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Inducing Long-Term Plasticity of Intrinsic Neuronal Excitability in Neurons of the Dorsal Lateral Geniculate Nucleus
Published on: September 20, 2024
Transient Stimulation with Psychoplastogens Is Sufficient to Initiate Neuronal Growth
Calvin Ly1, Alexandra C Greb1, Maxemiliano V Vargas2
1Department of Chemistry, University of California, Davis, One Shields Avenue, Davis, California, Davis 95616, United States.
Abstract:
Cortical neuron atrophy is a hallmark of depression and includes neurite retraction, dendritic spine loss, and decreased synaptic density. Psychoplastogens, small molecules capable of rapidly promoting cortical neuron growth, have been hypothesized to produce long-lasting positive effects on behavior by rectifying these deleterious structural and functional changes. Here we demonstrate that ketamine and LSD, psychoplastogens from two structurally distinct chemical classes, promote sustained growth of cortical neurons after only short periods of stimulation. Furthermore, we show that psychoplastogen-induced cortical neuron growth can be divided into two distinct epochs: an initial stimulation phase requiring TrkB activation and a growth period involving sustained mTOR and AMPA receptor activation. Our results provide important temporal details concerning the molecular mechanisms by which next-generation antidepressants produce persistent changes in cortical neuron structure, and they suggest that rapidly excreted psychoplastogens might still be effective neurotherapeutics with unique advantages over compounds like ketamine and LSD.
Insights
Psychoplastogens like ketamine and LSD promote sustained cortical neuron growth by activating specific molecular pathways. This research reveals temporal mechanisms for next-generation antidepressants, suggesting rapidly excreted compounds could offer unique therapeutic benefits.
Area of Science:
- Neuroscience
- Molecular Biology
- Pharmacology
Background:
- Cortical neuron atrophy, including neurite retraction and spine loss, is a key feature of depression.
- Psychoplastogens are hypothesized to reverse these changes, leading to lasting behavioral improvements.
Purpose of the Study:
- To investigate the temporal molecular mechanisms of psychoplastogen-induced cortical neuron growth.
- To explore the potential of rapidly excreted psychoplastogens as novel antidepressants.
Main Methods:
- Administered ketamine and LSD to cortical neurons.
- Analyzed neuron growth patterns and molecular signaling pathways (TrkB, mTOR, AMPA receptors).
Main Results:
- Ketamine and LSD induced sustained cortical neuron growth after brief stimulation.
- Growth occurred in two epochs: TrkB activation followed by mTOR and AMPA receptor activation.
- Identified distinct temporal phases in psychoplastogen-mediated neuroplasticity.
Conclusions:
- Psychoplastogens promote persistent structural changes in cortical neurons via specific molecular pathways.
- Understanding these temporal dynamics may enable the development of novel, rapidly acting antidepressants.
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