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Published on: December 10, 2015
The specificity and role of microglia in epileptogenesis in mouse models of tuberous sclerosis complex
Bo Zhang1, Jia Zou1, Lirong Han1
1Department of Neurology and the Hope Center for Neurological Disorders, Washington University School of Medicine, St. Louis, Missouri.
Objective:
Microglial abnormalities have been reported in pathologic specimens from patients with tuberous sclerosis complex (TSC), a genetic disorder characterized by epilepsy, intellectual disability, and autism. However, the pathogenic role of microglia in epilepsy in TSC is poorly understood, particularly whether microglia defects may be a primary contributor to epileptogenesis or are secondary to seizures or simply epiphenomena. In this study, we tested the hypothesis that Tsc1 gene inactivation in microglia is sufficient to cause epilepsy in mouse models of TSC.
Methods:
Using a chemokine receptor, Cx3cr1, to target microglia, conventional Tsc1Cx3cr1-Cre CKO (conditional knockout) mice and postnatal-inducible Tsc1Cx3cr1-CreER CKO mice were generated and assessed for molecular and histopathologic evidence of microglial abnormalities, mechanistic target of rapamycin 1 (mTORC1) pathway activation, and epilepsy.
Results:
Tsc1Cx3cr1-Cre CKO mice exhibited a high efficiency of microglia Tsc1 inactivation, mTORC1 activation, increased microglial size and number, and robust epilepsy, which were rapamycin-dependent. However, Cre reporter studies demonstrated that constitutive Cx3cr1 expression affected not only microglia, but also a large percentage of cortical neurons, confounding the role of microglia in epileptogenesis in Tsc1 Cx3cr1-Cre CKO mice. In contrast, postnatal inactivation of Tsc1 utilizing a tamoxifen-inducible Cx3cr1-CreER resulted in a more-selective microglia Tsc1 inactivation with high efficiency, mTORC1 activation, and increased microglial size and number, but no documented epilepsy.
Significance:
Microglia abnormalities may contribute to epileptogenesis in the context of neuronal involvement in TSC mouse models, but selective Tsc1 gene inactivation in microglia alone may not be sufficient to cause epilepsy, suggesting that microglia have more supportive roles in the pathogenesis of seizures in TSC.
Insights
Tuberous sclerosis complex (TSC) involves microglial abnormalities. Inactivating the Tsc1 gene in microglia alone did not cause epilepsy in mice, suggesting supportive roles in TSC pathogenesis.
Area of Science:
- Neuroscience
- Genetics
- Cell Biology
Background:
- Tuberous sclerosis complex (TSC) is a genetic disorder linked to epilepsy, intellectual disability, and autism.
- Microglial abnormalities are observed in TSC, but their role in epileptogenesis is unclear.
- This study investigates if Tsc1 gene defects in microglia can cause epilepsy in TSC models.
Purpose of the Study:
- To determine if Tsc1 gene inactivation specifically in microglia can induce epilepsy in mouse models of TSC.
- To elucidate the role of microglia in the development of seizures in TSC.
Main Methods:
- Generated conditional knockout mice (Tsc1Cx3cr1-Cre and Tsc1Cx3cr1-CreER) to inactivate the Tsc1 gene in microglia.
- Assessed microglial abnormalities, mTORC1 pathway activation, and epilepsy in these mouse models.
- Utilized tamoxifen-inducible Cre-lox system for selective, postnatal gene inactivation.
Main Results:
- Constitutive Tsc1 inactivation in microglia (Tsc1Cx3cr1-Cre) led to epilepsy but also affected cortical neurons, confounding results.
- Postnatal, microglia-specific Tsc1 inactivation (Tsc1Cx3cr1-CreER) caused microglial abnormalities and mTORC1 activation but no epilepsy.
- Rapamycin treatment reversed epilepsy in the constitutive knockout model.
Conclusions:
- Selective Tsc1 gene inactivation in microglia alone is insufficient to cause epilepsy in TSC mouse models.
- Microglia may play a supportive, rather than primary, role in TSC-related epileptogenesis.
- Neuronal involvement is likely critical for microglial contribution to seizures in TSC.
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