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Lizotte, T.

Publications and source records attributed to Lizotte, T..

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Analysis of Flurothyl-induced Seizures and Epileptogenesis in Mice with Targeted Deletions of Exons 3 and 4 in Dock7

Mutations in DOCK7 have been identified in individuals with epileptic encephalopathies. Given that epileptic encephalopathies are a set of disorders that result in seizure activity and associated cognitive and behavioral impairments, we investigated the role of Dock7 in seizure susceptibility and flurothyl kindling using the repeated flurothyl seizure model in mice. Male and female Dock7+/+ and Dock7{bigtriangleup}ex3-4/{bigtriangleup}ex3-4 mice were subjected to 8 daily flurothyl exposures (kindling, induction phase) followed by a 28-day incubation period and a subsequent flurothyl rechallenge (retest). No significant differences were observed in baseline myoclonic jerk or generalized seizure thresholds between genotypes or sexes. However, over the kindling period, male Dock7{bigtriangleup}ex3-4/{bigtriangleup}ex3-4 mice exhibited slightly higher myoclonic jerk and generalized seizure thresholds compared to Dock7+/+ males across trials. Female mice showed similar trends, but the differences were only significant for generalized seizure thresholds. Following the 28-day incubation period and flurothyl retest, male mice of both genotypes maintained their seizure thresholds upon retest. Dock7+/+ female mice showed increased myoclonic jerk and generalized seizure thresholds during retest, while Dock7{bigtriangleup}ex3-4/{bigtriangleup}ex3-4 females maintained their thresholds. A key finding was the emergence of more severe forebrain[->]brainstem seizures upon flurothyl retest in a significant percentage of mice across all groups. However, the proportion of mice developing these seizures did not differ significantly between genotypes. Although DOCK7 mutations have been linked to human epileptic encephalopathies and neurodevelopmental dysfunction, we find that Dock7{bigtriangleup}ex3-4/{bigtriangleup}ex3-4 male and female mice do not show heightened excitability or seizure susceptibilities using the repeated flurothyl seizure model. HighlightsO_LIDock7{bigtriangleup}ex3-4/{bigtriangleup}ex3-4 mice show slightly higher seizure thresholds during flurothyl kindling C_LIO_LIDock7{bigtriangleup}ex3-4/{bigtriangleup}ex3-4 mice do not exhibit heightened seizure susceptibility upon retest. C_LIO_LIForebrain-brainstem seizures emerged upon retest regardless of Dock7 genotype. C_LI

neuroscience↗

Deletion of Dock7 Exons 3 and 4 Results in Reduced Trabecular Microarchitecture and a Decrease in Mineralization

Dedicator of Cytokinesis 7 (DOCK7) has recently emerged as a regulator of skeletal homeostasis, but existing Dock7 mutant models harbor only global mutations and are incompatible with tissue-specific deletion studies. We previously generated a Dock7-floxed allele in which exons 3-4 are flanked by LoxP sites. To validate the utility of this allele for future conditional strategies, we globally deleted exons 3-4 to generate Dock7em2/em2 mice and characterized their skeletal phenotype. Homozygous Dock7em2/em2 mice exhibited a diluted coat color and white belly spot, consistent with spontaneous Dock7 mutations, whereas heterozygotes exhibited no spotting or coat changes. Bone microarchitecture was assessed in 21-week-old males and females. Global deletion of Dock7 exons 3-4 resulted in a 30-37% reduction in trabecular bone volume in the distal femur and L5 vertebrae. Cortical bone thickness was unchanged, though sex-specific alterations in femoral area suggested altered appositional bone growth. Mass spectrometry (SWATH) analysis of Dock7em2/em2 bone marrow stromal cells (BMSCs) identified DOCK7 protein levels similar to control mice, likely resulting from an alternative translational start site. Despite stable protein abundance prior to differentiation, BMSCs from Dock7em2/em2 mice exhibited reduced mineralization and decreased Bglap expression, indicating attenuated osteoblast differentiation. These findings demonstrate that Dock7 exons 3-4 are required for normal trabecular bone acquisition and osteoblast function. While the Dock7-em2 allele likely encodes a truncated protein product, its recapitulation of the Misty skeletal phenotype confirms that exons 3-4 are essential for DOCK7 activity. These studies in the Dock7em2/em2 mouse provide a foundation for future tissue-specific deletion studies utilizing the Dock7 exon 3-4 deletion model to define the cellular roles of DOCK7 in regulating bone formation and trabecular architecture. Lay SummaryIdentifying genes that regulate bone mass is essential for understanding osteoporosis. Mutation of the Dock7 gene in mice results in low bone mass, similar to human osteoporosis. Previous models could not isolate its role in specific tissues, limiting our ability to understand how DOCK7 controls bone mass. We developed a new mouse model where Dock7 can be mutated in specific tissues. In this study, we bred mice to carry this mutation across all tissues, causing significant bone loss. This validates a flexible tool for future research to mutate DOCK7 in specific cell types and map its role in skeletal health.

cell biology↗