Chronic Rapamycin Prevents Electrophysiological and Morphological Alterations Produced by Conditional Pten Deletion
Jason S Hauptman1, Joseph Antonios1, Gary W Mathern1,2
1IDDRC, Jane and Terry Semel Institute for Neuroscience and Human Behavior, David Geffen School of Medicine, University of California Los Angeles, Los Angeles, CA 90095, USA.
Abstract:
Abnormalities in the mammalian target of the rapamycin (mTOR) pathway have been implicated in numerous developmental brain disorders. While the molecular and histological abnormalities have been described, less is known about alterations in membrane and synaptic excitability with chronic changes in the mTOR pathway. In the present study, we used a conditional mouse model with a deletion of the phosphatase and tensin homologue (Pten-/-, a negative regulator of mTOR) from cortical pyramidal neurons (CPNs). Whole-cell patch clamp recordings in ex vivo slices examined the intrinsic and synaptic membrane properties of layer II/III CPNs in normal mice treated with rapamycin for four weeks, and Pten-/- mice with and without chronic treatment with rapamycin. Compared with control mice, CPNs from Pten-/- mice demonstrated increased membrane capacitance and time constant in association with increased neuronal somatic size, reduced neuronal firing, and decreased frequency of spontaneous and miniature inhibitory postsynaptic currents, consistent with decreased pre-synaptic GABA release. Rapamycin treatment for four weeks prevented these changes in Pten-/- mice. CPNs from normal mice chronically treated with rapamycin, compared with CPNs from naïve mice, showed reduced capacitance and time constant, increased input resistance, and changes in inhibitory synaptic inputs, consistent with increased pre-synaptic GABA release. These results support the concept that Pten deletion results in significant changes in inhibitory inputs onto CPNs, and these alterations can be prevented with chronic rapamycin treatment. In addition, normal mice treated with rapamycin also display altered membrane and synaptic properties. These findings have potential implications for the treatment of neurological disorders associated with mTOR pathway dysfunction, such as epilepsy and autism.
Insights
Dysregulation of the mTOR pathway, specifically Pten deletion, alters neuronal excitability and inhibitory synaptic function. Chronic rapamycin treatment in Pten-deficient mice prevented these harmful changes.
Area of Science:
- Neuroscience
- Molecular Biology
- Cellular Biology
Background:
- Mammalian target of the rapamycin (mTOR) pathway dysregulation is linked to developmental brain disorders.
- While molecular and histological changes are known, alterations in neuronal excitability due to mTOR pathway changes are less understood.
Purpose of the Study:
- To investigate the effects of phosphatase and tensin homologue (Pten) deletion on cortical pyramidal neuron (CPN) membrane and synaptic excitability.
- To determine if chronic rapamycin treatment can prevent or reverse these alterations.
Main Methods:
- Utilized a conditional Pten knockout mouse model in cortical pyramidal neurons.
- Performed whole-cell patch clamp recordings in ex vivo brain slices.
- Analyzed intrinsic membrane properties and synaptic activity in control, Pten knockout, and rapamycin-treated mice.
Main Results:
- Pten deletion in CPNs led to increased cell size, reduced firing, and decreased inhibitory synaptic input (GABA release).
- Chronic rapamycin treatment normalized these Pten deletion-induced changes.
- Rapamycin treatment in normal mice altered membrane properties and increased inhibitory synaptic input.
Conclusions:
- Pten deletion significantly alters inhibitory synaptic inputs onto CPNs, which can be mitigated by chronic rapamycin treatment.
- Chronic rapamycin administration affects neuronal excitability and synaptic function in normal mice.
- Findings suggest potential therapeutic implications for mTOR-related neurological disorders like epilepsy and autism.
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