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Full-Text Articles in Animal Structures
Effects Of Endogenous Cannabinoid Anandamide On Voltage-Dependent Sodium And Calcium Channels In Rat Ventricular Myocytes, Lina T. Al Kury, Oleg I. Voitychuk, Keun-Hang Susan Yang, Faisal T. Thayyullathil, Petro Doroshenkp, Ali M. Ramez, Yaroslav M. Shuba, Sehamuddin Galadari, Frank Christopher Howarth, Murat Oz
Effects Of Endogenous Cannabinoid Anandamide On Voltage-Dependent Sodium And Calcium Channels In Rat Ventricular Myocytes, Lina T. Al Kury, Oleg I. Voitychuk, Keun-Hang Susan Yang, Faisal T. Thayyullathil, Petro Doroshenkp, Ali M. Ramez, Yaroslav M. Shuba, Sehamuddin Galadari, Frank Christopher Howarth, Murat Oz
Mathematics, Physics, and Computer Science Faculty Articles and Research
BACKGROUND AND PURPOSE: The endocannabinoid anandamide (N-arachidonoyl ethanolamide; AEA) exerts negative inotropic and antiarrhythmic effects in ventricular myocytes.
EXPERIMENTAL APPROACH: Whole-cell patch-clamp technique and radioligand-binding methods were used to analyse the effects of anandamide in rat ventricular myocytes.
KEY RESULTS: In the presence of 1-10 μM AEA, suppression of both Na(+) and L-type Ca(2+) channels was observed. Inhibition of Na(+) channels was voltage and Pertussis toxin (PTX) - independent. Radioligand-binding studies indicated that specific binding of [(3) H] batrachotoxin (BTX) to ventricular muscle membranes was also inhibited significantly by 10 μM metAEA, a non-metabolized AEA analogue, with …
Inhibition Modifies The Effects Of Slow Calcium-Activated Potassium Channels On Epileptiform Activity In A Neuronal Network Model, Keun-Hang Susan Yang, Piotr J. Franaszczuk, Gregory K. Bergey
Inhibition Modifies The Effects Of Slow Calcium-Activated Potassium Channels On Epileptiform Activity In A Neuronal Network Model, Keun-Hang Susan Yang, Piotr J. Franaszczuk, Gregory K. Bergey
Mathematics, Physics, and Computer Science Faculty Articles and Research
Generation of epileptiform activity typically results from a change in the balance between network excitation and inhibition. Experimental evidence indicates that alterations of either synaptic activity or intrinsic membrane properties can produce increased network excitation. The slow Ca2+-activated K+ currents (sI AHP) are important modulators of neuronal firing rate and excitability and have important established and potential roles in epileptogenesis. While the effects of changes in sI AHP on individual neuronal excitability are readily studied and well established, the effects of such changes on network behavior are less well known. The experiments here utilize a defined small network model of …