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河龟(Pseudemys concinna)后肢肌肉功能与骨应变的相关性

Correlation of muscle function and bone strain in the hindlimb of the river cooter turtle (Pseudemys concinna).

作者信息

Aiello Brett R, Blob Richard W, Butcher Michael T

机构信息

Department of Biological Sciences, Youngstown State University, Youngstown, OH 44555, USA.

出版信息

J Morphol. 2013 Sep;274(9):1060-9. doi: 10.1002/jmor.20162. Epub 2013 Jun 3.

Abstract

During terrestrial locomotion, limb muscles must generate mechanical work and stabilize joints against the ground reaction force. These demands can require high force production that imposes substantial loads on limb bones. To better understand how muscle contractile function influences patterns of bone loading in terrestrial locomotion, and refine force platform equilibrium models used to estimate limb bone safety factors, we correlated in vivo recordings of femoral strain with muscle activation and strain in a major propulsive hindlimb muscle, flexor tibialis internus (FTI), of a species with a published model of hindlimb force production (river cooter turtles, Pseudemys concinna). Electromyography (EMG) recordings indicate FTI activity prior to footfall that continues through approximately 50% of the stance phase. Large EMG bursts occur just after footfall when the muscle has reached its maximum length and is beginning to actively shorten, concurrent with increasing compressive strain on the anterior femur. The FTI muscle shortens through 35% of stance, with mean fascicle shortening strains reaching 14.0 ± 5.4% resting length (L0 ). At the time of peak compressive strains on the femur, the muscle fascicles remain active, but fascicles typically lengthen until mid-stance as the knee extends. Influenced by the activity of the dorsal knee extensor femorotibialis, the FTI muscle continues to passively lengthen simultaneously with knee extension and a shift to tensile axial strain on the anterior femur at approximately 40% of stance. The near coincidence in timing of peak compressive bone strain and peak muscle shortening (5.4 ± 4.1% stance) indicates a close correlation between the action of the hip extensor/knee flexor, FTI, and femoral loading in the cooter hindlimb. In the context of equilibrium models of limb bone loading, these results may help explain differences in safety factor estimates observed between previous force platform and in vivo strain analyses in cooters.

摘要

在陆地运动过程中,肢体肌肉必须产生机械功,并抵抗地面反作用力稳定关节。这些需求可能需要产生高力量,从而给肢体骨骼带来巨大负荷。为了更好地理解肌肉收缩功能如何影响陆地运动中骨骼的负荷模式,并完善用于估计肢体骨骼安全系数的力平台平衡模型,我们将股骨应变的体内记录与一种具有后肢力产生已发表模型的物种(河龟,滑龟属)的主要推进后肢肌肉——胫内屈肌(FTI)的肌肉激活和应变进行了关联。肌电图(EMG)记录表明,FTI在着地前就开始活动,并持续到大约50%的站立阶段。大的EMG爆发刚好在着地后出现,此时肌肉达到其最大长度并开始主动缩短,同时股骨前部的压缩应变增加。FTI肌肉在站立阶段缩短35%,平均肌束缩短应变达到静息长度(L0)的14.0±5.4%。在股骨压缩应变峰值时,肌束仍处于活跃状态,但随着膝关节伸展,肌束通常会延长直到站立中期。受背侧膝关节伸肌股胫肌活动的影响,FTI肌肉在膝关节伸展的同时继续被动延长,并在大约40%的站立阶段,股骨前部转变为拉伸轴向应变。压缩性骨应变峰值和肌肉缩短峰值(站立阶段的5.4±4.1%)在时间上的近乎巧合表明,髋伸肌/膝屈肌FTI的作用与河龟后肢的股骨负荷之间存在密切关联。在肢体骨骼负荷平衡模型的背景下,这些结果可能有助于解释之前在河龟中力平台分析和体内应变分析之间观察到的安全系数估计差异。

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