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May 30, 2026Journal of Biological Chemistry1 citationsOpen Access

Prenatal cannabinoid exposure alters excitation-inhibition balance through glutamate and GABA receptor-mediated signaling

PPPriyanka D. PinkyWSWarren D. SmithMWMiles T. Wiley

Key Points

  • The study aims to explore the effects of prenatal THC exposure on brain development, specifically focusing on memory and synaptic plasticity.
  • Utilized a rodent model to examine hippocampal circuit function following prenatal delta-9-tetrahydrocannabinol exposure.
  • Conducted electrophysiological analyses to assess synaptic transmission and plasticity.
  • Performed immunohistochemical and anatomical analyses to evaluate alterations in inhibitory networks.
  • Prenatal THC exposure resulted in impaired long-term potentiation and increased long-term depression.
  • There was a significant reduction in AMPAR-mediated synaptic transmission suggesting an E/I imbalance.
  • Region-specific reorganization of cannabinoid receptors and GABA transporters was observed, indicating disrupted GABAergic signaling.

Abstract

Abstract The growing perception that marijuana is safe during pregnancy has led to a marked increase in prenatal cannabis use, raising concerns about its long-term effects on brain development and cognition. This study investigated the consequences of prenatal delta-9-tetrahydrocannabinol (THC) exposure on hippocampal circuit function, synaptic plasticity, and memory in adolescent offspring using a rodent model. We found that prenatal THC exposure resulted in persistent deficits in hippocampal-dependent memory and significant disruptions in synaptic plasticity, including impaired long-term potentiation (LTP) and increased long-term depression (LTD). Electrophysiological analyses revealed reduced AMPAR-mediated synaptic transmission and a shift toward increased inhibitory signaling, suggesting an excitation/inhibition (E/I) imbalance in the hippocampus. These functional changes were accompanied by selective downregulation of postsynaptic glutamatergic proteins (GluA1, GluN2A, GluN2B, and PSD95), while presynaptic glutamate markers remained unchanged. Notably, immunohistochemical and anatomical analyses demonstrated region-specific reorganization of inhibitory networks, including altered distribution and co-localization of cannabinoid 1 receptor (CB1R) and vesicular GABA transporter (VGAT) across hippocampal subregions. Together, our results reveal that prenatal THC exposure leads to coordinated functional and structural remodeling of hippocampal circuits, producing a lasting E/I imbalance and memory impairments during adolescence. These findings highlight disrupted GABAergic signaling as a potential therapeutic target for mitigating cognitive deficits resulting from prenatal cannabis exposure.

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Cite This Study

Pinky et al. (2026) studied this question.

synapsesocial.com/papers/6a1a7e2f0307b78509430fechttps://doi.org/10.1016/j.jbc.2026.113196
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