Abstract
Glucokinase (GK) activity plays a key role in glucose-stimulated insulin secretion from pancreatic beta cells. Insulin regulates GK activity by modulating its association with secretory granules, although little is known about the mechanisms involved in regulating this association. Using quantitative imaging of multicolor fluorescent proteins fused to GK, we found that the dynamic association of GK with secretory granules is modulated through nitric oxide (NO). Our results in cultured beta cells show that insulin stimulates NO production and leads to S-nitrosylation of GK. Furthermore, inhibition of NO synthase (NOS) activity blocks insulin-stimulated changes in both GK association with secretory granules and GK conformation. Mutation of cysteine 371 to serine blocks S-nitrosylation of GK and causes GK to remain tightly bound to secretory granules. GK was also found to interact stably with neuronal NOS as detected by coimmunoprecipitation and fluorescence resonance energy transfer. Finally, attachment of a nuclear localization signal sequence to NOS drives GK to the nucleus in addition to its normal cytoplasmic and granule targeting. Together, these data suggest that the regulation of GK localization and activity in pancreatic beta cells is directly related to NO production and that the association of GK with secretory granules occurs through its interaction with NOS.
MeSH Terms
Active Transport, Cell Nucleus/genetics
Animals
Cells, Cultured
Cysteine/metabolism
Fluorescence Resonance Energy Transfer
Fluorescent Dyes
Glucokinase/metabolism
Insulin/metabolism
Insulin Secretion
Islets of Langerhans/cytology,enzymology
Mice
Mutation/genetics
Nitric Oxide/biosynthesis
Nitric Oxide Synthase/metabolism
Nitrosation
Nitroso Compounds/metabolism
Recombinant Fusion Proteins
Secretory Vesicles/metabolism
Sulfur/metabolism
Chemicals
Fluorescent Dyes
Insulin
Nitroso Compounds
Recombinant Fusion Proteins
Nitric Oxide
Sulfur
Nitric Oxide Synthase
Glucokinase
Cysteine
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Rizzo Megan A
ORCID
Dept. of Molecular Physiology and Biophysics, Vanderbilt University Medical Center, 735 Light Hall, Nashville, TN 37232, USA.
Piston David W
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