Mantovani M, Cavagna G A, Heglund N C
Istituto di Fisiologia Umana, Università di Milano, Milan, Italy.
J Muscle Res Cell Motil. 1999 Jan;20(1):33-43. doi: 10.1023/a:1005460032723.
Muscle stiffness was measured from the undamped elastic recoil taking place when the force attained during ramp stretches of muscle fibres, tetanized on the plateau of the tension-length relation, was suddenly reduced to the isometric value developed before the stretch, T0. Sarcomere elastic recoil was measured on a tendon-free segment of the fibre by means of a striation follower. After small ramp stretches, stiffness increases to a value 1.33x greater than that measured during release from a state of isometric contraction to 0.9 T0. While the relative increase in stiffness is equal to that reported for fibres of Rana esculenta (Piazzesi et al., 1992), the absolute value of stiffness measured during release from isometric contraction is just over half. As stretch amplitude is increased, on the plateau of the force-length relation, stiffness decreases toward the isometric value. This finding shows that the decrease in stiffness with large stretches cannot be due to a decrease in myofilament overlap (as may be the case when stretching occurs on the descending limb of the tension-length relation, Sugi & Tsuchiya, 1988), but must be due to an effect of the ramp stretch per se. For a given stretch amplitude, the after-stretch transient shortening against T0 taking place after the elastic recoil (which is expression of the work enhancement induced by stretching, Cavagna et al., 1986, 1994) is similar in fibres with very different stiffness of their undamped elastic elements. This suggests that this work enhancement is not due to the recoil of damped elastic structures recruited during stretching because of sarcomere length inhomogenity, a condition which would result in a decrease in stiffness (Morgan et al., 1996).
肌肉僵硬度是通过测量无阻尼弹性回缩来确定的,当在肌肉纤维的斜坡拉伸过程中达到的力(在张力-长度关系的平台期进行强直刺激)突然降至拉伸前产生的等长力值T0时,就会发生这种无阻尼弹性回缩。通过条纹跟踪器在纤维的无腱段上测量肌节弹性回缩。在小斜坡拉伸后,僵硬度增加到比从等长收缩状态释放到0.9 T0期间测量的值大1.33倍。虽然僵硬度的相对增加与食用蛙纤维的报道值相等(Piazzesi等人,1992年),但从等长收缩释放期间测量的僵硬度绝对值仅略高于一半。随着拉伸幅度的增加,在力-长度关系的平台期,僵硬度朝着等长力值降低。这一发现表明,大拉伸时僵硬度的降低不能归因于肌丝重叠的减少(就像在张力-长度关系的下降支进行拉伸时可能出现的情况,Sugi和Tsuchiya,1988年),而必须归因于斜坡拉伸本身的作用。对于给定的拉伸幅度,弹性回缩后针对T0的拉伸后瞬时缩短(这是拉伸诱导的功增强的表现,Cavagna等人,1986年,1994年)在其无阻尼弹性元件僵硬度差异很大的纤维中是相似的。这表明这种功增强不是由于拉伸过程中因肌节长度不均匀而募集的阻尼弹性结构的回缩,这种情况会导致僵硬度降低(Morgan等人,1996年)。