Woo S L, Peterson R H, Ohland K J, Sites T J, Danto M I
Orthopaedic Bioengineering Laboratory, San Diego Veterans Administration Medical Center, California.
J Orthop Res. 1990 Sep;8(5):712-21. doi: 10.1002/jor.1100080513.
The effects of strain rate on the structural properties of the femur-medial collateral ligament-tibia complex (FMTC) and on the mechanical (material) properties of the medial collateral ligament (MCL) of skeletally immature and skeletally mature rabbits were studied. The FMTCs were tested in tension to failure, at five extension rates (0.008 mm/s-113 mm/s). For the FMTCs from the skeletally immature animals, values of load, elongation, and energy absorbed at failure increased substantially with extension rates. Such increases also existed for skeletally mature animals, but they were much less in magnitude. All samples from the skeletally immature animals failed by tibial avulsion, whereas samples from the skeletally mature animals failed within the ligament substance. The mechanical properties of the ligament substance were minimally strain-rate sensitive for both groups. Histological sections of the ligament substance and insertion sites from the failed samples were examined, and these observations were correlated with the biomechanical findings. For the rabbit model used in this study, we conclude that skeletal maturity has more influence on the biomechanical properties of the MCL than does strain rate.
研究了应变率对骨骼未成熟和骨骼成熟兔的股骨-内侧副韧带-胫骨复合体(FMTC)结构特性以及内侧副韧带(MCL)力学(材料)特性的影响。以五种伸展速率(0.008毫米/秒至113毫米/秒)对FMTC进行拉伸直至破坏测试。对于骨骼未成熟动物的FMTC,破坏时的载荷、伸长和吸收能量值随伸展速率大幅增加。骨骼成熟动物的FMTC也存在这种增加,但幅度小得多。骨骼未成熟动物的所有样本均因胫骨撕脱而破坏,而骨骼成熟动物的样本在韧带实质内破坏。两组韧带实质的力学特性对应变率均不敏感。检查了破坏样本的韧带实质和附着部位的组织学切片,并将这些观察结果与生物力学发现相关联。对于本研究中使用的兔模型,我们得出结论,骨骼成熟度对MCL生物力学特性的影响大于应变率。