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PUBMED FOR HANDHELDS

Journal Abstract Search


119 related items for PubMed ID: 9142010

  • 21. Role of mitochondrial calcium metabolism in the altered contractility of pressure-hypertrophied right ventricular myocardium.
    Sack DW, Cooper G, Stava RM, Coleman HM, Harrison CE.
    Recent Adv Stud Cardiac Struct Metab; 1975; 5():195-202. PubMed ID: 127354
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  • 25. Acetaldehyde depresses myocardial contraction and cardiac myocyte shortening in spontaneously hypertensive rats: role of intracellular Ca2+.
    Brown RA, Jefferson L, Sudan N, Lloyd TC, Ren J.
    Cell Mol Biol (Noisy-le-grand); 1999 Jun; 45(4):453-65. PubMed ID: 10432192
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  • 26. Treatment with growth hormone enhances contractile reserve and intracellular calcium transients in myocytes from rats with postinfarction heart failure.
    Tajima M, Weinberg EO, Bartunek J, Jin H, Yang R, Paoni NF, Lorell BH.
    Circulation; 1999 Jun; 99(1):127-34. PubMed ID: 9884389
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  • 27. Decreased rates of substrate oxidation ex vivo predict the onset of heart failure and contractile dysfunction in rats with pressure overload.
    Doenst T, Pytel G, Schrepper A, Amorim P, Färber G, Shingu Y, Mohr FW, Schwarzer M.
    Cardiovasc Res; 2010 Jun 01; 86(3):461-70. PubMed ID: 20035032
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  • 28. Biventricular structural and functional responses to aortic constriction in a rabbit model of chronic right ventricular pressure overload.
    Apitz C, Honjo O, Humpl T, Li J, Assad RS, Cho MY, Hong J, Friedberg MK, Redington AN.
    J Thorac Cardiovasc Surg; 2012 Dec 01; 144(6):1494-501. PubMed ID: 22818124
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  • 30. Ventricular failure and cellular remodeling with chronic supraventricular tachycardia.
    Spinale FG, Crawford FA, Hewett KW, Carabello BA.
    J Thorac Cardiovasc Surg; 1991 Dec 01; 102(6):874-82. PubMed ID: 1960991
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  • 31. Dependence of calcium release, tension generation and restoring forces on sarcomere length in skinned cardiac cells.
    Fabiato A, Fabiato F.
    Eur J Cardiol; 1976 May 01; 4 Suppl():13-27. PubMed ID: 1278211
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  • 32. Myocyte contractile function is intact in the post-infarct remodeled rat heart despite molecular alterations.
    Gupta S, Prahash AJ, Anand IS.
    Cardiovasc Res; 2000 Oct 01; 48(1):77-88. PubMed ID: 11033110
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  • 35. Contractility and stiffness of noninfarcted myocardium after coronary ligation in rats. Effects of chronic angiotensin converting enzyme inhibition.
    Litwin SE, Litwin CM, Raya TE, Warner AL, Goldman S.
    Circulation; 1991 Mar 01; 83(3):1028-37. PubMed ID: 1999008
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  • 36. Structural basis for changes in left ventricular function and geometry because of chronic mitral regurgitation and after correction of volume overload.
    Spinale FG, Ishihra K, Zile M, DeFryte G, Crawford FA, Carabello BA.
    J Thorac Cardiovasc Surg; 1993 Dec 01; 106(6):1147-57. PubMed ID: 8246553
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  • 38. Comparison of the contractile performance of the hypertrophied myocardium from spontaneous hypertensive rats and normotensive infarcted rats.
    Mill JG, Novaes MA, Galon M, Nogueira JB, Vassallo DV.
    Can J Physiol Pharmacol; 1998 Apr 01; 76(4):387-94. PubMed ID: 9795747
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  • 39. Cross-bridge dependent cooperativity determines the cardiac force-length relationship.
    Levy C, Landesberg A.
    J Mol Cell Cardiol; 2006 May 01; 40(5):639-47. PubMed ID: 16600291
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  • 40. Chronic exercise alters contractility and morphology of isolated rat cardiac myocytes.
    Moore RL, Musch TI, Yelamarty RV, Scaduto RC, Semanchick AM, Elensky M, Cheung JY.
    Am J Physiol; 1993 May 01; 264(5 Pt 1):C1180-9. PubMed ID: 8498479
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