By Vladimir Zatsiorsky
Textual content for coaches, physicians, athletes, and scholars occupied with the issues of recreation biomechanics. Halftone illustrations.
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Extra info for Biomechanics in Sport: Performance Enhancement and Injury Prevention
J. P. (1997) Greater cross education following strength training with muscle lengthening than shortening. Medicine and Science in Sports and Exercise 29, 107–112. D. M. (1991) Maximum bilateral contractions are modiﬁed by neurally mediated interlimb effects. Journal of Applied Physiology 70, 306–316. C. & Dietz, V. (1998) Task dependence of muscle synchronization in human hand muscles. Neuroreport 9, 2167–2179. F. J. (1990) The unique action of bi-articular muscles in leg extensions. M. -Y. Woo), pp.
1982) Neuromuscular adaptation in human thenar muscles following strength training and immobilization. Journal of Applied Physiology 53, 419 – 424. , Johansson, E. & Lundh, A. (1989) Maximal voluntary force of bilateral and unilateral leg extension. Acta Physiologica Scandinavica 136, 185 –192. , Sturm, H. P. (1998) Selective enhancement of motoneuron short-term synchronization in an attention-demanding motor task. Society for Neuroscience Abstracts 24, 424. -P. & Pagni, S. (1994) Human spinal lateralization assessed from motoneurone synchronization: dependence on handedness and motor unit type.
Force depression following muscle shortening refers to the observed phenomenon that the isometric force following muscle shortening is reduced compared with the corresponding purely isometric force (Fig. 8). Although this phenomenon has been well accepted for a long time (Abbott & Aubert 1952; Maréchal & Plaghki 1979) the mechanism causing force depression is not understood (Maréchal & Plaghki 1979; Herzog 1998). Also, force depression following muscle shortening has only recently been observed in human skeletal muscle (De Ruiter et al.