Comparative mechanical and elastic properties of the dorsal and ventral tendons in the peduncle of harbor porpoise (Phocoena phocoena).

IF 2.6 2区 生物学 Q2 BIOLOGY Journal of Experimental Biology Pub Date : 2025-04-15 Epub Date: 2025-04-24 DOI:10.1242/jeb.249621
Alexa R Cesari, Jesse K Placone, Nicole L Ramo, Michael V Rosario, Matthew Morris, Danielle S Adams, Frank E Fish
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Abstract

Cetaceans swim via vertical movements of the tail. The tendons located in the caudal peduncle are attached to the caudal vertebrae to generate propulsive oscillations. Arguments have centered on whether the upstrokes and downstrokes of the tail and propulsive flukes are symmetrical or asymmetrical in time. Previous research from kinematics of swimming animals, muscle architecture and histology has supported both conditions. However, the composition and structure of the tendons suggest a potential mechanism to evaluate this disparity. In this study, the tendons of the caudal peduncle of the harbor porpoise (Phocoena phocoena) - specifically, the extensor caudae medialis (ECM) and the extensor caudae lateralis (ECL) from the epaxial muscle, and the medial hypaxialis lumborum (MHL) from the hypaxial muscle - were mechanically tested. Ramp to failure was performed on isolated tendon fascicles. Stress relaxation tests to 3% strain were also performed on fascicles. Polarized light microscopy was used to visualize the fibril crimp as tensile forces were applied to fascicles. Uncrimping of isolated fascicles was visualized at mean strain values between 0.031% and 0.048%. The maximum elastic moduli of fascicles taken to failure were between 1039.5 and 1185.8 MPa. No differences were found in the mechanical performance of the fascicles of the epaxial and hypaxial tendons. The mechanical properties of peduncle fascicles suggest a symmetrical stroke cycle for swimming by the porpoise.

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港海豚(Phocoena Phocoena)足部背侧和腹侧肌腱的力学和弹性特性比较。
鲸目动物通过尾巴的垂直运动游泳。位于尾足的肌腱与尾椎相连,产生推进振荡。关于尾翼和推进尾翼的上、下冲程在时间上是对称的还是不对称的争论。先前对游泳动物运动学、肌肉结构和组织学的研究都支持这两种情况。然而,肌腱的组成和结构提示了一种评估这种差异的潜在机制。本研究对港海豚(Phocoena Phocoena)的尾足肌腱,特别是来自外轴肌的内侧尾伸肌(ECM)和外侧尾伸肌(ECL),以及来自下轴肌的腰下轴内侧肌(MHL)进行了力学测试。在孤立的肌腱束上进行斜坡至失败。还对神经束进行了3%应变应力松弛试验。偏振光显微镜用于可视化纤维卷曲的张力施加到束。在平均应变值为0.031%至0.048%之间时,观察到离体肌束未卷曲。筋束破坏时的最大弹性模量在1039.5 ~ 1185.8 MPa之间。外轴肌腱束和下轴肌腱束的力学性能没有差异。脚束的力学特性表明海豚游泳时具有对称的划水周期。
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来源期刊
CiteScore
5.50
自引率
10.70%
发文量
494
审稿时长
1 months
期刊介绍: Journal of Experimental Biology is the leading primary research journal in comparative physiology and publishes papers on the form and function of living organisms at all levels of biological organisation, from the molecular and subcellular to the integrated whole animal.
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