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Aughey, G.

Publications and source records attributed to Aughey, G..

2 recordsLinked to original sources

BK channel gain-of-function disrupts limb control by suppressing neurotransmission during a critical developmental window

Gain-of-function mutations in BK potassium channels (BK GOF) cause debilitating involuntary limb movements. BK channels modulate action potential shape and neurotransmission in mature neurons, yet some BK GOF mutations also cause neurodevelopmental morbidities. Thus, whether BK GOF impairs limb control by altering the excitation/inhibition of mature motor circuits, or by disrupting their development, remains unclear. To address this issue, we developed a genetic method enabling spatiotemporal control of BK channel expression in neurons of the fruit fly, Drosophila. In concert with high-resolution measurements of limb kinematics, we demonstrate that GOF BK channels act during a narrow neurodevelopmental period to perturb limb control in adult flies. During this period, BK GOF alters synaptic localisation of the key active zone protein Bruchpilot and suppresses excitatory neurotransmission. In a wild-type background, we find that reducing neural activity during neurodevelopment yields similar motor defects to those observed in BK GOF flies. Conversely, enhancing neural excitability during development rescues alterations in limb kinematics in BK GOF flies. Collectively, our results suggest that BK GOF perturbs limb control largely by disrupting activity-dependent aspects of neuronal development.

neuroscience↗

Crosstalk between chromatin and the transcription factor Shavenbaby defines transcriptional output along the Drosophila intestinal stem cell lineage.

The transcription factor Shavenbaby (Svb), the only member of the OvoL family in Drosophila, controls intestinal stem cell differentiation. Post-translational modification of Svb produces two protein isoforms, Svb-ACT and Svb-REP, which promote intestinal stem cell renewal or differentiation, respectively. Using engineered cell lines, we express either isoform to define their mode of action, and develop an unbiased method to identify Svb target genes in intestinal cells. Within a given cell type, Svb-ACT and Svb-REP antagonistically regulate the expression of a set of target genes, binding specific enhancers whose accessibility is constrained by. During intestinal differentiation, the set of target genes progressively changes, together with chromatin accessibility. Moreover, Svb-REP binding stabilizes three-dimensional enhancer-promoter loops, while influencing the local chromatin landscape to repress target genes. We propose that SvbACT-to-REP switch promotes enterocyte differentiation of intestinal stem cells through direct gene regulation and chromatin remodeling.

genomics↗