Some observations on variations in filament overlap in tetanized muscle fibres and fibres stretched during a tetanus, detected in the electron microscope after rapid fixation
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[1] Jan Fridén,et al. Changes in human skeletal muscle induced by long-term eccentric exercise , 2004, Cell and Tissue Research.
[2] A. Huxley,et al. The maximum length for contraction in vertebrate striated muscle , 1961, The Journal of physiology.
[3] V Lombardi,et al. The mechanisms of force enhancement during constant velocity lengthening in tetanized single fibres of frog muscle. , 1988, Advances in experimental medicine and biology.
[4] E. Lazarides,et al. Assembly and Establishment of Membrane-Cytoskeleton Domains During Differentiation , 1984 .
[5] A. Huxley. THE MECHANICAL PROPERTIES OF CROSS-BRIDGES AND THEIR RELATION TO MUSCLE CONTRACTION , 1981 .
[6] M. Noble,et al. Residual force enhancement after stretch of contracting frog single muscle fibers , 1982, The Journal of general physiology.
[7] L. M. Brown,et al. Mercuric chloride in alcohol and chloroform used as a rapidly acting fixative for contracting muscle fibres , 1982, Journal of microscopy.
[8] R. J. Podolsky,et al. The positional stability of thick filaments in activated skeletal muscle depends on sarcomere length: evidence for the role of titin filaments , 1987, The Journal of cell biology.
[9] F. Julian,et al. Sarcomere length non-uniformity in relation to tetanic responses of stretched skeletal muscle fibres , 1978, Proceedings of the Royal Society of London. Series B. Biological Sciences.
[10] B. Eisenberg,et al. Muscle fiber termination at the tendon in the frog's sartorius: a stereological study. , 1984, The American journal of anatomy.
[11] J. Frid. Changes in human skeletal muscle induced by long-term eccentric exercise , 2022 .
[12] S. Singer,et al. Immunoelectron microscopic studies of desmin (skeletin) localization and intermediate filament organization in chicken skeletal muscle , 1983, The Journal of cell biology.
[13] M. Noble,et al. Enhancement of mechanical performance by stretch during tetanic contractions of vertebrate skeletal muscle fibres. , 1978, The Journal of physiology.
[14] 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.
[15] E. Kempner,et al. A physiological role for titin and nebulin in skeletal muscle , 1986, Nature.
[16] R. Bottinelli,et al. The descending limb of the sarcomere length-force relation in single muscle fibres of the frog , 1985, Journal of Muscle Research & Cell Motility.
[17] M. Noble,et al. Stretch of contracting muscle fibres: evidence for regularly spaced active sites along the filaments and enhanced mechanical performance. , 1984, Advances in experimental medicine and biology.
[18] L. Hill. A‐band length, striation spacing and tension change on stretch of active muscle. , 1977, The Journal of physiology.
[19] A. Huxley,et al. Structural studies of the waves in striated muscle fibres shortened passively below their slack length , 1984, Journal of Muscle Research and Cell Motility.
[20] H. Higuchi,et al. Connectin filaments link thick filaments and Z lines in frog skeletal muscle as revealed by immunoelectron microscopy , 1985, The Journal of cell biology.
[21] A. Hill. The mechanics of active muscle , 1953, Proceedings of the Royal Society of London. Series B - Biological Sciences.
[22] H. Huxley,et al. FILAMENT LENGTHS IN STRIATED MUSCLE , 1963, The Journal of cell biology.
[23] R. Bergman. Ultrastructural configuration of sarcomeres in passive and contracted frog sartorius muscle. , 1983, The American journal of anatomy.
[24] G. Cecchi,et al. Plateau and descending limb of the sarcomere length‐tension relation in short length‐clamped segments of frog muscle fibres. , 1988, The Journal of physiology.
[25] M. Yano,et al. Actomyosin structure in contracting muscle detected by rapid freezing , 1985, Nature.
[26] K. R. Mills,et al. Ultrastructural changes after concentric and eccentric contractions of human muscle , 1983, Journal of the Neurological Sciences.
[27] S. Street,et al. Lateral transmission of tension in frog myofibers: A myofibrillar network and transverse cytoskeletal connections are possible transmitters , 1983, Journal of cellular physiology.
[28] D L Morgan,et al. Intersarcomere dynamics during fixed‐end tetanic contractions of frog muscle fibres. , 1979, The Journal of physiology.
[29] K. Maruyama. Connectin, an elastic filamentous protein of striated muscle. , 1986, International review of cytology.
[30] H. Sugi,et al. Tension changes during and after stretch in frog muscle fibres , 1972, The Journal of physiology.
[31] L. M. Brown. Calibration of a commercial electron microscope with a grating replica to an accuracy of better than 1% , 1978 .
[32] A. Huxley,et al. The variation in isometric tension with sarcomere length in vertebrate muscle fibres , 1966, The Journal of physiology.
[33] R. J. Podolsky,et al. Thick filament movement and isometric tension in activated skeletal muscle. , 1988, Biophysical journal.
[34] K. Edman,et al. Redistribution of sarcomere length during isometric contraction of frog muscle fibres and its relation to tension creep. , 1984, The Journal of physiology.
[35] D L Morgan,et al. The effect on tension of non‐uniform distribution of length changes applied to frog muscle fibres. , 1979, The Journal of physiology.