DocumentCode
140670
Title
Effects of astrocytic mechanisms on neuronal hyperexcitability
Author
Grigorovsky, Vasily ; Bardakjian, Berj L.
Author_Institution
Inst. of Biomater. & Biomed. Eng., Univ. of Toronto, Toronto, ON, Canada
fYear
2014
fDate
26-30 Aug. 2014
Firstpage
4880
Lastpage
4883
Abstract
While originally astrocytes have been thought to only act as support to neurons, recent studies have implicated them in multiple active roles, including the ability to moderate or alter neuronal firing patterns and to possibly be involved in both the prevention and propagation of epileptic seizures. In this study we propose a new model to incorporate pyramidal cells and interneurons (a common neural circuit in CA3 hippocampal slices) as well as a model of astrocyte. As both potassium and calcium ions have been shown to potentially affect neuronal hyperexcitability, the astrocytic model has both mechanisms - the clearance of potassium through potassium channels (such as KIR, KDR and sodium-potassium pump), and the influence of astrocyte in the synapse (forming the tripartite synapse with calcium-glutamate interactions). Preliminary findings of the model results show that when potassium conductances in the astrocyte are decreased, it results in the accumulation of extracellular potassium, leading to both spontaneous discharges and depolarization block, while the alteration of normal calcium response in the astrocyte can lead to just hyperexcitable conditions without the depolarization block.
Keywords
bioelectric potentials; biomembrane transport; brain; calcium; medical disorders; neural nets; neurophysiology; patient care; potassium; CA3 hippocampal slices; KDR; KIR; astrocyte model; astrocytic mechanisms; astrocytic model; calcium ions; calcium-glutamate interactions; depolarization block; epileptic seizure prevention; epileptic seizure propagation; extracellular potassium; hyperexcitable conditions; interneurons; multiple active roles; neural circuit; neuronal firing patterns; neuronal hyperexcitability; normal calcium response alteration; potassium channels; potassium conductances; potassium ions; pyramidal cells; sodium-potassium pump; spontaneous discharges; tripartite synapse; Biological neural networks; Biological system modeling; Calcium; Epilepsy; Extracellular; Integrated circuit modeling; Neurons;
fLanguage
English
Publisher
ieee
Conference_Titel
Engineering in Medicine and Biology Society (EMBC), 2014 36th Annual International Conference of the IEEE
Conference_Location
Chicago, IL
ISSN
1557-170X
Type
conf
DOI
10.1109/EMBC.2014.6944717
Filename
6944717
Link To Document