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Cell-Intrinsic Regulation of Epilepsy-Associated Pathology by mTORC1 and mTORC2
Christin M Godale1,2, Sarah Yaser1,2, Austin W Drake1,2,3
1Department of Anesthesia, Cincinnati Children's Hospital Medical Center, Cincinnati, Ohio 45229.
Abstract:
Mechanistic target of rapamycin (mTOR) signaling is mediated through mTORC1 and mTORC2. mTORC1 signaling requires the regulatory protein Raptor, while mTORC2 signaling requires Rictor. mTOR signaling is increased during epileptogenesis, and manipulations to inhibit mTOR have been shown to reduce seizure incidence in some epilepsy models. Inhibiting mTOR signaling is hypothesized to prevent epileptogenic changes. To test this hypothesis and to assess how mTORC1 and mTORC2 might modulate epileptogenesis, we deleted Raptor or Rictor from a subset of hippocampal dentate granule cells in male and female mice to cell-autonomously inhibit mTORC1 or mTORC2, respectively. Gene deletion effects were examined in healthy mice and following status epilepticus, which leads to the development of epilepsy. Raptor and Rictor knock-out (KO) cells had fewer dendritic spines than neighboring wild-type cells, and Raptor KO cells had reduced presynaptic terminal volume and contributed less to mossy fiber axon sprouting. Raptor deletion decreased somatic contact with parvalbumin inhibitory neuron puncta and reduced soma area, while Rictor KO cells were more likely to be c-Fos immunoreactive. Findings demonstrate that Raptor and Rictor deletion exert mixed effects on morphological changes associated with epilepsy, implying that mTORC1 and mTORC2 have both overlapping and distinct neuroanatomical targets. In addition, the magnitude of gene deletion effects was similar in saline and SE-exposed animals. The observation implies that rather than specifically blocking epileptogenic circuit rewiring in acquired epilepsy, mTOR inhibition acts similarly on granule cells in healthy and epileptic mice to produce mixed changes on structures underlying excitatory and inhibitory synaptic transmission.
Insights
Inhibiting the mechanistic target of rapamycin (mTOR) pathway in mice had mixed effects on neuronal structure, impacting both healthy and epileptic brains similarly. This suggests mTOR inhibition may not specifically target epilepsy-related changes.
Area of Science:
- Neuroscience
- Cellular Biology
- Molecular Signaling
Background:
- Mechanistic target of rapamycin (mTOR) signaling, mediated by mTORC1 and mTORC2, is implicated in epilepsy.
- Inhibiting mTOR has shown potential in reducing seizure incidence in some epilepsy models.
- Understanding the distinct roles of mTORC1 and mTORC2 in epileptogenesis is crucial.
Purpose of the Study:
- To investigate the cell-autonomous roles of mTORC1 and mTORC2 in epileptogenesis.
- To determine how inhibiting mTORC1 (via Raptor deletion) and mTORC2 (via Rictor deletion) affects neuronal morphology in healthy and epileptic mice.
- To assess potential overlapping and distinct neuroanatomical targets of mTORC1 and mTORC2.
Main Methods:
- Deletion of Raptor or Rictor in hippocampal dentate granule cells of male and female mice.
- Examining gene deletion effects in both healthy mice and following status epilepticus (SE)-induced epilepsy.
- Analyzing morphological changes including dendritic spines, presynaptic terminals, axon sprouting, and neuronal contacts.
Main Results:
- Raptor and Rictor knockout cells exhibited fewer dendritic spines compared to wildtype cells.
- Raptor deletion reduced presynaptic terminal volume and mossy fiber axon sprouting.
- Raptor deletion decreased inhibitory neuron contact and soma area, while Rictor deletion increased c-Fos immunoreactivity.
- Gene deletion effects were comparable in saline- and SE-exposed animals.
Conclusions:
- mTORC1 and mTORC2 signaling have both overlapping and distinct effects on neuronal morphology.
- mTOR inhibition impacts neuronal structures similarly in healthy and epileptic conditions, rather than specifically blocking epilepsy-related rewiring.
- Findings offer insights into mTOR signaling in epilepsy and potential off-target effects of mTOR antagonists.
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