Troponin and Titin Coordinately Regulate Length-dependent Activation in Skinned Porcine Ventricular Muscle
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Shin'ichi Ishiwata | Norio Fukuda | Satoshi Kurihara | S. Ishiwata | I. Ohtsuki | J. Udaka | Takako Terui | S. Kurihara | N. Fukuda | Takako Terui | Iwao Ohtsuki | Munguntsetseg Sodnomtseren | Douchi Matsuba | Jun Udaka | Douchi Matsuba | Munguntsetseg Sodnomtseren
[1] R. Solaro. Mechanisms of the Frank-Starling law of the heart: the beat goes on. , 2007, Biophysical journal.
[2] B. Brenner,et al. Effect of Ca2+ on cross-bridge turnover kinetics in skinned single rabbit psoas fibers: implications for regulation of muscle contraction. , 1988, Proceedings of the National Academy of Sciences of the United States of America.
[3] T. Irving,et al. Length‐dependent activation in three striated muscle types of the rat , 2002, The Journal of physiology.
[4] E. Sonnenblick,et al. Molecular basis for the influence of muscle length on myocardial performance. , 1988, Science.
[5] B. R. Jewell,et al. The contribution of activation processes to the length–tension relation of cardiac muscle , 1974, Nature.
[6] K. McDonald,et al. Length dependence of Ca2+ sensitivity of tension in mouse cardiac myocytes expressing skeletal troponin C. , 1995, The Journal of physiology.
[7] Siegfried Labeit,et al. The giant protein titin: a major player in myocardial mechanics, signaling, and disease. , 2004, Circulation research.
[8] S. Ishiwata,et al. Length Dependence of Tension Generation in Rat Skinned Cardiac Muscle: Role of Titin in the Frank-Starling Mechanism of the Heart , 2001, Circulation.
[9] M. Greaser,et al. Substitution of cardiac troponin C into rabbit muscle does not alter the length dependence of Ca2+ sensitivity of tension. , 1991, The Journal of physiology.
[10] T. Irving,et al. Myofilament Calcium Sensitivity in Skinned Rat Cardiac Trabeculae: Role of Interfilament Spacing , 2002, Circulation research.
[11] R. Moss,et al. Variations in cross-bridge attachment rate and tension with phosphorylation of myosin in mammalian skinned skeletal muscle fibers. Implications for twitch potentiation in intact muscle , 1989, The Journal of general physiology.
[12] M. Böhm,et al. Titin, myosin light chains and C-protein in the developing and failing human heart. , 1994, Journal of molecular and cellular cardiology.
[13] Naoto Yagi,et al. Effects of sustained length-dependent activation on in situ cross-bridge dynamics in rat hearts. , 2007, Biophysical journal.
[14] P. D. de Tombe,et al. Cardiac Troponin I Threonine 144: Role in Myofilament Length–Dependent Activation , 2007, Circulation research.
[15] E. Eisenberg,et al. Rate of force generation in muscle: correlation with actomyosin ATPase activity in solution. , 1986, Proceedings of the National Academy of Sciences of the United States of America.
[16] A. Katz,et al. Ernest Henry Starling, His Predecessors, and the “Law of the Heart” , 2002, Circulation.
[17] E. Sonnenblick,et al. The role of troponin C in the length dependence of Ca(2+)‐sensitive force of mammalian skeletal and cardiac muscles. , 1991, The Journal of physiology.
[18] K S McDonald,et al. Osmotic compression of single cardiac myocytes eliminates the reduction in Ca2+ sensitivity of tension at short sarcomere length. , 1995, Circulation research.
[19] K. Campbell,et al. Troponin T modulates sarcomere length-dependent recruitment of cross-bridges in cardiac muscle. , 2006, Biophysical journal.
[20] K. Harada,et al. Inherited cardiomyopathies as a troponin disease. , 2004, The Japanese journal of physiology.
[21] I. Ohtsuki,et al. Replacement of troponin in bullfrog skeletal myofibrils by rabbit skeletal and bovine cardiac troponins , 1993 .
[22] E. Homsher,et al. Contractile effects of the exchange of cardiac troponin for fast skeletal troponin in rabbit psoas single myofibrils , 2003, The Journal of physiology.
[23] S. Ishiwata,et al. Acidosis or inorganic phosphate enhances the length dependence of tension in rat skinned cardiac muscle , 2001, The Journal of physiology.
[24] R. Moss,et al. Strong binding of myosin modulates length-dependent Ca2+ activation of rat ventricular myocytes. , 1998, Circulation research.
[25] Stephen H. Smith,et al. Effect of ionic strength on length-dependent Ca(2+) activation in skinned cardiac muscle. , 1999, Journal of molecular and cellular cardiology.
[26] Z. Galis. Atheroma morphology and mechanical strength: looks are important, after all--lose the fat. , 2000, Circulation research.
[27] E Erdmann,et al. The failing human heart is unable to use the Frank-Starling mechanism. , 1994, Circulation research.
[28] D. Allen,et al. The cellular basis of the length-tension relation in cardiac muscle. , 1985, Journal of molecular and cellular cardiology.
[29] Norio Fukuda,et al. Titin/connectin-based modulation of the Frank-Starling mechanism of the heart , 2006, Journal of Muscle Research & Cell Motility.
[30] T. Irving,et al. Titin-Based Modulation of Calcium Sensitivity of Active Tension in Mouse Skinned Cardiac Myocytes , 2001, Circulation research.
[31] A. Huxley. Muscle structure and theories of contraction. , 1957, Progress in biophysics and biophysical chemistry.
[32] C. Poggesi,et al. Myofilament calcium sensitivity does not affect cross-bridge activation-relaxation kinetics. , 2007, American journal of physiology. Regulatory, integrative and comparative physiology.
[33] Yiming Wu,et al. Titin Isoform Variance and Length Dependence of Activation in Skinned Bovine Cardiac Muscle , 2003, The Journal of physiology.
[34] T. Irving,et al. Troponin I in the murine myocardium: influence on length-dependent activation and interfilament spacing. , 2003, The Journal of physiology.
[35] F. Fuchs,et al. Sarcomere length versus interfilament spacing as determinants of cardiac myofilament Ca2+ sensitivity and Ca2+ binding. , 1996, Journal of molecular and cellular cardiology.
[36] J. Leiden,et al. Attenuation of length dependence of calcium activation in myofilaments of transgenic mouse hearts expressing slow skeletal troponin I , 2000, The Journal of physiology.
[37] R. Solaro,et al. Troponin and tropomyosin: proteins that switch on and tune in the activity of cardiac myofilaments. , 1998, Circulation research.
[38] S. Ishiwata,et al. Effects of MgADP on length dependence of tension generation in skinned rat cardiac muscle. , 2000, Circulation research.
[39] S. Ishiwata,et al. Disuse-induced Preferential Loss of the Giant Protein Titin Depresses Muscle Performance via Abnormal Sarcomeric Organization , 2008, The Journal of general physiology.