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Cowie, C. J. A.

Publications and source records attributed to Cowie, C. J. A..

2 recordsLinked to original sources

Astroglial Dysfunction in Models of CDKL5 Deficiency Disorder

CDKL5 Deficiency Disorder (CDD) is a rare developmental epileptic encephalopathy typically caused by loss of function variants in the gene encoding the X-linked serine-threonine kinase CDKL5. CDKL5 is highly expressed in the brain during development, and key neuronal functions of the kinase include cytoskeletal organisation and synaptic stability. However, at present, little is known about the function of astroglia in CDD. Given the importance of these cells in synaptic development and homeostasis, as well as dysfunction in other epileptic diseases, it was hypothesised that astrocytes may contribute to CDD pathology. Induced pluripotent stem cells harbouring a CDKL5 loss-of-function mutation (and isogenic controls) were derived from CDD patient fibroblasts and differentiated into astrocytes (iAstros). Analysis of iAstros revealed transcriptomic, proteomic and functional dysregulation in CDKL5-mutant iAstros relating to water transport and immunological function, including a diminished response to TNF stimulation. Moreover, iAstros showed increased branching and reduced phosphorylation of the known CDKL5 target end-binding protein 2 (EB2) - indicative of disrupted cytoskeletal regulation in a manner similar to CDKL5-null neurons. Finally, we report the generation of novel in vitro models of CDD. CDKL5 was knocked down in adult and foetal human organotypic brain slices through transduction with an AAV encoding a novel CDKL5 shRNA. Slices transduced with the CDKL5 shRNA displayed increased spontaneous network activity, demonstrating the functionality of this model. Importantly, interrogation of these models revealed dysregulation of key astrocytic proteins congruous with the human glial stem cell model. Consequently, this study describes the generation of novel human models of CDD and their associated astrocytic dysfunction - paving the way for novel discovery and therapeutic intervention.

genetics↗

Phylogenetic divergence of GABAB receptor signalling in neocortical networks over adult life.

Cortical circuit activity is controlled by GABA-mediated inhibition in a spatiotemporally restricted manner. Much is known about fast GABA currents, GABAB receptor (GABABR) signalling exerts powerful slow inhibition that controls synaptic, dendritic and neuronal activity. However, little is known about how GABABRs contribute to circuit-level inhibition over the lifespan of rodents and humans. In this study, we quantitatively determine the functional contribution of GABABR signalling to pre- and postsynaptic domains in rat and human cortical principal cells (PC). We find that postsynaptic GABABR differentially control pyramidal cell activity within the cortical column as a function of age and species, and that these receptors contribute to co-ordination of local information processing in a layer- and species-dependent manner. These data directly increase our knowledge of translationally relevant local circuit dynamics, with direct impact on understanding the role of GABABRs in the treatment of seizure disorders. HighlightsO_LIGABAB receptor signalling displays age and species differences in cortex C_LIO_LIGABAB receptor presynaptic inhibition is stronger in humans than rodents C_LIO_LIIn vitro oscillations in human cortex are strongly regulated by GABABRs C_LIO_LILevetiracetam enhances endogenous GABABR signalling in human cortex C_LI

neuroscience↗