AHEART September 46/
نویسندگان
چکیده
Pinsky, David J., Walif Aji, Matthias Szabolcs, Eleni S. Athan, Youping Liu, Yi Ming Yang, Richard P. Kline, Kim E. Olson, and Paul J. Cannon. Nitric oxide triggers programmed cell death (apoptosis) of adult rat ventricular myocytes in culture. Am. J. Physiol. 277 (Heart Circ. Physiol. 46): H1189–H1199, 1999.—Excessive nitric oxide (NO) production within the heart is implicated in the pathogenesis of myocyte death, but the mechanism whereby NO kills cardiac myocytes is not known. To determine whether NO may trigger programmed cell death (apoptosis) of adult rat ventricular myocytes in culture, the NO donor S-nitroso-Nacetylpenicillamine (SNAP) was shown to kill purified cardiac myocytes in a dose-dependent fashion. In situ analysis of ventricular myocytes plated on chamber slides using nick-end labeling of DNA demonstrated that SNAP induces cardiac myocyte apoptosis, which was confirmed by the identification of oligonucleosomal DNA fragmentation on agarose gel electrophoresis. Similarly, treatment of cardiac myocytes with cytokines that induce inducible NO synthase was shown to cause an NO-dependent induction of apoptosis. Addition of reduced hemoglobin to scavenge NO liberated by SNAP extinguished both the increase in percentage of apoptotic cells and the appearance of DNA ladders. Treatment with SNAP (but not with N-acetylpenicillamine or SNAP 1 hemoglobin) not only induced apoptosis but resulted in a marked increase in p53 expression in cardiac myocytes detected by Western blotting and immunohistochemistry. These data indicate that NO has the capacity to kill cardiac myocytes by triggering apoptosis and suggest the involvement of p53 in this process.
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AHEART September 46/
DOUGLAS R. SEALS, EDITH T. STEVENSON, PAMELA P. JONES, CHRISTOPHER A. DESOUZA, AND HIROFUMI TANAKA (With the Technical Assistance of Cyndi Long and Mary Jo Reiling) Human Cardiovascular Research Laboratory, Center for Physical Activity, Disease Prevention, and Aging, Department of Kinesiology and Applied Physiology, University of Colorado, Boulder 80309, and Department of Medicine, Divisions of...
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FERENC DOMOKI,1,3 ROLAND VELTKAMP,1,2 NISHADI THRIKAWALA,1 GREG ROBINS,1 FERENC BARI,1,3 THOMAS M. LOUIS,4 AND DAVID W. BUSIJA1 1Department of Physiology and Pharmacology and 2Stroke Research Center, Wake Forest University School of Medicine, Winston-Salem, North Carolina 27157-1083; 3Department of Physiology, Albert Szent-Györgyi Medical University, Szeged, H-6720 Hungary; 4Department of Anato...
متن کاملAHEART September 46/
Gyenge, C. C., B. D. Bowen, R. K. Reed, and J. L. Bert. Transport of fluid and solutes in the body. I. Formulation of a mathematical model. Am. J. Physiol. 277 (Heart Circ. Physiol. 46): H1215–H1227, 1999.—A compartmental model of shortterm whole body fluid, protein, and ion distribution and transport is formulated. The model comprises four compartments: a vascular and an interstitial compartme...
متن کاملAHEART October 46/4
F. COCEANI,1 Y.-A. LIU,1 E. SEIDLITZ,1 L. KELSEY,1 T. KUWAKI,3 C. ACKERLEY,2 AND M. YANAGISAWA4 1Integrative Biology Programme and 2Division of Pathology, The Hospital for Sick Children, Toronto, Ontario, Canada M5G 1X8; 3Department of Physiology, School of Medicine, Chiba University, Chiba, 260-8670 Japan; and 4Howard Hughes Medical Institute and Department of Molecular Genetics, University of...
متن کاملAHEART November 46/5
RAGAVENDRA R. BALIGA,1 DAVID R. PIMENTAL,1 YOU-YANG ZHAO,2 WILLIAM W. SIMMONS,1 MARK A. MARCHIONNI,3 DOUGLAS B. SAWYER,1 AND RALPH A. KELLY1 1Cardiovascular Division, Brigham and Women’s Hospital and Harvard Medical School, Boston 02115; 3Cambridge Neurosciences, Cambridge, Massachusetts 02139; and 2Department of Medicine, University of California at San Diego School of Medicine, La Jolla, Cali...
متن کاملAHEART September 46/
Parthimos, D., D. H. Edwards, and T. M. Griffith. Minimal model of arterial chaos generated by coupled intracellular and membrane Ca21 oscillators. Am. J. Physiol. 277 (Heart Circ. Physiol. 46): H1119–H1144, 1999.—We have developed a mathematical model of arterial vasomotion in which irregular rhythmic activity is generated by the nonlinear interaction of intracellular and membrane oscillators ...
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