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Effects of the Selective Serotonin Reuptake Inhibitor Fluoxetine on Developing Neural Circuits in a Model of the
Kinsley Tate1,2, Brenna Kirk1, Alisia Tseng1
1Department of Anatomy and Cell Biology, Brody School of Medicine, East Carolina University, Greenville, NC 27834, USA.
Insights
Selective serotonin reuptuptake inhibitors (SSRIs) like fluoxetine can impact fetal brain development. This study shows fluoxetine acutely alters synaptic function and neuronal activity in developing human brain models, but effects are not long-lasting.
Area of Science:
- Neuroscience
- Developmental Biology
- Pharmacology
Background:
- The prenatal brain is vulnerable to environmental influences, including pharmaceuticals.
- Selective serotonin reuptake inhibitors (SSRIs) are widely used during pregnancy, but their effects on fetal brain development are not fully understood.
- Human brain models offer a novel way to study prenatal neurodevelopment.
Purpose of the Study:
- To investigate how the SSRI fluoxetine affects neurite and synapse formation in developing human neural circuits.
- To determine the impact of fluoxetine on spontaneous neuronal activity in human cortical spheroids.
- To assess whether fluoxetine's effects are dose-dependent and long-lasting.
Main Methods:
- Utilized human neurons and cortical spheroids to model prenatal brain development.
- Treated cortical neurons and spheroids with varying doses of fluoxetine.
- Assessed changes in neurite outgrowth, excitatory and inhibitory synapse formation, and neuronal activity.
Main Results:
- Fluoxetine altered neurite formation in a dose-dependent manner.
- Acute fluoxetine exposure affected inhibitory synaptogenesis, but not excitatory synaptogenesis.
- Fluoxetine reversibly suppressed neuronal activity in a dose-dependent manner, with non-lasting effects.
Conclusions:
- Fluoxetine can acutely impact synaptic function and neuronal activity in developing human neural circuits.
- The observed effects of fluoxetine were dose-dependent and reversible, suggesting they may not be long-lasting.
- Further research is needed to explore the combined effects of SSRIs and serotonergic innervation on prenatal brain development.
Abstract:
The developing prenatal brain is particularly susceptible to environmental disturbances. During prenatal brain development, synapses form between neurons, resulting in neural circuits that support complex cognitive functions. In utero exposure to environmental factors such as pharmaceuticals that alter the process of synapse formation increases the risk of neurodevelopmental abnormalities. However, there is a lack of research into how specific environmental factors directly impact the developing neural circuitry of the human brain. For example, selective serotonin reuptake inhibitors are commonly used throughout pregnancy to treat depression, yet their impact on the developing fetal brain remains unclear. Recently, human brain models have provided unprecedented access to the critical window of prenatal brain development. In the present study, we used human neurons and cortical spheroids to determine whether the selective serotonin reuptake inhibitor fluoxetine alters neurite and synapse formation and the development of spontaneous activity within neural circuits. We demonstrate that cortical spheroids express serotonin transporter, thus recapitulating the early developmental expression of serotonin transporter associated with cortical pyramidal neurons. Cortical spheroids also appropriately express serotonin receptors, such as synaptic 5-HT2A and glial 5-HT5A. To determine whether fluoxetine can affect developing neural circuits independent of serotonergic innervation from the dorsal and medial raphe nuclei, we treated cortical neurons and spheroids with fluoxetine. Fluoxetine alters neurite formation in a dose-dependent fashion. Intriguingly, in cortical spheroids, neither acute nor chronic fluoxetine significantly altered excitatory synapse formation. However, only acute, but not chronic fluoxetine exposure altered inhibitory synaptogenesis. Finally, fluoxetine reversibly suppresses neuronal activity in a dose-dependent manner. These results demonstrate that fluoxetine can acutely alter synaptic function in developing neural circuits, but the effects were not long-lasting. This work provides a foundation for future studies to combine serotonergic innervation with cortical spheroids and assess the contributions of fluoxetine-induced alterations in serotonin levels to brain development.
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