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Zhang, Y. V.

Publications and source records attributed to Zhang, Y. V..

2 recordsLinked to original sources

Glial Ca2+ Signaling Controls Endocytosis and K+ Buffering to Regulate Glial-Neuronal Communication at the Soma

Glial-neuronal signaling at synapses is widely appreciated, but how glia interact with neuronal cell bodies is less clear. Drosophila cortex glia are restricted to brain regions devoid of synapses, providing an opportunity to characterize interactions between glia and neuronal somas. Mutations in the cortex glial NCKX exchanger zydeco abolish microdomain Ca2+ oscillatory activity and elevate glial Ca2+, predisposing animals to seizures. To determine how cortex glial Ca2+ signaling controls neuronal excitability, an in vivo modifier screen for the NCKXzydeco seizure phenotype was performed. Our results indicate elevation of glial Ca2+ causes hyperactivation of calcineurin-dependent endocytosis and accumulation of early endosomes. Knockdown of sandman, a K2P channel, recapitulates NCKXzydeco seizures. Restoring glial K+ buffering by overexpressing a leak K+ channel rescues zydeco seizures. These findings indicate cortex glial Ca2+ couples to K+ buffering through calcineurin regulated endo-exocytotic balance and K2P channel expression to modulate neuronal excitability.

neuroscience

Examining molecular determinants underlying heterogeneity of synaptic release probability using optical quantal imaging

Neurons communicate through neurotransmitter release at specialized synaptic regions known as active zones (AZs). Using transgenic biosensors to image postsynaptic glutamate receptor activation following single vesicle fusion events at Drosophila neuromuscular junctions, we analyzed release probability (Pr) maps for a defined connection with ~300 AZs between synaptic partners. Although Pr was very heterogeneous, it represented a stable and unique feature of each AZ. Pr heterogeneity was not abolished in mutants lacking Synaptotagmin 1, suggesting the AZ itself is likely to harbor a key determinant(s). Indeed, AZ Pr was strongly correlated with presynaptic Ca2+ channel density and Ca2+ influx at single release sites. In addition, Pr variability was reflected in the postsynaptic compartment, as high Pr AZs displayed a distinct pattern of glutamate receptor clustering. Developmental analysis suggests that high Pr sites emerge from earlier formed AZs, with a temporal maturation in transmission strength occurring over several days.

neuroscience