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Focal DEPDC5 loss without disruption to cerebral cortical neuron migration recapitulates DEPDC5-related focal epilepsy
Karenna J. Groff, Yini Liang, Christopher Morici, Jinita B. Modasia, Leena Mehendale, Nishtha Gupta, Angelica D’Amore, Yongho Choe, Mustafa Q. Hameed, Alexander Rotenberg, Mustafa Sahin, Christopher J. Yuskaitis
Karenna J. Groff, Yini Liang, Christopher Morici, Jinita B. Modasia, Leena Mehendale, Nishtha Gupta, Angelica D’Amore, Yongho Choe, Mustafa Q. Hameed, Alexander Rotenberg, Mustafa Sahin, Christopher J. Yuskaitis
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Research Article Genetics Neuroscience

Focal DEPDC5 loss without disruption to cerebral cortical neuron migration recapitulates DEPDC5-related focal epilepsy

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Abstract

Focal cortical dysplasia (FCD) is a major cause of refractory epilepsy and is associated with pathogenic variants in mTOR pathway genes, including DEPDC5, the most common cause of familial focal epilepsy. The mechanisms of epileptogenesis associated with FCD and hyperactive mTOR signaling remain unclear in DEPDC5-related epilepsy. To test whether DEPDC5 loss leading to seizures requires in utero cortical developmental defects or whether postnatal neuronal dysfunction of mTORC1 is sufficient to drive seizures, we developed a postnatal focal cortical Depdc5-knockout mouse model. Postnatal day 0–1 Depdc5-floxed mice received unilateral motor cortex injections of either AAV-Cre-GFP or control AAV-GFP. The AAV-Cre-GFP–injected hemisphere had decreased DEPDC5 levels with hyperactivation of mTOR that increased with age compared with both the contralateral hemisphere and the AAV-GFP–injected mice. Cortical lamination was not disrupted by postnatal DEPDC5 loss. Pathologic hallmarks of FCDs were identified in the Depdc5-knockout hemisphere, including increased SMI-311 neurofilament staining, hypomyelination, astrogliosis, and microglial activation. Mice with postnatal cortical DEPDC5 loss exhibited lower seizure thresholds, increased focal seizures, and increased rates of seizure-induced death compared with control mice. This study demonstrates that postnatal DEPDC5 loss and subsequent mTOR hyperactivation without disruption of cortical migration is sufficient to cause epilepsy.

Authors

Karenna J. Groff, Yini Liang, Christopher Morici, Jinita B. Modasia, Leena Mehendale, Nishtha Gupta, Angelica D’Amore, Yongho Choe, Mustafa Q. Hameed, Alexander Rotenberg, Mustafa Sahin, Christopher J. Yuskaitis

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Figure 5

Evidence of glial abnormalities in postnatal focal Depdc5-knockout mice.

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Evidence of glial abnormalities in postnatal focal Depdc5-knockout mice....
(A) Top: Immunohistochemistry shows evidence of reactive astrogliosis (GFAP) and microglial activation (Iba1) in the Depdc5-knockout region of the right cortex compared with the control hemisphere of adult Depdc5c/– mice (P50–P80) previously injected with AAV-Cre-GFP on P0 (n = 3). Scale bars: 1000 μm. Bottom: Higher magnification shows reactive astrogliosis (GFAP) and activated microglia (Iba1) with abnormally large cell bodies in the Depdc5-knockout hemisphere. Scale bars: 100 μm. GFAP, red; Iba1, white; merged with DAPI and GFP. (B) Left: No evidence of hypomyelination in Depdc5-knockout region of AAV-Cre-GFP–injected Depdc5c/– pups compared to control hemisphere (n = 3). Right: The cerebral cortex of AAV-Cre-GFP–injected Depdc5c/– adult mice (n = 3) shows a reduction in MBP expression compared with the control hemisphere, indicating hypomyelination. MBP, red; merged with DAPI and GFP. Scale bars: 1000 μm (top) and 100 μm (bottom).

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