Calcium-induced release of calcium from the cardiac sarcoplasmic reticulum.

[1]  Alexandre Fabiat APPRAISAL OF THE HYPOTHESIS OF THE “DEPOLARIZATION-INDUCED” RELEASE OF CALCIUM FROM THE SARCOPLASMIC RETICULUM IN SKINNED CARDIAC CELLS FROM THE RAT OR PIGEON VENTRICLE , 1985 .

[2]  C. Baumgarten,et al.  Methods for Detecting Calcium Release from the Sarcoplasmic Reticulum of Skinned Cardiac Cells and the Relationships Between Calculated Transsarcolemmal Calcium Movements and Calcium Release , 1984 .

[3]  D. Bers Early transient depletion of extracellular Ca during individual cardiac muscle contractions. , 1983, The American journal of physiology.

[4]  P. Best Cardiac muscle function: results from skinned fiber preparations. , 1983, The American journal of physiology.

[5]  F N Briggs,et al.  The effect of calcium load on the calcium permeability of sarcoplasmic reticulum. , 1982, The Journal of biological chemistry.

[6]  H. Fozzard,et al.  Transmembrane Na+ and Ca2+ electrochemical gradients in cardiac muscle and their relationship to force development , 1982, The Journal of general physiology.

[7]  C. F. Stevens,et al.  Properties of single calcium channels in cardiac cell culture , 1982, Nature.

[8]  R. Tsien,et al.  Fluctuations in membrane current driven by intracellular calcium in cardiac Purkinje fibers. , 1982, Biophysical journal.

[9]  G. Isenberg Ca Entry and Contraction as Studied in Isolated Bovine Ventricular Myocytes , 1982, Zeitschrift fur Naturforschung. Section C, Biosciences.

[10]  A. Fabiato Calcium release in skinned cardiac cells: variations with species, tissues, and development. , 1982, Federation proceedings.

[11]  D. Bers A simple method for the accurate determination of free [Ca] in Ca-EGTA solutions. , 1982, The American journal of physiology.

[12]  Fluorescence and differential light absorption recordings with calcium probes and potential-sensitive dyes in skinned cardiac cells. , 1982, Canadian journal of physiology and pharmacology.

[13]  A. Brown,et al.  Nanomolar concentrations of extracellular ATP activate membrane Ca channels in snail neurones , 1982, Nature.

[14]  Alexandre Fabia ' To Fluorescence and differential light absorption recordings with calcium probes and potential-sensitive dyes in skinned cardiac cells' , 1982 .

[15]  A. Somlyo,et al.  Primary role of sarcoplasmic reticulum in phasic contractile activation of cardiac myocytes with shunted myolemma , 1981, The Journal of cell biology.

[16]  R. Niedergerke,et al.  Analysis of caffeine action in single trabeculae of the frog heart , 1981, Proceedings of the Royal Society of London. Series B. Biological Sciences.

[17]  A. Fabiato,et al.  Myoplasmic free calcium concentration reached during the twitch of an intact isolated cardiac cell and during calcium-induced release of calcium from the sarcoplasmic reticulum of a skinned cardiac cell from the adult rat or rabbit ventricle , 1981, The Journal of general physiology.

[18]  C. O. Lee Ionic activities in cardiac muscle cells and application of ion-selective microelectrodes. , 1981, The American journal of physiology.

[19]  J. Potter,et al.  Magnesium and the regulation of muscle contraction. , 1981, Federation proceedings.

[20]  E. Chazov,et al.  Calcium-binding rate and capacity of cardiac sarcoplasmic reticulum. , 1981, Journal of molecular and cellular cardiology.

[21]  H. Shuman,et al.  Calcium release and ionic changes in the sarcoplasmic reticulum of tetanized muscle: an electron-probe study , 1981, The Journal of cell biology.

[22]  F. Ashcroft,et al.  Calcium dependence of the inactivation of calcium currents in skeletal muscle fibers of an insect. , 1981, Science.

[23]  G. Langer,et al.  Sodium efflux in rabbit myocardium: relationship to sodium—calcium exchange , 1981, The Journal of physiology.

[24]  J Haiech,et al.  Effects of cations on affinity of calmodulin for calcium: ordered binding of calcium ions allows the specific activation of calmodulin-stimulated enzymes. , 1981, Biochemistry.

[25]  D. Lappé,et al.  Diastolic scattered light fluctuation, resting force and twitch force in mammalian cardiac muscle , 1981, The Journal of physiology.

[26]  J. Potter,et al.  The time-course of Ca2+ exchange with calmodulin, troponin, parvalbumin, and myosin in response to transient increases in Ca2+. , 1981, Biophysical journal.

[27]  D M Bers,et al.  Cardiac contractility and sarcolemmal calcium binding in several cardiac muscle preparations. , 1981, The American journal of physiology.

[28]  J. Illingworth A common source of error in pH measurements. , 1981, The Biochemical journal.

[29]  R. Tsien,et al.  Is the slow inward calcium current of heart muscle inactivated by calcium , 1981 .

[30]  E. W. Stephenson Activation of fast skeletal muscle: contributions of studies on skinned fibers. , 1981, The American journal of physiology.

[31]  W. Hasselbach,et al.  Low Affinity Calcium Binding Sites of the Calcium Transport ATPase of Sarcoplasmic Reticulum Membranes , 1980, Zeitschrift fur Naturforschung. Section C, Biosciences.

[32]  J. Capasso,et al.  Negative inotropic effect of elevated extracellular calcium in rat myocardium. , 1980, Journal of molecular and cellular cardiology.

[33]  G. B. Frank The current view of the source of trigger calcium in excitation-contraction coupling in vertebrate skeletal muscle. , 1980, Biochemical pharmacology.

[34]  G. Isenberg,et al.  Glycocalyx is not required for slow inward calcium current in isolated rat heart myocytes , 1980, Nature.

[35]  Langer Ga The role of calcium in the control of myocardial contractility: an update. , 1980 .

[36]  G. Langer The role of calcium in the control of myocardial contractility: an update. , 1980, Journal of molecular and cellular cardiology.

[37]  A. Fabiato,et al.  Use of chlorotetracycline fluorescence to demonstrate Ca2+-induced release of Ca2+ from the sarcoplasmic reticulum of skinned cardiac cells , 1979, Nature.

[38]  G. Langer,et al.  Uncoupling cation effects on cardiac contractility and sarcolemmal Ca2+ binding. , 1979, The American journal of physiology.

[39]  B. Gomperts,et al.  ATP induces nucleotide permeability in rat mast cells , 1979, Nature.

[40]  D. Miller,et al.  Are cardiac muscle cells ‘skinned’ by EGTA or EDTA? , 1979, Nature.

[41]  A. Fabiato,et al.  Calculator programs for computing the composition of the solutions containing multiple metals and ligands used for experiments in skinned muscle cells. , 1979, Journal de physiologie.

[42]  M. Kirchberger,et al.  Calcium efflux from isolated cardiac sarcoplasmic reticulum. , 1978, The Journal of biological chemistry.

[43]  A. Fabiato,et al.  CALCIUM‐INDUCED RELEASE OF CALCIUM FROM THE SARCOPLASMIC RETICULUM OF SKINNED CELLS FROM ADULT HUMAN, DOG, CAT, RABBIT, RAT, AND FROG HEARTS AND FROM FETAL AND NEW‐BORN RAT VENTRICLES * , 1978, Annals of the New York Academy of Sciences.

[44]  A. Fabiato,et al.  Effects of pH on the myofilaments and the sarcoplasmic reticulum of skinned cells from cardiace and skeletal muscles. , 1978, The Journal of physiology.

[45]  M. Endo,et al.  E-C COUPLING STUDIES ON SKINNED CARDIAC FIBERS , 1978 .

[46]  M. Endo,et al.  Calcium release from the sarcoplasmic reticulum. , 1977, Physiological reviews.

[47]  G. Langer Events at the cardiac sarcolemma: localization and movement of contractile-dependent calcium. , 1976, Federation proceedings.

[48]  J. Demaille,et al.  The distribution of parvalbumins in muscle and in other tissues , 1975, FEBS letters.

[49]  A. Fabiato,et al.  Contractions induced by a calcium‐triggered release of calcium from the sarcoplasmic reticulum of single skinned cardiac cells. , 1975, The Journal of physiology.

[50]  A. Fabiato,et al.  Effects of magnesium on contractile activation of skinned cardiac cells. , 1975, The Journal of physiology.

[51]  G. Isenberg,et al.  Is potassium conductance of cardiac Purkinje fibres controlled by [Ca2+]i? , 1975, Nature.

[52]  M. Endo Conditions Required for Calcium-Induced Release of Calcium from the Sarcoplasmic Reticulum , 1975 .

[53]  G. Isnberg Is potassium conductance of cardiac Purkinje fibres controlled by (Ca2+)? , 1975, Nature.

[54]  P I Polimeni,et al.  Extracellular space and ionic distribution in rat ventricle. , 1974, The American journal of physiology.

[55]  J S Shiner,et al.  Calcium Requirements for Cardiac Myofibrillar Activation , 1974, Circulation research.

[56]  H. Grundfest,et al.  Regulation of myoplasmic calcium concentration in intact crayfish muscle fibers. , 1974, Journal of mechanochemistry & cell motility.

[57]  A. Fabiato,et al.  Excitation‐Contraction Coupling of Isolated Cardiac Fibers with Disrupted or Closed Sarcolemmas: CALCIUM‐DEPENDENT CYCLIC AND TONIC CONTRACTIONS , 1972, Circulation research.

[58]  E. Page,et al.  The surface area of sheep cardiac Purkinje fibres , 1972, The Journal of physiology.

[59]  H. Fozzard,et al.  Voltage Dependence and Time Dependence of Contraction in Sheep Cardiac Purkinje Fibers , 1971, Circulation research.

[60]  A. Weber Regulatory Mechanisms of the Calcium Transport System of Fragmented Rabbit Sarcoplasmic Reticulum , 1971, The Journal of General Physiology.

[61]  M. Kushmerick,et al.  Ionic Mobility in Muscle Cells , 1969, Science.

[62]  D. Noble,et al.  Reconstruction of the repolarization process in cardiac Purkinje fibres based on voltage clamp measurements of membrane current , 1969, The Journal of physiology.

[63]  Saul Winegrad,et al.  Intracellular Calcium Movements of Frog Skeletal Muscle during Recovery from Tetanus , 1968, The Journal of general physiology.

[64]  J. Platt Strong Inference: Certain systematic methods of scientific thinking may produce much more rapid progress than others. , 1964, Science.

[65]  K. Edman Zinc-induced relaxation of muscle fibers. , 1960, Acta physiologica Scandinavica.

[66]  W. Bartley,et al.  The study of steady-state concentrations of internal solutes of mitochondria by rapid centrifugal transfer to a fixation medium. , 1957, The Biochemical journal.

[67]  J. Kellett London , 1914, The Hospital.