4.4 Article

Two-stage muscle activity responses in decisions about leg movement adjustments during trip recovery

期刊

JOURNAL OF NEUROPHYSIOLOGY
卷 115, 期 1, 页码 143-156

出版社

AMER PHYSIOLOGICAL SOC
DOI: 10.1152/jn.00263.2015

关键词

stumbling; balance perturbations; obstacle avoidance; muscle activity; online corrections

资金

  1. European Commission through MOVE-AGE, an Erasmus Mundus Joint Doctorate program
  2. Dutch Organization for Scientific Research (NWO) [91714344]
  3. F.W.O. Grant [G.0901.11]
  4. Interuniversity Attraction Poles Program
  5. Belgian Science Policy Office [P7/11]

向作者/读者索取更多资源

Studies on neural decision making mostly investigated fast corrective adjustments of arm movements. However, fast leg movement corrections deserve attention as well, since they are often required to avoid falling after balance perturbations. The present study aimed at elucidating the mechanisms behind fast corrections of tripping responses by analyzing the concomitant leg muscle activity changes. This was investigated in seven young adults who were tripped in between normal walking trials and took a recovery step by elevating the tripped leg over the obstacle. In some trials, a forbidden landing zone (FZ) was presented behind the obstacle, at the subjects' preferred foot landing position, forcing a step correction. Muscle activity of the tripped leg gastrocnemius medialis (iGM), tibialis anterior (iTA), rectus femoris (iRF), and biceps femoris (iBF) muscles was compared between normal trips presented before any FZ appearance, trips with a FZ, and normal trips presented in between trips with a FZ (catch trials). When faced with a real or expected (catch trials) FZ, subjects shortened their recovery steps. The underlying changes in muscle activity consisted of two stages. The first stage involved reduced iGM activity, occurring at a latency shorter than voluntary reaction, followed by reduced iTA and increased iBF and iGM activities occurring at longer latencies. The fast response was not related to step shortening, but longer latency responses clearly were functional. We suggest that the initial response possibly acts as a pause, allowing the nervous system to integrate the necessary information and prepare the subsequent, functional movement adjustment.

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