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Effects of serum, its protein and lipid extracts, and commercial serum proteins and lipid on the isolated frog heart

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Summary

This study investigates the inotropic effects of serum, its protein and lipid extracts, and commercial serum proteins and lipid on the isolated, spontaneously-beating heart and superfused, hypodynamic ventricle of the frog. Serum taken from either man, horse, calf, frog, or rabbit evoked marked positive inotropic responses which were unaffected by cholinergic, serotonergic, and adrenergic receptor antagonists. Dialysed serum (dialisand) and void volume fractions from Sephadex G200–120 columns corresponding to large molecular weight constituents evoked marked positive inotropic responses. When serum was separated into fractions containing either proteins or lipids/lipoproteins by high-density ultracentrifugation or activated charcoal, both extracts evoked marked positive inotropic responses. Commerical serum globulins and serum containing a high proportion of immunoglobulins elicited large increases in contractile force, whereas serum albumin evoked a negative inotropic effect. Serum which was either boiled and/or treated with chymotrypsin to denature proteins also caused a marked increase in isometric twitch tension in the frog heart. Similar inotropic response was obtained with fractions of boiled serum eluted on columns of Sephadex G200–120. These fractions corresponded to molecular weight in the region of 60–70 kDa. However, the inotropic effect of boiled serum was abolished following pretreatment with lipase. Superfusion of frog hearts with commercial cardiolipin resulted in marked dose-dependent increases in contractile force. The results demonstrate the presence of at least two large molecular weight cardioactive principles in serum. These substances are comparable in size to constituents of serum proteins (e.g., globulins and immuno-globulins) and serum lipids/lipoproteins (e.g., cardiolipin) and may serve as physiological regulators of cardiac function.

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Abbreviations

Ca 2+ :

Calcium

Da :

dalton

IgG :

immunoglobulins

Na + :

Sodium

K + :

potassium

References

  • Andrews KL, Hutton T, Singh J (1985) Serum increases contractile force in the isolated frog ventricle and rat heart. J Physiol 367:81

    Google Scholar 

  • Bragdon JH, Eder HA, Havel RJ (1985) The distribution and chemical composition of ultracentrifugally separated lipoproteins in human serum. J Clin Invest 34:1345–1347

    Google Scholar 

  • Berman DA, Saunders PR (1955) Energy sources for contraction of the rat ventricle in phosphate media. Circulation Res 3:559–563

    Google Scholar 

  • Chapman RA, Niedergerke R (1970) Effects of calcium on contraction of the hypodynamic frog ventricle. J Physiol (Lond) 211:389–421

    Google Scholar 

  • Chen RF (1967) Removal of fatty acids from serum albumin by charcoal treatment. J Biol Chem 242:173–181

    Google Scholar 

  • Clark AJ (1913) The action of ions and lipids upon the frog's heart. J Physiol (London) 47:66–107

    Google Scholar 

  • Elliot HA, Gofman JW, Lindgren FT (1951) The ultracentrifugation characteristics of human blood lipids and lipoproteins: application to the study of atherosclerosis. J Phys Colloid Chem 55:81–84

    Google Scholar 

  • England PJ, Hussain M, Singh J (1989) Positive inotropic and chronotropic actions of a serum constituent on the isolated guinea-pig atria. J Physiol (Lond) 410:68

    Google Scholar 

  • Flitney FW, Singh J (1980a) Release of prostaglandins from the isolated frog ventricle and asociated changes in endogenous cyclic nucleotide levels. J Physiol (Lond) 304:1–20

    Google Scholar 

  • Flitney FW, Singh J (1980b) Inotropic responses of the frog ventricle to adenosine triphosphate and related changes in endogenous cyclic nucleotides. J Physiol (Lond) 304:21–42

    Google Scholar 

  • Furchgott RF, Lee KS (1961) High energy phosphates and force of contraction of cardiac muscle. Circulation 24:416–428

    Google Scholar 

  • Green JP, Giarman NJ, Slater WT (1952) The action of serum protein fractions on the isolated mammalian myocardium. J Pharmacol Exp Ther 106:344–352

    Google Scholar 

  • Gremels H (1936) Concerning with energetic events in the mammalian heart. Arch Exp Pathol Pharmacol 182:1–53

    Google Scholar 

  • Gruber KA, Whitaker JM, Buckalew Jr VM (1980) Endogenous digitalis-like substance in plasma of volume-expanded dogs. Nature 287:743–745

    Google Scholar 

  • Hajdu S, Leonard E (1958) A serum protein system affecting contractility of the frog heart present in increased amounts in patients with essential hypertension. Circulation Res 6:740–750

    Google Scholar 

  • Hajdu S, Leonard EJ (1978) A human serum protein system affecting muscle contractility: characterisation of the five components and their reaction sequence. J Cell Physiol 96:279–290

    Google Scholar 

  • Hajdu S, Szent-Györgyi A (1952) Action of DOC and serum on the frog heart. Am J Physiol 168:159–171

    Google Scholar 

  • Hajdu S, Leonard E, Akers RP (1957) Action of human plasma on the isolated frog heart: Observations on subjects with and without essential hypertension. Circulation Res 5:319–322

    Google Scholar 

  • Hajdu S, Weiss H, Titus E (1957) The isolation of a cardiac active principle from mammalian tissue. J Pharmacol Exp Ther 120:99–113

    Google Scholar 

  • Hutton T, Kerton PG, Singh J, Waring JJ (1986) A comparative study of the actions of serum and serum protein fractions on the frog heart. J Physiol (Lond) 380:38

    Google Scholar 

  • Jones RM, Kalman SM (1980) Cardioactive substances in blood: The actions of serotonin on the isolated guinea pig atria. Gen Pharmacol 11:463–467

    Google Scholar 

  • Lamb JF, McGuigan JAS (1966) Contractures in a superfused frog ventricle. J Physiol (Lond) 186:261–283

    Google Scholar 

  • Lowe TE (1969) The physiological significance of kinekard. Aust Ann Med 18:108–112

    Google Scholar 

  • Lowry OH, Rosebrough NJ, Farr AL, Randall RJ (1951) Protein measurement with Folin phenol reagent. J Biol Chem 193:265–275

    Google Scholar 

  • Rein H (1942) Physiological links between the liver and energy changes in the heart. Klin Wschr 21:873–877

    Google Scholar 

  • Ringer S (1883) Regarding the influence of organic constituents of the blood on the contractility of the ventricle. J Physiol (Lond) 6:361–381

    Google Scholar 

  • Schulz G, Sudhof H (1953) Concerning the lipid contents of the hypertrophic mammalian heart. Pflügers Arch 258:211–225

    Google Scholar 

  • Singh J (1984) Inotropic responses of the isolated frog ventricle to serum. Pflügers Arch 400:205–207

    Google Scholar 

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Singh, J., Hutton, T., Hussain, M. et al. Effects of serum, its protein and lipid extracts, and commercial serum proteins and lipid on the isolated frog heart. J Comp Physiol B 161, 303–310 (1991). https://doi.org/10.1007/BF00262312

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  • DOI: https://doi.org/10.1007/BF00262312

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