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Updated: Jan 28, 2026

Studying Synaptic Vesicle Pools using Photoconversion of Styryl Dyes
Published on: February 15, 2010
Distinct functions of a cGMP-dependent protein kinase in nerve terminal growth and synaptic vesicle cycling
Jeffrey S Dason1,2, Aaron M Allen3, Oscar E Vasquez4
1Department of Cell and Systems Biology, University of Toronto, Toronto, ON M5S 3B2, Canada jeffrey.dason@uwindsor.ca marla.sokolowski@utoronto.ca.
Abstract:
Sustained neurotransmission requires the tight coupling of synaptic vesicle (SV) exocytosis and endocytosis. The mechanisms underlying this coupling are poorly understood. We tested the hypothesis that a cGMP-dependent protein kinase (PKG), encoded by the foraging (for) gene in Drosophila melanogaster, is critical for this process using a for null mutant, genomic rescues and tissue-specific rescues. We uncoupled the exocytic and endocytic functions of FOR in neurotransmission using a temperature-sensitive shibire mutant in conjunction with fluorescein-assisted light inactivation of FOR. We discovered a dual role for presynaptic FOR, in which FOR inhibits SV exocytosis during low-frequency stimulation by negatively regulating presynaptic Ca2+ levels and maintains neurotransmission during high-frequency stimulation by facilitating SV endocytosis. Additionally, glial FOR negatively regulated nerve terminal growth through TGF-β signalling, and this developmental effect was independent of the effects of FOR on neurotransmission. Overall, FOR plays a critical role in coupling SV exocytosis and endocytosis, thereby balancing these two components to maintain sustained neurotransmission.
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