furthermore, the adult Ket group exhibited hyperexcitability and impaired socialization and working memory compared to the saline (Sal) administration group. These results strongly suggest that sub-chronic ketamine administration during adolescence results in functional deficits that persist into adulthood. Bioinformatic analysis indicated that the gene co-expression module1 (M1) decreased expression after ketamine exposure, which is crucial for synapse development in inhibitory neurons during adolescence. Collectively, these findings demonstrate that sub-chronic ketamine administration irreversibly impairs synaptic development, offering insights into potential new therapeutic strategies.

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