Dynamic imaging of free cytosolic ATP concentration during fuel sensing by rat hypothalamic neurones: evidence for ATP-independent control of ATP-sensitive K+ channels
Glucose-responsive (GR) neurons from hypothalamic nuclei are implicated in the regulation of feeding and satiety. To determine the role of intracellular ATP in the closure of ATP-sensitive K + (K ATP ) channels in these cells and associated glia, the cytosolic ATP concentration ([ATP] c ) was monito...
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Veröffentlicht in: | The Journal of physiology 2002-10, Vol.544 (2), p.429-445 |
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Zusammenfassung: | Glucose-responsive (GR) neurons from hypothalamic nuclei are implicated in the regulation of feeding and satiety. To determine
the role of intracellular ATP in the closure of ATP-sensitive K + (K ATP ) channels in these cells and associated glia, the cytosolic ATP concentration ([ATP] c ) was monitored in vivo using adenoviral-driven expression of recombinant targeted luciferases and bioluminescence imaging. Arguing against a role
for ATP in the closure of K ATP channels in GR neurons, glucose (3 or 15 m m ) caused no detectable increase in [ATP] c , monitored with cytosolic luciferase, and only a small decrease in the concentration of ATP immediately beneath the plasma
membrane, monitored with a SNAP25âluciferase fusion protein. In contrast to hypothalamic neurons, hypothalamic glia responded
to glucose (3 and 15 m m ) with a significant increase in [ATP] c . Both neurons and glia from the cerebellum, a glucose-unresponsive region of the brain, responded robustly to 3 or 15 m m glucose with increases in [ATP] c . Further implicating an ATP-independent mechanism of K ATP channel closure in hypothalamic neurons, removal of extracellular glucose (10 m m ) suppressed the electrical activity of GR neurons in the presence of a fixed, high concentration (3 m m ) of intracellular ATP. Neurons from both brain regions responded to 5 m m lactate (but not pyruvate) with an oligomycin-sensitive increase in [ATP] c . High levels of the plasma membrane lactate-monocarboxylate transporter, MCT1, were found in both cell types, and exogenous
lactate efficiently closed K ATP channels in GR neurons. These data suggest that (1) ATP-independent intracellular signalling mechanisms lead to the stimulation
of hypothalamic neurons by glucose, and (2) these effects may be potentiated in vivo by the release of lactate from neighbouring glial cells. |
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ISSN: | 0022-3751 1469-7793 |
DOI: | 10.1113/jphysiol.2002.022434 |