Heart & Lung: The Journal of Acute and Critical Care
Volume 36, Issue 2 , Pages 140-147 , March 2007

Direct inotropic effect of the beta-2 receptor agonist terbutaline on impaired diaphragmatic contractility in septic rats

  • Mitsuru Uzuki, MD, PhD

      Affiliations

    • Department of Anesthesiology, Sapporo Medical University School of Medicine, Sapporo, Japan
  • ,
  • Michiaki Yamakage, MD, PhD

      Affiliations

    • Department of Anesthesiology, Sapporo Medical University School of Medicine, Sapporo, Japan
    • Corresponding Author InformationReprint requests: Michiaki Yamakage, MD, PhD, Assistant Professor, Department of Anesthesiology, Sapporo Medical University School of Medicine, South 1, West 16, Chuo-ku, Sapporo, Hokkaido 060-8543, Japan.
  • ,
  • Naoyuki Fujimura, MD, PhD

      Affiliations

    • Division of Emergency and Critical Care Medicine, Okayama University School of Medicine, Okayama, Japan.
  • ,
  • Akiyoshi Namiki, MD, PhD

      Affiliations

    • Department of Anesthesiology, Sapporo Medical University School of Medicine, Sapporo, Japan

References 

  1. Hussain SN. Respiratory muscle dysfunction in sepsis. Mol Cell Biochem. 1998;179:125–134
  2. Supinski G, Nethery D, DiMarco A. Effect of free radical scavengers on endotoxin-induced respiratory muscle dysfunction. Am Rev Respir Dis. 1993;148:1318–1324
  3. Boczkowski J, Dureuil B, Branger C, Pavlovic D, Murciano D, Pariente R, et al. Effect of sepsis on diaphragmatic function in rats. Am Rev Respir Dis. 1988;138:260–265
  4. Fujimura N, Sumita S, Natimatsu E. Alteration in diaphragmatic contractility during septic peritonitis in rats: effect of polyethylene glycol-absorbed superoxide dismutase. Crit Care Med. 2000;28:2406–2414
  5. Fujimura N, Sumita S, Aimono M, Masuda Y, Shichinohe Y, Narimatsu E, et al. Effect of free radical scavengers on diaphragmatic contractility in septic peritonitis. Am J Respir Crit Care Med. 2000;162:2159–2165
  6. Masuda Y, Sumita S, Fujimura N, Namiki A. Geranylgeranylacetone attenuates septic diaphragm dysfunction by induction of heat shock protein 70. Crit Care Med. 2003;31:2585–2591
  7. Howell S, Roussos C. Isoproterenol and aminophylline improve contractility of fatigued canine diaphragm. Am Rev Respir Dis. 1984;129:118–124
  8. Derom E, Gayan-Ramirez G, Gurrieri V, de Bock V, Decramer M. Broxaterol increases force output of fatigued canine diaphragm more than salbutamol. Am J Respir Crit Care Med. 1997;155:181–185
  9. Suzuki S, Numata H, Sano F, Yoshiike Y, Miyashita A, Okubo T. Effect and mechanism of fenoterol on fatigued canine diaphragm. Am Rev Respir Dis. 1988;137:1048–1054
  10. Fujimura N, Sumita S, Narimatsu E, Nakayama Y, Shichinohe Y, Namiki A. Effect of isoproterenol on diaphragmatic contractility in septic peritonitis. Am J Respir Crit Care Med. 2000;161:440–446
  11. Fujii Y, Toyooka H, Ebata T, Amaha K. Contractility of fatigued diaphragm is improved by dobutamine. Can J Anaesth. 1993;40:453–458
  12. Wichterman KA, Baue AE, Chaudry IH. Sepsis and septic shock: a review of laboratory models and a proposal. J Surg Res. 1980;29:189–201
  13. Kochi T, Ide T, Mizuguchi T, Nishino T. Halothane does not depress contractile function of fresh or fatigued diaphragm in pentobarbitone-anaesthetized dogs. Br J Anaesth. 1992;68:562–566
  14. Collet F, Feve B, Frisdal E, Pavoine C, Pecker F, Atlan G. Pharmacological and molecular characterisation of beta-adrenoceptors in adult rat diaphragm muscle. Respir Physiol. 1998;112:1–12
  15. Herve P, Lecarpentier Y, Brenot F, Clergue M, Chemla D, Duroux P. Relaxation of the diaphragm muscle: influence of ryanodine and fatigue. J Appl Physiol. 1988;65:1950–1956
  16. Bowman WC, Nott MW. Action of sympathomimetic amines and their antagonists on skeletal muscle. Pharmacol Rev. 1969;21:27–72
  17. Metzger JM, Scheidt KB, Fitts RH. Histochemical and physiological characteristics of the rat diaphragm. Am J Physiol. 1985;58:1085–1091
  18. Hussain SN, Simkus G, Roussos C. Respiratory muscle fatigue: a cause of ventilatory failure in septic shock. J Appl Physiol. 1985;75:1397–1402
  19. Smith PB. Developmental alterations in guanine nucleotide regulation of the beta-adrenergic receptor-adenylate cyclase system of skeletal muscle. J Biol Chem. 1984;259:7294–7299
  20. Scott JD. Cyclic nucleotide-dependent protein kinases. Pharmacol Ther. 1991;50:123–145
  21. Gonzalez-Serratos H, Hill L, Valle-Aguilera R. Effects of catecholamines on cyclic AMP on excitation-contraction coupling in isolated skeletal muscle fibers of the frog. J Physiol (Lond). 1981;315:267–282
  22. Sullivan A, Zaimis E. The effect of isoprenaline on cyclic AMP concentrations in skeletal muscle. J Physiol (Lond) 2. 1973;31:102–103
  23. Ebata T, Fujii Y, Toyooka H. Dobutamine increases diaphragmatic contractility in dogs. Can J Anaesth. 1992;39:375–380
  24. Schiffelers SL, van Harmelen VJ, de Grauw HA, Saris WH, van Baak MA. Dobutamine as selective beta1-adrenergic agonist in vivo studies on human thermogenesis and lipid utilization. J Appl Physiol. 1999;87:977–981

 This study was supported by grants-in-aid for scientific research (No. 13770848, 15591648 and 15591915) from the Japanese Ministry of Education, Science, Sports and Culture.

PII: S0147-9563(06)00178-6

doi: 10.1016/j.hrtlng.2006.06.006

Heart & Lung: The Journal of Acute and Critical Care
Volume 36, Issue 2 , Pages 140-147 , March 2007