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Published on: February 4, 2014
Immediate-Early Genes Modulation by Antipsychotics: Translational Implications for a Putative Gateway to Drug-Induced
Andrea de Bartolomeis1, Elisabetta F Buonaguro1, Gianmarco Latte1
1Laboratory of Molecular and Translational Psychiatry and Unit of Treatment Resistant Psychosis, Section of Psychiatry, Department of Neuroscience, Reproductive Sciences and Odontostomatology, University School of Medicine "Federico II", Naples, Italy.
Abstract:
An increasing amount of research aims at recognizing the molecular mechanisms involved in long-lasting brain architectural changes induced by antipsychotic treatments. Although both structural and functional modifications have been identified following acute antipsychotic administration in humans, currently there is scarce knowledge on the enduring consequences of these acute changes. New insights in immediate-early genes (IEGs) modulation following acute or chronic antipsychotic administration may help to fill the gap between primary molecular response and putative long-term changes. Moreover, a critical appraisal of the spatial and temporal patterns of IEGs expression may shed light on the functional "signature" of antipsychotics, such as the propensity to induce motor side effects, the potential neurobiological mechanisms underlying the differences between antipsychotics beyond D2 dopamine receptor affinity, as well as the relevant effects of brain region-specificity in their mechanisms of action. The interest for brain IEGs modulation after antipsychotic treatments has been revitalized by breakthrough findings such as the role of early genes in schizophrenia pathophysiology, the involvement of IEGs in epigenetic mechanisms relevant for cognition, and in neuronal mapping by means of IEGs expression profiling. Here we critically review the evidence on the differential modulation of IEGs by antipsychotics, highlighting the association between IEGs expression and neuroplasticity changes in brain regions impacted by antipsychotics, trying to elucidate the molecular mechanisms underpinning the effects of this class of drugs on psychotic, cognitive and behavioral symptoms.
Insights
Antipsychotic drugs can cause long-term brain changes. Studying immediate-early genes (IEGs) reveals how these drugs affect brain architecture and function, offering insights into treatment efficacy and side effects.
Area of Science:
- Neuroscience
- Pharmacology
- Molecular Biology
Background:
- Antipsychotic treatments induce structural and functional brain modifications.
- Limited understanding exists regarding the enduring consequences of acute antipsychotic administration.
- Immediate-early genes (IEGs) are crucial in mediating cellular responses to stimuli.
Purpose of the Study:
- To review the differential modulation of IEGs by antipsychotics.
- To elucidate the molecular mechanisms underlying antipsychotic effects on brain architecture.
- To associate IEG expression with neuroplasticity and clinical symptoms.
Main Methods:
- Critical review of existing literature on IEG modulation by antipsychotics.
- Analysis of spatial and temporal patterns of IEG expression.
- Correlation of IEG changes with neuroplasticity and brain region-specificity.
Main Results:
- IEG modulation provides insights into the functional signature of antipsychotics.
- IEG expression patterns may explain differences between antipsychotics beyond D2 receptor affinity.
- IEG modulation is linked to neuroplasticity in antipsychotic-affected brain regions.
Conclusions:
- IEG modulation is a key factor in understanding long-term brain changes induced by antipsychotics.
- Studying IEGs can help differentiate antipsychotic mechanisms and predict side effects.
- IEG profiling offers a valuable tool for mapping neuronal responses to antipsychotic drugs.
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Translation is the process of synthesizing proteins from the genetic information carried by messenger RNA (mRNA). Following transcription, it constitutes the final step in the expression of genes. This process is carried out by ribosomes, complexes of protein and specialized RNA molecules. Ribosomes, transfer RNA (tRNA), and other proteins produce a chain of amino acids—the polypeptide—as the end product of translation.
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