Smooth changes in the EMG patterns during gait transitions under body weight unloading
- Тип контента: Научная статья
- Номер документа: 4062
- Название документа: Smooth changes in the EMG patterns during gait transitions under body weight unloading
- Номер (DOI, IBSN, Патент): 10.1152/jn.00160.2011
- Изобретатель/автор: Yuri P. Ivanenko, Silvio Gravano, Germana Cappellini, Francesco Lacquaniti, Francesca Sylos Labini
- Правопреемник/учебное заведение: University of Rome
- Дата публикации документа: 2011-06-01
- Страна опубликовавшая документ: Италия
- Язык документа: Английский
- Наименование изделия: Не заполнено
- Источник: http://jn.physiology.org/content/early/2011/06/17/jn.00160.2
- Вложения: Нет
- Аналитик: Helix
During gradual speed changes, humans exhibit a sudden discontinuous switch from walking to running at a specific speed, and it has been suggested that different gaits may be associated with different functioning of neuronal networks. Here we recorded the EMG activity of leg muscles at slow increments and decrements in treadmill belt speed and at different levels of body weight unloading. In contrast to normal walking at 1 g, at lower levels of simulated gravity (<0.4 g) the transition between walking and running was generally gradual, without systematic abrupt changes in either intensity or timing of EMG patterns. This phenomenon depended to a limited extent on the gravity simulation technique, though the exact level of the appearance of smooth transitions (0.4-0.6 g) tended to be lower for the vertical than for the tilted body weight support system. Furthermore, simulations performed with a half-center oscillator neuromechanical model showed that the abruptness of motor patterns at gait transitions at 1 g could be predicted from the distinct parameters anchored already in the normal range of walking and running speeds, while at low gravity levels the parameters of the model were similar for the two human gaits. A lack of discontinuous changes in the pattern of speed-dependent locomotor characteristics in a hypogravity environment is consistent with the idea of a continuous shift in the state of a given set of central pattern generators rather than the activation of a separate set of central pattern generators for each distinct gait.
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