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Updated: Feb 25, 2026

Assays for Validating Histone Acetyltransferase Inhibitors
Published on: August 6, 2020
Antipsychotic-induced Hdac2 transcription via NF-κB leads to synaptic and cognitive side effects
Daisuke Ibi1,2,3, Mario de la Fuente Revenga1, Nebojsa Kezunovic4
1Department of Physiology and Biophysics, Virginia Commonwealth University School of Medicine, Richmond, Virginia, USA.
Abstract:
Antipsychotic drugs remain the standard for schizophrenia treatment. Despite their effectiveness in treating hallucinations and delusions, prolonged exposure to antipsychotic medications leads to cognitive deficits in both schizophrenia patients and animal models. The molecular mechanisms underlying these negative effects on cognition remain to be elucidated. Here we demonstrate that chronic antipsychotic drug exposure increases nuclear translocation of NF-κB in both mouse and human frontal cortex, a trafficking event triggered via 5-HT2A-receptor-dependent downregulation of the NF-κB repressor IκBα. This upregulation of NF-κB activity led to its increased binding at the Hdac2 promoter, thereby augmenting Hdac2 transcription. Deletion of HDAC2 in forebrain pyramidal neurons prevented the negative effects of antipsychotic treatment on synaptic remodeling and cognition. Conversely, virally mediated activation of NF-κB signaling decreased cortical synaptic plasticity via HDAC2. Together, these observations may aid in developing therapeutic strategies to improve the outcome of schizophrenia treatment.
Insights
Antipsychotic drugs worsen cognition by increasing NF-κB and HDAC2 in the brain. Targeting this pathway may improve schizophrenia treatment outcomes and cognitive function.
Area of Science:
- Neuroscience
- Pharmacology
- Molecular Biology
Background:
- Antipsychotic medications are standard schizophrenia treatments, but cause cognitive deficits with prolonged use.
- The molecular mechanisms behind antipsychotic-induced cognitive impairment are not fully understood.
Purpose of the Study:
- To elucidate the molecular mechanisms underlying cognitive deficits caused by chronic antipsychotic drug exposure.
- To investigate the role of NF-κB and HDAC2 in antipsychotic-induced cognitive impairment.
Main Methods:
- Studied nuclear translocation of NF-κB in mouse and human frontal cortex after chronic antipsychotic exposure.
- Investigated the effect of NF-κB activity on Hdac2 promoter binding and transcription.
- Examined the impact of HDAC2 deletion and NF-κB activation on synaptic plasticity and cognition in mouse models.
Main Results:
- Chronic antipsychotic exposure increased NF-κB nuclear translocation via 5-HT2A receptor-dependent IκBα downregulation.
- Increased NF-κB activity led to augmented Hdac2 transcription.
- HDAC2 deletion prevented antipsychotic-induced cognitive deficits and synaptic remodeling issues.
- Activated NF-κB signaling decreased cortical synaptic plasticity through HDAC2.
Conclusions:
- NF-κB and HDAC2 are key mediators of antipsychotic-induced cognitive deficits.
- Targeting the NF-κB/HDAC2 pathway could offer novel therapeutic strategies for schizophrenia treatment.
- These findings may help improve cognitive outcomes for schizophrenia patients undergoing antipsychotic therapy.
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