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Published on: March 22, 2024
Dopaminergic control of ADAMTS2 expression through cAMP/CREB and ERK: molecular effects of antipsychotics
Fulgencio Ruso-Julve1,2,3, Ana Pombero3,4, Fuencisla Pilar-Cuéllar3,5,6
1Department of Psychiatry, University Hospital Marqués de Valdecilla-IDIVAL, Santander, 39011, Cantabria, Spain.
Abstract:
A better understanding of the molecular mechanisms that participate in the development and clinical manifestations of schizophrenia can lead to improve our ability to diagnose and treat this disease. Previous data strongly associated the levels of deregulated ADAMTS2 expression in peripheral blood mononuclear cells (PBMCs) from patients at first episode of psychosis (up) as well as in clinical responders to treatment with antipsychotic drugs (down). In this current work, we performed an independent validation of such data and studied the mechanisms implicated in the control of ADAMTS2 gene expression. Using a new cohort of drug-naïve schizophrenia patients with clinical follow-up, we confirmed that the expression of ADAMTS2 was highly upregulated in PBMCs at the onset (drug-naïve patients) and downregulated, in clinical responders, after treatment with antipsychotics. Mechanistically, ADAMTS2 expression was activated by dopaminergic signalling (D1-class receptors) and downstream by cAMP/CREB and mitogen-activated protein kinase (MAPK)/ERK signalling. Incubation with antipsychotic drugs and selective PKA and MEK inhibitors abrogated D1-mediated activation of ADAMTS2 in neuronal-like cells. Thus, D1 receptors signalling towards CREB activation might participate in the onset and clinical responses to therapy in schizophrenia patients, by controlling ADAMTS2 expression and activity. The unbiased investigation of molecular mechanisms triggered by antipsychotic drugs may provide a new landscape of novel targets potentially associated with clinical efficacy.
Insights
Schizophrenia involves altered ADAMTS2 gene expression in blood cells, activated by dopamine D1 receptors. Antipsychotic treatment normalizes this expression, suggesting a new therapeutic target for schizophrenia.
Area of Science:
- Neuroscience
- Molecular Biology
- Psychiatry
Background:
- Schizophrenia pathogenesis requires deeper molecular understanding.
- Previous studies linked ADAMTS2 gene expression in peripheral blood mononuclear cells (PBMCs) to schizophrenia onset and treatment response.
Purpose of the Study:
- Validate ADAMTS2 expression changes in a new cohort of schizophrenia patients.
- Investigate the molecular mechanisms controlling ADAMTS2 gene expression and its response to antipsychotic treatment.
Main Methods:
- Validated ADAMTS2 expression in PBMCs from drug-naïve schizophrenia patients and clinical responders.
- Investigated signaling pathways (dopaminergic, cAMP/CREB, MAPK/ERK) controlling ADAMTS2 expression.
- Used neuronal-like cells to test the effect of antipsychotics and pathway inhibitors (PKA, MEK) on D1-mediated ADAMTS2 activation.
Main Results:
- Confirmed significant upregulation of ADAMTS2 in drug-naïve patients and downregulation in clinical responders.
- Established that dopaminergic signaling via D1 receptors activates ADAMTS2 expression through cAMP/CREB and MAPK/ERK pathways.
- Demonstrated that antipsychotics and specific inhibitors block D1-mediated ADAMTS2 activation in neuronal cells.
Conclusions:
- Dopamine D1 receptor signaling, controlling ADAMTS2 expression via CREB, may play a role in schizophrenia onset and treatment response.
- ADAMTS2 represents a potential molecular target for novel antipsychotic therapies.
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