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Published on: November 11, 2016
mTORC1-selective inhibitors rescue cellular phenotypes in TSC iPSC-derived neurons
Elizabeth D Buttermore1,2, Gayathri Rajaram Srinivasan1,2, Hellen Jumo2,3
1Human Neuron Core, Rosamund Stone Zander Translational Neuroscience Center, Boston Children's Hospital, Boston, MA, United States.
Abstract:
The mechanistic target of rapamycin (mTOR) pathway plays an important role in regulating multiple cellular processes, including cell growth, autophagy, proliferation, protein synthesis, and lipid synthesis, among others. Given the central role of this pathway in multiple cellular processes, it is not surprising that mTOR pathway dysregulation is a key mechanism underlying several neurological disorders, including Tuberous Sclerosis Complex (TSC). TSC patients typically present with pathogenic variants in the TSC1 or TSC2 genes, which encode proteins forming a complex that plays an important role in modulating mTOR activity. We previously reported cellular and functional deficits in induced pluripotent stem cell (iPSC)-derived neurons from TSC patients. These deficits were reversed by inhibiting mTOR activity using rapamycin treatment, revealing the role of mTOR signaling in the regulation of cell morphology and hyperexcitability phenotypes in TSC patient-derived neurons. However, chronic rapamycin treatment inhibits both mTORC1 and mTORC2 activity and its clinical use is associated with significant side effects. With the development of novel mTORC1-selective compounds, we aimed to assess whether selective inhibition of mTORC1 likewise reversed the cellular and functional deficits found in TSC patient-derived neurons. Our results indicate that the novel, selective mTORC1 inhibitors nearly fully reversed the cellular and functional deficits of TSC2 -/ - iPSC-derived neurons in a fashion and magnitude similar to rapamycin, as they all reversed and near-normalized their neuronal hyperexcitability and abnormal morphology as compared to the DMSO-treated cells. These data suggest that mTORC1-specific compounds could provide clinical therapeutic benefit similar to rapamycin without the same side effects.
Insights
Selective mTORC1 inhibitors reversed neurological deficits in Tuberous Sclerosis Complex (TSC) patient neurons. These compounds offer potential therapeutic benefits similar to rapamycin but with fewer side effects.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- The mechanistic target of rapamycin (mTOR) pathway regulates crucial cellular functions.
- Dysregulation of the mTOR pathway is implicated in neurological disorders like Tuberous Sclerosis Complex (TSC).
- TSC is associated with mutations in TSC1 or TSC2 genes, affecting mTOR activity.
Purpose of the Study:
- To investigate if novel mTORC1-selective inhibitors can reverse cellular and functional deficits in TSC patient-derived neurons.
- To compare the efficacy of mTORC1-selective inhibitors with rapamycin in TSC models.
- To explore potential therapeutic strategies for TSC with reduced side effects.
Main Methods:
- Utilized induced pluripotent stem cell (iPSC)-derived neurons from TSC patients (TSC2-/-).
- Treated neurons with novel mTORC1-selective compounds and rapamycin.
- Assessed neuronal morphology and hyperexcitability phenotypes.
Main Results:
- mTORC1-selective inhibitors effectively reversed neuronal hyperexcitability and abnormal morphology in TSC2-/- iPSC-derived neurons.
- The effects of mTORC1 inhibitors were comparable in magnitude and fashion to rapamycin treatment.
- These findings suggest a critical role for mTORC1 signaling in TSC-related neuronal dysfunction.
Conclusions:
- Selective inhibition of mTORC1 can normalize cellular and functional deficits in TSC patient-derived neurons.
- mTORC1-specific compounds may offer a therapeutic approach for TSC with an improved side effect profile compared to non-selective mTOR inhibitors.
- Targeting mTORC1 presents a promising avenue for future TSC treatments.
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