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Rozlivkova, J. T.

Publications and source records attributed to Rozlivkova, J. T..

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Dasatinib-Quercetin May Reduce Senescence Markers, Without Senolysis or Seizure Modification, in a Mouse Model of Focal Cortical Dysplasia

Mounting evidence from surgical type II focal cortical dysplasia (FCD) tissues and mouse models have recently shown that dysmorphic neurons carrying MTOR mutations (DNs) in FCD exhibit hallmarks of cellular senescence. Building on pioneering work from the Baulac group identifying cellular senescence as a feature of mTOR-pathway FCD, a recent study by Ribierre et al. (2024) [1] proposed oral dasatinib and quercetin (DQ) as a therapy that partially decreases the load of mutant, senescent neurons and thus reduces seizure occurrence in FCD mice. Using a different mouse strain and a different gain-of-function mutation in MTOR, our data confirm the presence of senescence hallmarks in FCD mice, but do not support one of the conclusions of Ribierre et al.--that DQ acts as a senolytic in an FCD mouse model--and we propose an alternative interpretation. We longitudinally tracked individual cell fate using two-photon microscopy and complemented these data with EEG monitoring and immunohistochemistry. Immunohistochemical analyses were performed within the same sections using multiple markers, allowing direct identification of mutant neurons and assessment of senescence-associated labeling. While we observed a detectable reduction in a senescence-associated marker, consistent with a senomorphic effect, it did not translate into a change in seizure phenotype, despite treatment timing and dosing matching those in the original study. For detailed materials and methods, see Extended Methods.

neuroscience↗

SEIZURE OCCURRENCE IN FCD TYPE II IS PREDICTED BY LESION POSITION AND LINKED TO CYTOARCHITECTURAL ALTERATIONS

Focal cortical dysplasia (FCD) is a common malformation of cortical development and a major cause of early-onset, drug-resistant epilepsy. FCD type II is defined by abnormal lamination, altered cellular composition, and pathological cells, notably dysmorphic neurons (DNs) and balloon cells. DNs are thought to drive epileptogenicity through both cell-autonomous and non-cell-autonomous mechanisms, the latter including not only aberrant connectivity but also indirect modulation of excitability in local cell populations. We performed a multiscale structural and morphological analysis to elucidate the basis of FCD epileptogenicity and the impact of somatic mTOR mutations during brain development. Using a mouse model of FCD type II, we show that lesions in frontal and motor cortical regions are the strongest predictors of spontaneous seizure occurrence. This localization-dependent epileptogenicity offers an experimental explanation for the higher clinical epileptogenicity of frontal FCDs and suggests that posterior lesions may remain silent--an open question in human pathology. In our model, FCD tissue displayed considerable expansion, with cortical thickness up to [~]20% in seizure-bearing animals. This expansion coincided with an overall [~]40% reduction in neuronal density, consistent with tissue hypertrophy. DN density did not differ between seizure and non-seizure animals, challenging the notion that higher DN load directly predicts epileptogenesis. At the microscopic level, we describe DN axonal pathologies, including giant varicosities. In the cortex, these appeared as vesicle-filled boutons, whereas along callosal axons they were frequent but largely empty. Bouton density was markedly reduced in FCD cortex. Together, these findings leave the net synaptic effect of dysmorphic neurons unresolved, challenging the assumption that axonal hypertrophy translates into increased excitatory drive. While morphological abnormalities in FCD type II are well documented, their functional consequences remain incompletely understood. Here, we used macro- and microscopic structural features of FCDII to assess seizure susceptibility, providing new insights into epileptogenesis.

neuroscience↗