284 results on '"Magyar, János"'
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2. Relationship between ion currents and membrane capacitance in canine ventricular myocytes
3. Rhabdodontid (Dinosauria, Ornithopoda) diversity suggested by the first documented occurrence of associated cranial and postcranial material at Vălioara (uppermost Cretaceous Densuș-Ciula Formation, Hațeg Basin, Romania)
4. Evaluation of muscle-specific and metabolism regulating microRNAs in a chronic swimming rat model
5. Multi-proxy dentition analyses reveal niche partitioning between sympatric herbivorous dinosaurs
6. A brackish to non-marine aquatic and terrestrial fossil assemblage with vertebrates from the lower Coniacian (Upper Cretaceous) Gosau Group of the Tiefengraben locality near St. Wolfgang im Salzkammergut, Austria
7. Ion current profiles in canine ventricular myocytes obtained by the “onion peeling” technique
8. ‘X’ marks the spot! Sedimentological, geochemical and palaeontological investigations of Upper Cretaceous (Maastrichtian) vertebrate fossil localities from the Vălioara valley (Densuş-Ciula Formation, Hațeg Basin, Romania)
9. Ca2+-activated Cl− current is antiarrhythmic by reducing both spatial and temporal heterogeneity of cardiac repolarization
10. Late sodium current in human, canine and guinea pig ventricular myocardium
11. Mexiletine-like cellular electrophysiological effects of GS967 in canine ventricular myocardium
12. Ferussina petofiana sp. n. (Gastropoda, Caenogastropoda, Cyclophoridae), the oldest representative of its subfamily from the Late Cretaceous of Romania
13. Selective Inhibition of Cardiac Late Na+ Current Is Based on Fast Offset Kinetics of the Inhibitor
14. Ca2 +-activated Cl− current is antiarrhythmic by reducing both spatial and temporal heterogeneity of cardiac repolarization
15. Conductance Changes of Na+ Channels during the Late Na+ Current Flowing under Action Potential Voltage Clamp Conditions in Canine, Rabbit, and Guinea Pig Ventricular Myocytes
16. ABT-333 (Dasabuvir) Increases Action Potential Duration and Provokes Early Afterdepolarizations in Canine Left Ventricular Cells via Inhibition of IKr
17. Sarcolemmal Ca2+-entry through L-type Ca2+ channels controls the profile of Ca2+-activated Cl− current in canine ventricular myocytes
18. Large-sized pentadactyl carnivore footprints from the early Miocene fossil track site at Ipolytarnóc (Hungary): 3D data presentation and ichnotaxonomical revision.
19. Selective Inhibition of Cardiac Late Na + Current Is Based on Fast Offset Kinetics of the Inhibitor.
20. Frequency-dependent effects of omecamtiv mecarbil on cell shortening of isolated canine ventricular cardiomyocytes
21. Pharmacological Modulation and (Patho)Physiological Roles of TRPM4 Channel—Part 2: TRPM4 in Health and Disease
22. Correction: Kovács et al. ABT-333 (Dasabuvir) Increases Action Potential Duration and Provokes Early Afterdepolarizations in Canine Left Ventricular Cells via Inhibition of I Kr. Pharmaceuticals 2023, 16 , 488.
23. Large-sized pentadactyl carnivore footprints from the early Miocene fossil track site at Ipolytarnóc (Hungary): 3D data presentation and ichnotaxonomical revision
24. Conductance Changes of Na + Channels during the Late Na + Current Flowing under Action Potential Voltage Clamp Conditions in Canine, Rabbit, and Guinea Pig Ventricular Myocytes.
25. Contribution of ion currents to beat-to-beat variability of action potential duration in canine ventricular myocytes
26. 9–Anthracene carboxylic acid is more suitable than DIDS for characterization of calcium-activated chloride current during canine ventricular action potential
27. Pharmacological Modulation and (Patho)Physiological Roles of TRPM4 Channel—Part 1: Modulation of TRPM4
28. Pharmacological Modulation and (Patho)Physiological Roles of TRPM4 Channel—Part 2: TRPM4 in Health and Disease
29. Evaluation of muscle-specific and metabolism regulating microRNAs in a chronic swimming rat model
30. Late Na+ Current Is [Ca2+]i-Dependent in Canine Ventricular Myocytes
31. Asynchronous activation of calcium and potassium currents by isoproterenol in canine ventricular myocytes
32. Electrophysiological Effects of the Transient Receptor Potential Melastatin 4 Channel Inhibitor 4-chloro-2-(2-chlorophenoxy)acetamido) Benzoic Acid (CBA) in Canine Left Ventricular Cardiomyocytes
33. New Strategies for the Treatment of Atrial Fibrillation
34. Effects of tacrolimus on action potential configuration and transmembrane ion currents in canine ventricular cells
35. Tetrodotoxin blocks L-type Ca2+ channels in canine ventricular cardiomyocytes
36. Effects of the PKC inhibitors chelerythrine and bisindolylmaleimide I (GF 109203X) on delayed rectifier K+ currents
37. Effects of ropinirole on action potential characteristics and the underlying ion currents in canine ventricular myocytes
38. Reverse rate-dependent changes are determined by baseline action potential duration in mammalian and human ventricular preparations
39. SEA0400 fails to alter the magnitude of intracellular Ca2+ transients and contractions in Langendorff-perfused guinea pig heart
40. Cranial ornamentation in the Late Cretaceous nodosaurid ankylosaurHungarosaurus
41. Late Sodium Current Inhibitors as Potential Antiarrhythmic Agents
42. Contribution of I Ks to ventricular repolarization in canine myocytes
43. L-364,373 fails to activate the slow delayed rectifier K+ current in canine ventricular cardiomyocytes
44. Asymmetrical distribution of ion channels in canine and human left-ventricular wall: epicardium versus midmyocardium
45. Effects of SEA0400 and KB-R7943 on Na+/Ca2+ exchange current and L-type Ca2+ current in canine ventricular cardiomyocytes
46. Is Selective Late Na+ Current Inhibition Different From Class I/B Antiarrhythmic Action? Comparison of The Effects of GS967 to Mexiletine in Canine Ventricular Myocardium
47. Effects of norfluoxetine on the action potential and transmembrane ion currents in canine ventricular cardiomyocytes
48. Ionic mechanisms limiting cardiac repolarization reserve in humans compared to dogs
49. Effects of pioglitazone on cardiac ion currents and action potential morphology in canine ventricular myocytes
50. Electrophysiological effects of risperidone in mammalian cardiac cells
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