Abstract
Neuroenergetic models of synaptic transmission predicted that energy demand is highest for action potentials (APs) and postsynaptic ion fluxes, whereas the presynaptic contribution is rather small. Here, we addressed the question of energy consumption at Schaffer-collateral synapses. We monitored stimulus-induced changes in extracellular potassium, sodium, and calcium concentration while recording partial oxygen pressure (pO2) and NAD(P)H fluorescence. Blockade of postsynaptic receptors reduced ion fluxes as well as pO2 and NAD(P)H transients by 50%. Additional blockade of transmitter release further reduced Na+ , K+ , and pO 2 transients by 30% without altering presynaptic APs, indicating considerable contribution of Ca2+-removal, transmitter and vesicle turnover to energy consumption. © 2012 ISCBFM All rights reserved.
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Liotta, A., Rösner, J., Huchzermeyer, C., Wojtowicz, A., Kann, O., Schmitz, D., … Kovács, R. (2012). Energy demand of synaptic transmission at the hippocampal Schaffer-collateral synapse. Journal of Cerebral Blood Flow and Metabolism, 32(11), 2076–2083. https://doi.org/10.1038/jcbfm.2012.116
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