Anne-Marie Koop

144 13. Do E, Baudet S, Gow IF, Ellis D, Noireaud J. Intracellular pH during hypoxia in normal and hypertrophied right ventricle of ferret heart. J Mol Cell Cardiol J. Noireaud, Laboratoire Cardiol. Experimentale, Hopital G and R Laennec, BP 1005, 44035 Nantes Cedex 01, France; 1995;27:927–939. 14. Sack MN, Disch DL, Rockman HA, Kelly DP. A role for Sp and nuclear receptor transcription factors in a cardiac hypertrophic growth program. Proc Natl Acad Sci U S A D.P. Kelly, Center for Cardiovascular Research, Box 8086, Washington Univ. Sch. of Medicine, St. Louis, MO 63110, United States; 1997;94:6438–6443. 15. Nagaya N, Goto Y, Satoh T, Uematsu M, Hamada S, Kuribayashi S, Okano Y, Kyotani S, Shimotsu Y, Fukuchi K, Nakanishi N, Takamiya M, Ishida Y. Impaired regional fatty acid uptake and systolic dysfunction in hypertrophied right ventricle. J Nucl Med Y. Goto, Division of Cardiology, Department of Medicine, National Cardiovascular Center, Suita, Osaka 565, Japan; 1998;39:1676–1680. 16. Rumsey WL, Abbott B, Bertelsen D, Mallamaci M, Hagan K, Nelson D, Erecinska M. Adaptation to hypoxia alters energy metabolism in rat heart. Am J Physiol - Hear Circ Physiol W.L. Rumsey, Zeneca Pharmaceuticals, Wilmington, DE 19850-5437, United States; 1999;276:H71–H80. 17. O’Brien TX, Schuyler GT, Rackley MS, Thompson JT. F1 ATP synthase β -subunit and cytochrome c transcriptional regulation in right ventricular hemodynamic overload and hypertrophically stimulated cardiocytes. J Mol Cell Cardiol T.X. O’Brien, Cardiology Division, 816 CSB, Medical University of South Carolina, Charleston, SC 29425-2221, United States; 1999;31:167–178. 18. Matsushita T, Ikeda S, Miyahara Y, Yakabe K, Yamaguchi K, Furukawa K, Iwasaki T, Shikuwa M, Fukui J, Kohno S. Use of [123I]-BMIPPmyocardial scintigraphy for the clinical evaluation of a fatty-acid metabolism disorder of the right ventricle in chronic respiratory and pulmonary vascular disease. J Int Med Res T. Matsushita, Second Dept. of Internal Medicine, Nagasaki University School of Med., Nagasaki 852-8501, Japan; 2000;28:111–123. 19. Bitar FF, Bitar H, Sabban M El, Nasser M, Yunis KA, Tawil A, Dbaibo GS. Modulation of ceramide content and lack of apoptosis in the chronically hypoxic neonatal rat heart. Pediatr Res F.F. Bitar, Department of Pediatrics, American University of Beirut, Beirut, Lebanon; 2002;51:144–149. 20. Ecarnot-Laubriet A, Rochette L, Vergely C, Sicard P, Teyssier J-R. The Activation Pattern of the Antioxidant Enzymes in the Right Ventricle of Rat in Response to Pressure Overload is of Heart Failure Type. Hear Dis L. Rochette, Faculties of Medicine and Pharmacy, 21079, Dijon, Cedex, France; 2003;5:308–312. 21. Farahmand F, Hill MF, Singal PK. Antioxidant and oxidative stress changes in experimental cor pulmonale. Mol Cell Biochem P.K. Singal, Institute of Cardiovascular Sciences, St. Boniface Gen. Hosp. Res. Centre, Winnipeg, Man. R2H 2A6, Canada; 2004;260:21–29. 22. Cisar CR, Balog JM, Anthony NB, Iqbal M, BottjeWG, Donoghue AM. Differential expression of mitochondrial electron transport chain proteins in cardiac tissues of broilers from pulmonary hypertension syndrome-resistant and -susceptible lines. Poult Sci J.M. Balog, Poultry Prod. Prod. Safety Res. U., Ctr. of Excellence for Poultry Sci., University of Arkansas, Fayetteville, AR 72701, United States; 2004;83:1420–1426.

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