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Forward and backward axial synergies in man

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Summary

1. Upper trunk and head forward and backward movements were analyzed in human subjects standing on a force platform. EMG of several flexor and extensor muscles was recorded together with the kinematics of the movement (EL.I.TE. system). 2. It was found that upper trunk movements are accompanied by movements of hip and knees in the opposite direction, resulting in a slight displacement of the center of gravity projection on the ground. 3. In fast movements, all the body segments were displaced at the same time, which suggests a feedforward control, whereas in slow movements, onset of displacement of the body segments was found to take place sequentially in a cranio-caudal direction. 4. EMG analysis during fast movements revealed two different types of control, utilized in forward and backward movements. With forward bending movements the action of two sets of muscles could be recognized: the prime mover (R. Abd.), the activation of which was not correlated with that of the other muscles and preceded the onset of movement with a fairly constant lead, and a group of postural muscles, the activation (VM, TA) and inhibition (Sol) of which were closely correlated. By contrast, with backward movements, the prime mover (Er.S.) and the postural leg muscles (Hamstrings, Sol) were activated simultaneously. In both cases, a feedforward type of control is evident. 5. Performance of the fast forward movements was accompanied by an initial forward displacement of the knee. The function of this phenomenon is discussed in term of a destabilizing action favouring the forward bending of the body or a prestretching of the knee extensor muscles increasing the strength of their subsequent contraction.

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References

  • Babinski J (1899) De lasynergie cérébelleuse. Rev Neurol 7: 806–816

    Google Scholar 

  • Belenkiy VE, Gurfinkel VS, Paltsev EI (1967) On elements of control of voluntary movements. Biofizika 12: 135–141

    Google Scholar 

  • Bouisset S, Zattara M (1981) A sequence of postural movements precedes voluntary movements. Neurosci Lett 22: 263–270

    Google Scholar 

  • Cappozzo A, Figura F, Marchetti M, Pedotti A (1976) The interplay of muscular and external forces in human ambulation. J Biomechanics 9: 35–43

    Google Scholar 

  • Cavagna GA, Komarek L, Citterio G, Margaria R (1971) Power output of the previously stretches muscles. Med Sport 6: 159–167

    Google Scholar 

  • Clement G, Gurfinkel VS, Lestienne F, Lipshits MI, Popov KE (1984) Adaptation of postural control to weightlessness. Exp Brain Res 57: 61–73

    Google Scholar 

  • Cook T, Cozzens B (1976) Human solutions for locomotion. III. The initiation of gait. In: Herman et al. (eds) Neural control of locomotion. Plenum Press, New York, pp 65–76

    Google Scholar 

  • Cordo PI, Nashner LM (1982) Properties of postural adjustments associated with rapid arm movements. J Neurophysiol 47: 287–302

    Google Scholar 

  • Drillis R, Contini R (1966) Body segments parameters. Tech Rep 116.03, School Eng Sci, New York Univ, New York

    Google Scholar 

  • Ferrigno G, Pedotti A (1985) Elite: a digital dedicated hardware system for movement analysis via real time TV-signal processing. IEEE Trans Biomed Eng 32: 943–950

    Google Scholar 

  • Friedli NG, Hallett M, Simon SR (1984) Postural adjustment associated with rapid voluntary arm movements 1. Electromyographic data. J Neurol Neurosurg Psych 47: 611–622

    Google Scholar 

  • Gantchev GN, Draganova N, Dunev S (1985) Influence of the stabilogram and statokinesigram visual feedback upon the body oscillations. In: Igarashi Black (eds) Vestibular and visual control on posture and locomotor equilibrium. Karger, Basel, pp 135–138

    Google Scholar 

  • Gurfinkel VS, Kots JM, Paltsev FI, Feldman AG (1971) The compensation of respiratory disturbances of erect posture of man as an example of the organization of interarticular interaction. In: Models of the structural-functional organization of certain biological systems. MIT Press, Cambridge Mass, pp 382–395

    Google Scholar 

  • Massion J (1984) Postural changes accompanying voluntary movements. Normal and pathological aspects. Human Neurobiol 2: 261–267

    Google Scholar 

  • Nashner LM (1977) Fixed patterns of rapid postural responses among legs muscles during stance. Exp Brain Res 30: 13–24

    Google Scholar 

  • Oppenheim AV, Schafer RW (1975) Digital signal processing. Prentice-Hall Englewood, Cliffs NJ

    Google Scholar 

  • Pedotti A (1977) Simple equipment used in clinical practice for evaluation of locomotion. IEEE Trans Biomed Eng 24: 456–461

    Google Scholar 

  • Siegel S (1960) Non parametric statistics for the behavioral sciences. McGraw-Hill, New York, 312

    Google Scholar 

  • Thorstensson A, Oddsson L, Carlson H (1985) Motor control of voluntary trunk movements in standing. Acta Physiol Scand 125: 309–321

    Google Scholar 

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Crenna, P., Frigo, C., Massion, J. et al. Forward and backward axial synergies in man. Exp Brain Res 65, 538–548 (1987). https://doi.org/10.1007/BF00235977

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