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健康年轻成年人腰骶部浅层软组织层的形态测量学与力学性能之间的关系。

Relationship between morphometric and mechanical properties of superficial lumbosacral soft tissue layers in healthy young adults.

作者信息

Grześkowiak Marcin, Kocur Piotr, Łochyński Dawid

机构信息

Department of Cardiological and Rheumatological Rehabilitation, Poznan University of Physical Education, Poznan, Poland.

Department of Musculoskeletal Physiotherapy, Poznan University of Physical Education, Poznan, Poland.

出版信息

Front Physiol. 2023 May 16;14:1175035. doi: 10.3389/fphys.2023.1175035. eCollection 2023.

Abstract

It is commonly considered that myotonometry is a non-invasive method capable of quantifying linear elastic and viscoelastic properties of the myofascial tissue through the application of a weak mechanical impulse to the surface of the skin. However, before the impulse can reach the myofascial tissue, it must cross more superficial tissues such as the skin and subcutaneous tissue (ST). All these superficial tissues have different distributions and organizations of structural components. Therefore, the study aimed to examine the potential relationships between the mechanical and morphometric properties of various superficial soft tissues surrounding the lumbar multifidus muscle (LM). Myotonometric measurements of dynamic stiffness, logarithmic decrement, and creep, and ultrasonographic measurements of thickness and echogenicity of cutaneous, subcutaneous, perimuscular tissue, and LM were obtained from 50 healthy individuals in the resting prone position and during contralateral arm lift. The most important findings were that in both the relaxed and contracted LM state, the dynamic stiffness strongly negatively ( = -0.69; < 0.001 in relaxation, = -0.83; < 0.001 in contraction) and creep strongly positively ( = 0.79; < 0.001 in relaxation, = 0.85; < 0.001 in contraction) correlated with the thicknesses of the ST. Similar but weaker correlations were noticed between both these measures and the perimuscular tissue thickness. Elasticity was uncorrelated to the thicknesses of the tissues. With LM contraction (change from the relaxed to contracted state), the relative increase in dynamic stiffness was correlated with the relative decrease in dermis ( = -0.51; < 0.001) and ST ( = -0.47; = 0.001) thickness, and with the relative increase in LM ( = 0.36; = 0.010) thickness. Moreover, the relative decrease (thinning) in the ST thickness was correlated with the relative increase in logarithmic decrement (i.e., decrease in soft tissue elasticity, = -0.37, = 0.011). The mechanical properties of the soft tissues were not related to their echogenicity. In conclusion, the thicker the subcutaneous and perimuscular layers, the lesser the stiffness and the greater the time-dependent deformation to the external force of the tissues surrounding the LM during its relaxation and isometric contraction. Moreover, the greater the thinning of the ST and the thickening of the LM during its contraction, the higher the increase in lumbosacral tissue stiffness and the decrease in elasticity. Therefore, one should consider the thickness of the ST before planning or analyzing the outcomes of myotonometric or other external biomechanical measurements to avoid drawing the wrong conclusions about the mechanical properties of the myofascial tissue.

摘要

人们普遍认为,肌动测量法是一种非侵入性方法,能够通过向皮肤表面施加微弱的机械脉冲来量化肌筋膜组织的线性弹性和粘弹性特性。然而,在脉冲到达肌筋膜组织之前,它必须穿过更浅表的组织,如皮肤和皮下组织(ST)。所有这些浅表组织的结构成分分布和组织方式各不相同。因此,本研究旨在探讨腰多裂肌(LM)周围各种浅表软组织的力学和形态学特性之间的潜在关系。从50名健康个体在俯卧休息位和对侧手臂抬起时获取了动态刚度、对数减量和蠕变的肌动测量值,以及皮肤、皮下、肌周组织和LM的厚度及回声性的超声测量值。最重要的发现是,在LM放松和收缩状态下,动态刚度与ST厚度均呈强烈负相关(放松时r = -0.69,P < 0.001;收缩时r = -0.83,P < 0.001),蠕变与ST厚度均呈强烈正相关(放松时r = 0.79,P < 0.001;收缩时r = 0.85,P < 0.001)。在这两种测量与肌周组织厚度之间也发现了类似但较弱的相关性。弹性与组织厚度无关。随着LM收缩(从放松状态变为收缩状态),动态刚度的相对增加与真皮(r = -0.51,P < 0.001)和ST(r = -0.47,P = 0.001)厚度的相对减少以及LM厚度的相对增加(r = 0.36,P = 0.010)相关。此外,ST厚度的相对减少(变薄)与对数减量的相对增加(即软组织弹性降低,r = -0.37,P = 0.011)相关。软组织的力学特性与其回声性无关。总之,皮下和肌周层越厚,在LM放松和等长收缩期间,其周围组织的刚度越小,对外力的时间依赖性变形越大。此外,在收缩过程中ST变薄和LM增厚的幅度越大,腰骶部组织刚度的增加和弹性的降低就越高。因此,在计划或分析肌动测量或其他外部生物力学测量结果之前,应考虑ST的厚度,以避免对肌筋膜组织的力学特性得出错误结论。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fb18/10228649/1087fc054aaa/fphys-14-1175035-g001.jpg

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