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The cardiovascular effects of oral nifedipine and nicardipine: A double-blind comparison in healthy volunteers using transthoracic bioimpedance cardiography

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Summary

The cardiovascular effects of single oral doses of nifedipine (5 and 10 mg) and nicardipine (20 and 30 mg) were compared in a placebo controlled double-blind crossover study involving 8 healthy male volunteers. Two hours following drug administration stroke volume and cardiac index were measured non-invasively using transthoracic electrical bioimpedance cardiography during passive tilting, graded bicycle exercise, and recovery from exercise. Two separate experiments were performed in the absence of active drug to allow the reproducibility of the measurements to be assessed.

Coefficients of variation (within experiment/between experiments) for cardiac index were 7.0%/19.9% at rest and 11.5%/9.3% at 180 W exercise. Both nifedipine and nicardipine increased stroke volume and cardiac index and reduced total peripheral resistance (mean blood pressure/cardiac index) at all times in the experiment. Reductions in peripheral resistance were similar for nifedipine 10 mg and nicardipine 20 mg but in these doses slightly larger increases in heart rate were produced by nifedipine, and in stroke volume and cardiac index with nicardipine.

The study shows that the cardiovascular effects of nifedipine and nicardipine can be detected using impedance cardiography which is a simple, safe, and inexpensive technique. The differences between the effects of the two drugs were small. Although some were of statistical significance and are consistent with a less marked cardiode-pressant effect for nicardipine, the clinical importance of these observations is uncertain. Further studies to examine the effect of oral nifedipine and nicardipine in patients with impaired ventricular function may be helpful in clarifying this issue.

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References

  1. Braunwald E (1982) Mechanism of action of calcium channel blocking agents. N Engl J Med 307: 1618–1627

    Google Scholar 

  2. Katz AM (1986) Mechanisms of action and differences in calcium channel blockers. Am J Cardiol 58: 20D-22D

    Google Scholar 

  3. Visser CA, Koolen JJ, Van Wezel HB, Jonges R, Hoedemaker G, Dunning AJ (1986) Effects of intracoronary nicardipine and nifedipine on left ventricular function and coronary sinus blood flow. Br J Clin Pharmacol 22: 313S-318S

    Google Scholar 

  4. Cody RJ (1987) Use of invasive ergometric exercise to assess the hemodynamic responses to nicardipine. Am J Cardiol 59: 20J-24J

    Google Scholar 

  5. Gillmer D, Kark P (1980) Pulmonary Oedema precipitated by nifedipine. Br Med J 280: 1420–1421

    Google Scholar 

  6. De Buitlier M, Rowland E, Krikler DM (1985) Haemodynamic effects of nifedipine given alone and in combination with atenolol in patients with impaired ventricular function. Am J Cardiol 55: 15E-20E

    Google Scholar 

  7. Rousseau MF, Vincent MF, Cheron P, van den Berge G, Charlier AA, Pouleur H (1985) Effects of nicardipine on coronary blood flow, left ventricular inotropic state and myocardial metabolism in patients with angina pectoris. Br J Clin Pharmacol 20: 147S-157S

    Google Scholar 

  8. Visser CA, Koolen JJ, Van Wezel HB, Dunning AJ (1987) Haemodynamics of nicardipine in coronary artery disease. Am J Cardiol 59: 9J-12J

    Google Scholar 

  9. Lederballe Pedersen O, Mikkelsen E (1978) Acute and chronic effects of nifedipine in arterial hypertension. Eur J Clin Pharmacol 14: 375–381

    Google Scholar 

  10. Rousseau MF, Veriter C, Detry J-MR, Brasseur L, Pouleur H (1980) Impaired early left ventricular relaxation in coronary artery disease: effects of intracoronary nifedipine. Circulation 62: 764–772

    Google Scholar 

  11. Walley TJ, Heagerty AM, Woods KL, Bing RF, Pohl JEF, Barnett DB (1988) Acute inotropic effects of intravenous nifedipine and its vehicle compared with saline: a double blind study of systolic time intervals in normal subjects. Br J Clin Pharmacol 25: 187–193

    Google Scholar 

  12. Ludbrook PA, Tiefenbrunn AJ, Reed FR, Sobel BE (1982) Acute hemodynamic response to sublingual nifedipine: Dependence on left ventricular function. Circulation 65: 489–497

    Google Scholar 

  13. Kubicek WG, Karnegis JN, Patterson RP, Witsoe DA, Mattson RH (1966) Development and evaluation of an impedance cardiac output system. Aerospace Med 37: 1208–1212

    Google Scholar 

  14. Miller JC, Horvath SM (1978) Impedance cardiography. Psychophysiology 15: 80–91

    Google Scholar 

  15. Sramek BB, Rose DM, Miyamoto A (1983) Stroke volume equation with a linear base impedance model and its accuracy as compared to thermodilution and magnetic flowmeter techniques in humans and animals. Proceedings of the Sixth International Conference on Electrical Bioimpedance, Zadar, Yugoslavia, p 38

  16. Keim HJ, Wallace JM, Thurson H, Case DB, Drayer JIM, Laragh JH (1976) Impedance cardiography for determination of stroke index. J Appl Physiol 41: 797–799

    Google Scholar 

  17. Bernstein DP (1986) A new stroke volume equation for thoracic electrical bioimpedance: Theory and rationale. Crit Care Med 14: 904–909

    Google Scholar 

  18. Martindale (1989) The extra pharmacopoeia, 29th ed. In: Reynold JEF (ed) Pharmaceutical Press, London, p 1509

    Google Scholar 

  19. Graham DJM, Dow RJ, Hall DJ, Alexander OF, Mroszczak EJ, Freedman D (1985) The metabolism and pharmacokinetics of nicardipine hydrochloride in man. Br J Clin Pharmacol 20: 23S-28S

    Google Scholar 

  20. Duncan DB (1955) Multiple range and multiple F tests. Biometrics 11: 1–42

    Google Scholar 

  21. Lababidi Z, Ehmke DA, Durnin RE, Leaverton PE, Lauer RM (1970) The first derivative thoracic impedance cardiogram. Circulation 41: 651–658

    Google Scholar 

  22. Mohapatra SN (1981) Non-invasive cardiovascular monitoring by electrical impedance technique. Pitman Medical, London

    Google Scholar 

  23. Silke B, Pernenkil R, Maitra S, Verma SP, Taylor SH (1989) A new transthoracic bioimpedance method of cardiac output determination. Br J Clin Pharmacol 28: 738–739P

    Google Scholar 

  24. Gabriel S, Atterhog J-H, Oro L, Ekelund L-G (1976) Measurement of cardiac output by impedance cardiography in patients with myocardial infarction. Comparative evaluation of impedance and dye dilution techniques. Scand J Clin Lab Invest 36: 29–34

    Google Scholar 

  25. Boer P, Roos JC, Geyskes GC, Dorhout Mees EJ (1979) Measurement of cardiac output by impedance cardiography under various conditions. Am J Physiol 237: H491-H496

    Google Scholar 

  26. Appel PL, Kram HB, MacKabee J, Fleming AW, Shoemaker WC (1986) Comparison of measurements of cardiac output by bioimpedance and thermodilution in severely ill surgical patients. Crit Care Med 14: 933–935

    Google Scholar 

  27. Northridge DB, Findlay IN, Wilson J, Henderson E, Dargie HJ (1990) Non-invasive determination of cardiac output by Doppler echocardiography and electrical bioimpedance. Br Heart J 63: 93–97

    Google Scholar 

  28. Denniston JC, Maher JT, Reeves JT, Cruz JC, Cymerman A, Grover RF (1976) Measurement of cardiac output by electrical impedance at rest and during exercise. J Appl Physiol 40: 91–95

    Google Scholar 

  29. Fujinami T, Nakano S, Nakayama K, Takada K (1979) Impedance cardiography for the assessment of ventricular function during exercise. Jpn Circ J 43: 215–223

    Google Scholar 

  30. Edmonds AT, Godfrey S, Tooley M (1982) Cardiac output measured by transthoracic impedance cardiography at rest, during exercise, and at various lung volumes. Clin Sci 63: 107–113

    Google Scholar 

  31. Heatherington M, Teo KK, Heannel R, Greenwood P, Rossal RE, Kappagoda T (1985) Use of impedance cardiography in evaluating the exercise response of patients with left ventricular dysfunction. Euro Ht J 6: 1016–1024

    Google Scholar 

  32. Milsom I, Sivertsson R, Biber B, Olsson T (1982) Measurement of stroke volume with impedance cardiography. Clin Physiol 2: 409–417

    Google Scholar 

  33. Smith JJ, Bush JE, Weidmeier VT, Tristani FE (1970) Application of impedance cardiography to study of postural stress. J Appl Physiol 29: 133–137

    Google Scholar 

  34. Veigl VL, Judy WV (1983) Reproducibility of haemodynamic measurements by impedance cardiography. Cardiovasc Res 17: 728–734

    Google Scholar 

  35. Robson SC, Murray A, Peart I, Heads A, Hunter ST (1988) Reproducibility of cardiac output measurement by cross sectional and Doppler echocardiography. Br Heart J 59: 680–684

    Google Scholar 

  36. Bevegard S, Holmgren A, Jonsson B (1960) The effect of body position on the circulation at rest and during exercise, with special reference to the influence on the stroke volume. Acta Physiol Scand 49: 279–298

    Google Scholar 

  37. Chapman CB, Fisher JN, Sproule BJ (1960) Behaviour of stroke volume at rest and during exercise in human beings. J Clin Invest 39: 1208–1213

    Google Scholar 

  38. Thadani U, Parker JO (1978) Haemodynamics at rest and during supine and sitting bicycle exercise in normal subjects. Am J Cardiol 41: 52–59

    Google Scholar 

  39. Iliopoulou A, Turner P, Warrington SJ (1983) Acute haemodynamic effects of a new calcium antagonist, nicardipine, in man. A comparison with nifedipine. Br J Clin Pharmacol 15: 59–66

    Google Scholar 

  40. Burgess CD, Wadsworth J, Warrington SJ (1979) Evaluation of some non-invasive indices of cardiovascular function. Br J Clin Pharmacol 7: 436–437P

    Google Scholar 

  41. McLeay RAB, Stallard TJ, Watson RDS, Littler WA (1983) The effect of nifedipine on arterial pressure and reflex cardiac control. Circulation 67: 1084–1090

    Google Scholar 

  42. Millard RW, Lathrop DA, Grupp G, Ashraf M, Grupp IL, Schwarz A (1982) Differential cardiovascular effects of calcium channel blocking agents: potential mechanisms. Am J Cardiol 49: 499–506

    Google Scholar 

  43. Young MA, Watson RDS, Littler WA (1984) Baroreflex setting and sensitivity after acute and chronic nicardipine therapy. Clin Sci 66: 233–235

    Google Scholar 

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Thomas, S.H.L., Molyneux, P., Kelly, J. et al. The cardiovascular effects of oral nifedipine and nicardipine: A double-blind comparison in healthy volunteers using transthoracic bioimpedance cardiography. Eur J Clin Pharmacol 39, 233–240 (1990). https://doi.org/10.1007/BF00315102

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