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Updated: Jan 21, 2026

A Semi-Quantitative Drug Affinity Responsive Target Stability DARTS assay for studying Rapamycin/mTOR interaction
Published on: August 27, 2019
Effects of antiepileptic drugs in a new TSC/mTOR-dependent epilepsy mouse model
Linda M C Koene1, Saskia E van Grondelle1, Martina Proietti Onori1
1Department of Neuroscience and ENCORE Expertise Center for Neurodevelopmental Disorders, Erasmus MC University Medical Center, Rotterdam, 3015 CN, The Netherlands.
Objective:
An epilepsy mouse model for Tuberous Sclerosis Complex (TSC) was developed and validated to investigate the mechanisms underlying epileptogenesis. Furthermore, the possible antiepileptogenic properties of commonly used antiepileptic drugs (AEDs) and new compounds were assessed.
Methods:
Tsc1 deletion was induced in CAMK2A-expressing neurons of adult mice. The antiepileptogenic properties of commonly used AEDs and inhibitors of the mTOR pathways were assessed by EEG recordings and by molecular read outs.
Results:
Mice developed epilepsy in a narrow time window (10 ± 2 days) upon Tsc1 gene deletion. Seizure frequency but not duration increased over time. Seizures were lethal within 18 days, were unpredictable, and did not correlate to seizure onset, length or frequency, reminiscent of sudden unexpected death in epilepsy (SUDEP). Tsc1 gene deletion resulted in a strong activation of the mTORC1 pathway, and both epileptogenesis and lethality could be entirely prevented by RHEB1 gene deletion or rapamycin treatment. However, other inhibitors of the mTOR pathway such as AZD8055 and PF4708671 were ineffective. Except for ketogenic diet, none of commonly used AEDs showed an effect on mTORC1 activity. Vigabatrin and ketogenic diet treatment were able to significantly delay seizure onset. In contrast, survival was shortened by lamotrigine.
Interpretation:
This novel Tsc1 mouse model is highly suitable to assess the efficacy of antiepileptic and -epileptogenic drugs to treat mTORC1-dependent epilepsy. Additionally, it allows us to study the mechanisms underlying mTORC1-mediated epileptogenesis and SUDEP. We found that early treatment with vigabatrin was not able to prevent epilepsy, but significantly delayed seizure onset.
Insights
A new mouse model for Tuberous Sclerosis Complex (TSC) epilepsy shows mTORC1 pathway activation. Rapamycin prevented seizures and lethality, highlighting its potential for treating TSC-related epilepsy.
Area of Science:
- Neuroscience
- Genetics
- Pharmacology
Background:
- Tuberous Sclerosis Complex (TSC) is a genetic disorder associated with epilepsy.
- The mTORC1 pathway is implicated in TSC pathogenesis and epileptogenesis.
- Developing effective treatments for TSC-related epilepsy remains a challenge.
Purpose of the Study:
- To develop and validate a novel mouse model for TSC-related epilepsy.
- To investigate the role of the mTORC1 pathway in epileptogenesis within this model.
- To assess the antiepileptogenic and antiepileptic properties of various drugs and compounds.
Main Methods:
- Induction of Tsc1 deletion in CAMK2A-expressing neurons in adult mice.
- EEG recordings to monitor seizure activity.
- Molecular analysis of mTORC1 pathway activation.
- Assessment of drug efficacy, including mTOR inhibitors and conventional antiepileptic drugs (AEDs).
Main Results:
- The Tsc1 deletion mouse model rapidly developed epilepsy with lethal seizures, mimicking sudden unexpected death in epilepsy (SUDEP).
- mTORC1 pathway activation was observed, and its inhibition by RHEB1 deletion or rapamycin completely prevented epileptogenesis and lethality.
- Vigabatrin and ketogenic diet delayed seizure onset, while lamotrigine shortened survival; other AEDs and mTOR inhibitors (AZD8055, PF4708671) were ineffective.
Conclusions:
- The developed Tsc1 mouse model is a valuable tool for studying mTORC1-dependent epilepsy and SUDEP mechanisms.
- Rapamycin demonstrates significant therapeutic potential for TSC-related epilepsy by targeting the mTORC1 pathway.
- Early intervention with vigabatrin can delay seizure onset, but not prevent epilepsy, in this model.
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