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共同收缩期间的非线性牵张反射相互作用

Nonlinear stretch reflex interaction during cocontraction.

作者信息

Carter R R, Crago P E, Gorman P H

机构信息

Department of Biomedical Engineering, Case Western Reserve University, Cleveland, Ohio.

出版信息

J Neurophysiol. 1993 Mar;69(3):943-52. doi: 10.1152/jn.1993.69.3.943.

DOI:10.1152/jn.1993.69.3.943
PMID:8385202
Abstract
  1. We investigated the role of stretch reflexes in controlling two antagonist muscles acting at the interphalangeal joint in the normal human thumb. Reflex action was compared when either muscle contracted alone and during cocontraction. 2. The total torque of the flexor pollicis longus (FPL) and extensor pollicis longus (EPL) muscles was measured in response to an externally imposed extension of the interphalangeal joint. The initial joint angle and the amplitude of the extension were constant in all experiments, and the preload of the active muscle(s) was varied. Joint torque was measured at the peak of short-latency stretch reflex action during contraction of the FPL alone, contraction of the EPL alone, and during cocontraction. Incremental joint stiffness was calculated as the change in torque divided by the change in angle. 3. Incremental stiffness increased in proportion to the preload torque during single muscle contractions of either the FPL (lengthening disturbances) or the EPL (shortening disturbances). Thus stiffness was not regulated to a constant value in the face of varying loads for either single muscle stretch or release. 4. Incremental stiffness varied across the range of cocontraction levels while the net torque was maintained at approximately 0. Thus net torque alone did not determine the stiffness during cocontraction. 5. The contributions of each muscle to the net intrinsic torque during cocontraction were estimated by scaling the individual muscles' responses so that their sum gave the best fit (in a least-squares sense) to the cocontraction torque before reflex action. The solution is unique because the individual torques have opposite signs, but the stiffnesses add. This gave estimates of the initial torques of both muscles during cocontraction. 6. The contributions of the two muscles during cocontraction were used to estimate the active joint stiffness that would be expected if the two muscles were activated independently to the same levels as in the cocontraction trials. The stiffness measured at the peak of stretch reflex action during cocontraction trials differed from the sum of the stiffnesses of the two muscles when they were contracting alone. At low cocontraction levels, the measured stiffness was less than expected on the basis of summation of the action of the two muscles, whereas at high cocontraction levels, the measured stiffness was greater than expected. This demonstrates that there is nonlinear stretch reflex interaction. That is, reflex action for a pair of antagonists is not simply the linear sum of the reflex actions of the two muscles acting independently.(ABSTRACT TRUNCATED AT 400 WORDS)
摘要
  1. 我们研究了牵张反射在控制正常人拇指指间关节处两块拮抗肌中的作用。比较了单块肌肉收缩时以及协同收缩时的反射动作。2. 测量了拇长屈肌(FPL)和拇长伸肌(EPL)在指间关节受到外部伸展作用时的总扭矩。在所有实验中,初始关节角度和伸展幅度保持恒定,活动肌肉的预负荷有所变化。在FPL单独收缩、EPL单独收缩以及协同收缩期间,在短潜伏期牵张反射动作的峰值处测量关节扭矩。增量关节刚度计算为扭矩变化除以角度变化。3. 在FPL(伸长干扰)或EPL(缩短干扰)单块肌肉收缩期间,增量刚度与预负荷扭矩成比例增加。因此,对于单块肌肉的拉伸或放松,面对变化的负荷时,刚度并未调节到恒定值。4. 在协同收缩水平范围内,增量刚度有所变化,而净扭矩保持在约0。因此,仅净扭矩并不能决定协同收缩期间的刚度。5. 通过对各块肌肉的反应进行缩放来估计协同收缩期间每块肌肉对净内在扭矩的贡献,以使它们的总和在反射动作之前对协同收缩扭矩给出最佳拟合(在最小二乘法意义上)。该解决方案是唯一的,因为各单个扭矩具有相反的符号,但刚度相加。这给出了协同收缩期间两块肌肉的初始扭矩估计值。6. 协同收缩期间两块肌肉的贡献用于估计如果两块肌肉独立激活到与协同收缩试验中相同水平时预期的主动关节刚度。协同收缩试验期间在牵张反射动作峰值处测量的刚度与两块肌肉单独收缩时的刚度总和不同。在低协同收缩水平时,测量的刚度小于基于两块肌肉动作总和预期的值,而在高协同收缩水平时,测量的刚度大于预期值。这表明存在非线性牵张反射相互作用。也就是说,一对拮抗肌的反射动作并非简单地是两块肌肉独立作用时反射动作的线性总和。(摘要截短至400字)

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