Nakao Gakuto, Nara Ginji, Adachi Risa, Ishiyama Koki, Kozawa Kazuyoshi, Sekiguchi Keita, Nagaishi Kanna, Shiwaku Kousuke, Hayashi Norio, Mendiguchia Jurdan, Kawama Raki, Aoki Nobuhiro, Katayose Masaki, Taniguchi Keigo
Department of Physical Therapy, School of Health Sciences, Sapporo Medical University, Sapporo, Japan; Professional Post-secondary Course (Physical Therapist), Sapporo Medical Technology, Welfare and Dentistry Professional Training College of Nishino Gakuen School Foundation, Sapporo, Japan.
Graduate School of Health Sciences, Sapporo Medical University, Sapporo, Japan; Rehabilitation Center, NTT Medical Center Sapporo, Sapporo, Japan.
J Biomech. 2025 Sep 5;192:112947. doi: 10.1016/j.jbiomech.2025.112947.
Understanding the mechanical behavior of the biceps femoris long head (BFlh) may be insightful due to its high susceptibility to strain injuries, particularly during high-speed running in sports, such as soccer and track and field. While prior research has focused on intrinsic muscle properties, emerging evidence suggests that the biceps femoris short head (BFsh) may influence BFlh tension. Thus, we examined the effects of BFsh load application on the tensile strength and regional shear modulus of the BFlh. Seven legs from four cadaveric specimens (mean age: 83.2 ± 7.4 years) embalmed using the Thiel method were used. BFlh was secured to a mechanical testing device equipped with a load cell, whereas BFsh was connected to a custom-built mechanical apparatus. A tensile strain of 8 % was applied to the BFlh, whereas incremental loads (0, 150, 300, 450, 600, and 750 g) were gradually added to the BFsh. The tensile force and shear modulus in the three BFlh regions (proximal, central, and distal) were recorded using shear wave elastography. The results demonstrated that BFsh loading notably reduced BFlh tensile strength, with the lowest tension at 750 g (P < 0.01). The shear modulus decreased in the proximal and distal regions at loads > 450 g (P < 0.01), with no change in the central region. The distal region exhibited a greater decrease in shear modulus compared with the proximal and central regions (P < 0.01). These findings suggest that BFsh loading reduces BFlh tensile strength and alters its mechanical properties, particularly in the distal region.
由于股二头肌长头(BFlh)极易受到应变损伤,尤其是在足球和田径等运动的高速奔跑过程中,了解其力学行为可能具有重要意义。虽然先前的研究主要集中在肌肉的内在特性上,但新出现的证据表明,股二头肌短头(BFsh)可能会影响BFlh的张力。因此,我们研究了施加BFsh负荷对BFlh拉伸强度和局部剪切模量的影响。使用了来自4具尸体标本(平均年龄:83.2±7.4岁)的7条腿,这些标本采用蒂尔方法进行了防腐处理。将BFlh固定在配备有测力传感器的机械测试装置上,而BFsh则连接到定制的机械装置上。对BFlh施加8%的拉伸应变,同时向BFsh逐渐增加递增负荷(0、150、300、450、600和750克)。使用剪切波弹性成像记录BFlh三个区域(近端、中部和远端)的拉伸力和剪切模量。结果表明,BFsh负荷显著降低了BFlh的拉伸强度,在750克负荷时张力最低(P<0.01)。在负荷>450克时,近端和远端区域的剪切模量降低(P<0.01),中部区域无变化。与近端和中部区域相比,远端区域的剪切模量下降幅度更大(P<0.01)。这些发现表明,BFsh负荷降低了BFlh的拉伸强度并改变了其力学性能,尤其是在远端区域。