Department of Pathology and Laboratory Medicine, University of British Columbia, Vancouver, British Columbia, Canada.
J Appl Physiol (1985). 2010 Nov;109(5):1476-82. doi: 10.1152/japplphysiol.00676.2010. Epub 2010 Sep 9.
Airway smooth muscle (ASM) is able to generate maximal force under static conditions, and this isometric force can be maintained over a large length range due to length adaptation. The increased force at short muscle length could lead to excessive narrowing of the airways. Prolonged exposure of ASM to submaximal stimuli also increases the muscle's ability to generate force in a process called force adaptation. To date, the effects of length and force adaptation have only been demonstrated under static conditions. In the mechanically dynamic environment of the lung, ASM is constantly subjected to periodic stretches by the parenchyma due to tidal breathing and deep inspiration. It is not known whether force recovery due to muscle adaptation to a static environment could occur in a dynamic environment. In this study the effect of length oscillation mimicking tidal breathing and deep inspiration was examined. Force recovery after a length change was attenuated in the presence of length oscillation, except at very short lengths. Force adaptation was abolished by length oscillation. We conclude that in a healthy lung (with intact airway-parenchymal tethering) where airways are not allowed to narrow excessively, large stretches (associated with deep inspiration) may prevent the ability of the muscle to generate maximal force that would occur under static conditions irrespective of changes in mean length; mechanical perturbation on ASM due to tidal breathing and deep inspiration, therefore, is the first line of defense against excessive bronchoconstriction that may result from static length and force adaptation.
气道平滑肌(ASM)在静态条件下能够产生最大力,并且由于长度适应,这种等长力可以在较大的长度范围内维持。短肌肉长度下的增加力可能导致气道过度变窄。ASM 长时间暴露于亚最大刺激下也会增加肌肉产生力的能力,这一过程称为力适应。迄今为止,仅在静态条件下证明了长度和力适应的效果。在肺的机械动态环境中,由于潮式呼吸和深呼吸,ASM 不断受到实质的周期性拉伸。由于肌肉适应静态环境而导致的力恢复是否可能发生在动态环境中尚不清楚。在这项研究中,模拟潮式呼吸和深呼吸的长度振荡的效果进行了检查。在存在长度振荡的情况下,长度变化后的力恢复减弱,除了非常短的长度。长度振荡会消除力适应。我们得出结论,在健康的肺(具有完整的气道-实质连接)中,气道不会过度变窄,大的拉伸(与深呼吸相关)可能会防止肌肉产生在静态条件下产生的最大力,而不管平均长度的变化如何;由于潮式呼吸和深呼吸对 ASM 的机械干扰,因此,是防止可能由于静态长度和力适应而导致的过度支气管收缩的第一道防线。