Electrhopysiological Effect of the Polyamine Spermine in Normoxic and Ischemic Ventricular Myocardium
https://doi.org/10.18087/cardio.2019.3.10240
Abstract
Cytoplasmic polyamines (PA) are involved in control of many cellular functions and are well known as regulators of so called inward-rectifier potassium ion channels. Nevertheless, functional significance of extracellular PA in the heart is poorly elucidated. Aim of this study was to study effects of endogenous PA spermine in the ventricular myocardium. Effects of the extracellular spermine were investigated in isolated multicellular preparations of rabbit and rat ventricular myocardium. Langendorff-perfused isolated rat and rabbit hearts were also used. Action potential (APs) duration and pattern of excitation in ventricular myocardium were estimated using standard microelectrode technique and optical mapping. Functional refractory periods were assessed in Langendorff perfused hearts with the help of programmed
electrical stimulation of the ventricle. In this study extracellular PA spermine (0.1–5 mM) induced shortening of the APs in multicellular preparations of rat ventricular myocardium registered using sharp microelectrode technique. However, spermine caused only weak effect in preparations of ventricular myocardium from rabbit heart: highest tested concentration of spermine (5 mM) induced 4.7 % APs shortening. Similarly, 0.1–1 mM of spermine was unable to alter substantially ventricular effective refractory periods in isolated perfused rabbit hearts. In two animal species tested (rat and rabbit) 0.1–1 mM of spermine failed to affect conduction velocity and activation pattern in ventricles of isolated Langendorff-perfused hearts under normoxia. However, in the rat no-flow model of ischemia-reperfusion extracellular spermine improved conduction of excitation in ventricles. Our results allow suggesting that extracellular spermine can prevent ischemia-induced proarrhythmic changes in ventricular myocardium probably due to reduction of calcium accumulation, but this effect is significant only when PA is applied in millimolar concentrations. Also, potential anti-ischemic effect of the PA may be species specific.
About the Authors
V. S. KuzminRussian Federation
PhD of BSc.
Yu. V. Egorov
Russian Federation
L. V. Rozenshtraukh
Russian Federation
References
1. Lewenhoeck D.A. Observationes D. Anthonii Lewenhoeck, De Natis E Semine Genitali Animalculis. Philosophical Transactions of the Royal Society of London 1677;12:1040–1046.
2. Tabor C.W., Tabor H. Polyamines. Annu Rev Biochem 1984;53:749–790.
3. Russel D.H., Durie B.G.M. Polyamines in various pathological states. Prog Cancer Res Ther 1978;8:157–165.
4. van Dam L., Korolev N., Nordenskiöld L. Polyamine-nucleic acid interactions and the effects on structure in oriented DNA fibers. Nucleic Acids Res 2002;30(2):419–428.
5. Saminathan M., Thomas T., Shirahata A. et al. Polyamine structural effects on the induction and stabilization of liquid crystalline DNA: potential applications to DNA packaging, gene therapy and polyamine therapeutics. Nucleic Acids Res 2002;30(17):3722–3731.
6. Redgate E.S., Boggs S., Grudziak A. et al. Polyamines in brain tumor therapy. J Neurooncol 1995;25:167–179.
7. Eisenberg T., Abdellatif M., Schroeder S. et al. Cardioprotection and lifespan extension by the natural polyamine spermidine. Nat Med 2016;22(12):1428–1438.
8. Soda K. Biological Effects of Polyamines on the Prevention of Aging-associated Diseases and on Lifespan Extension. Food Science and Technology Research 2015;21(2):145–157.
9. Lopatin A.N., Makhina E.N., Nichols C.G. Potassium channel block by cytoplasmic polyamines as the mechanism of intrinsic rectification. Nature 1994;372:366–369.
10. Nichols C.G., Lee S.J. Polyamines and potassium channels: A twenty five year romance. J Biol Chem 2018; pii: jbc.TM118.003344.
11. Lopatin A.N., Nichols C.G. Inward rectifiers in the heart: an update on I(K1). J Mol Cell Cardiol 2001;33(4):625–638.
12. Lopatin A.N., Makhina E.N., Nichols C.G. The mechanism of inward rectification of potassium channels: “long-pore plugging” by cytoplasmic polyamines. J Gen Physiol 1995;106(5):923–955.
13. Nerbonne J.M., Kass R.S. Molecular Physiology of Cardiac Repolarization. Physiol Rev 2005;85:1205–1253.
14. Yamada M., Kurachi Y. Spermine gates inward-rectifying muscarinic but not ATP-sensitive K1 channels in rabbit atrial myocytes. J Biol Chem 1995;270:9289–9294.
15. Masuko T., Kusama-Eguchi K., Sakata K. et al. Polyamine transport, accumulation, and release in brain. J Neurochem 2003;84(3):610–617.
16. Skatchkov S.N., Antonov S.М., Eaton M.J. Glia and glial polyamines. Role in brain function in health and disease. Biochemistry (Moscow) Supplement Series A: Membrane and Cell Biology 2016;10(2):73–98. Russian.
17. Biedermann B., Skatchkov S.N., Brunk I. et al. Spermine/spermidine is expressed by retinal glial (Müller) cells and controls distinct K+ channels of their membrane. Glia 1998;23(3):209–220.
18. Chen W., Harnett M.T., Smith S.M. Modulation of Neuronal Voltage-Activated Calcium and Sodium Channels by Polyamines and pH. Channels (Austin) 2007;1(4):281–290.
19. Díaz-Soto G., Rocher A., García-Rodríguez C. et al. The Calcium-Sensing Receptor in Health and Disease. Int Rev Cell Mol Biol 2016;327:321–369.
20. Rogers A.C., McDermott F.D., Mohan H.M. et al. The effects of polyamines on human colonic mucosal function. Eur J Pharmacol 2015;764:157–163.
21. Noujaim S.F., Stuckey J.A., Ponce-Balbuena D. et al. Structural bases for the different antifibrillatory effects of chloroquine and quinidine. Cardiovasc Res 2011;89(4):862–869.
22. Fedorov V.V., Sharifov O.F., Rosenshtraukh L.V. et al. Mechanism of antiarrhythmic action of nibentan on experimental model of vagotonic atrial fibrillation in the canine heart. Kardiologiya 1999;39(3):45–56. Russian.
23. Senanayake M.D., Amunugama H., Boncher T.D. et al. Design of polyamine-based therapeutic agents: new targets and new directions. Essays Biochem 2009;46:77–94.
24. Glukhov A.V., Reznik A.V., Kovalenko N.V. et al. Effect of Nibentan on Dispersion of Repolarization of Ventricular Myocardium in the Rabbit. Kardiologiya 2008;48(7):40–47. Russian
25. Guevara-Balcazara G., Querejeta-Villagomeza E., Nuevo-Adallaa O. et al. Spermine-induced negative inotropic effect in isolated rat heart, is mediated through the release of ATP. Biochem Pharmacol 2003;66:157–161.
26. Ventura C., Ferroni C., Flamigni F. et al. Polyamine effects on [Ca2] i homeostasis and contractility in isolate rat ventricular cardiomyocytes. Am J Physiol 1994;267:H587–H592.
27. Bordallo C., Cantabrana B., Velasco L. et al. Manuel Sánchez Putrescine modulation of acute activation of the в-adrenergic system in the left atrium of rat. Eur J Pharmacol 2008;598:68–74.
28. Musa H., Veenstra R.D. Voltage-Dependent Blockade of Connexin40 Gap Junctions by Spermine. Biophys J 2003;84:205–219.
29. Lin X., Fenn E., Veenstra R.D. An amino-terminal lysine residue of rat connexin40 that is required for spermine block. J Physiol 2006;570(2):251–269.
30. Rohr S., Kucera J.P., Kléber A.G. Slow conduction in cardiac tissue, I: effects of a reduction of excitability versus a reduction of electrical coupling on microconduction. Circ Res 1998;83(8):781–794.
31. Kagiyama Y., Hill J.L., Gettes L.S. Interaction of acidosis and increased extracellular potassium on action potential characteristics and conduction in guinea pig ventricular muscle. Circ Res 1982;51(5):614–623.
32. Kléber A.G., Janse M.J., Wilms-Schopmann F.J. et al. Changes in conduction velocity during acute ischemia in ventricular myocardium of the isolated porcine heart. Circulation 1986;73(1):189–198.
33. Hoeker G.S., Poelzing S. Attenuation of conduction slowing during global ischemia in guinea pig hearts through increased extracellular calcium. Biophys J 2017;112, (SPECIAL ISSUE 3): 401a.
34. Zhao Y.J., Xu C.Q., Zhang W.H. et al. Role of polyamines in myocardial ischemia/reperfusion injury and their interactions with nitric oxide. Eur J Pharmacol 2007;562(3):236–246.
Review
For citations:
Kuzmin V.S., Egorov Yu.V., Rozenshtraukh L.V. Electrhopysiological Effect of the Polyamine Spermine in Normoxic and Ischemic Ventricular Myocardium. Kardiologiia. 2019;59(3):43-51. (In Russ.) https://doi.org/10.18087/cardio.2019.3.10240