Institute of Orthopaedic Research and Biomechanics, Trauma Research Centre Ulm, University of Ulm, Ulm, Germany.
SpineServ GmbH & Co. KG, Ulm, Germany.
J Anat. 2023 Jul;243(1):128-137. doi: 10.1111/joa.13852. Epub 2023 Mar 17.
On the basis of the kangaroo's pseudo-biped locomotion and its upright position, it could be assumed that the kangaroo might be an interesting model for spine research and that it may serve as a reasonable surrogate model for biomechanical in vitro tests. The purpose of this in vitro study was to provide biomechanical properties of the kangaroo spine and compare them with human spinal data from the literature. In addition, references to already published kangaroo anatomical spinal parameters will be discussed. Thirteen kangaroo spines from C4 to S4 were sectioned into single-motion segments. The specimens were tested by a spine tester under pure moments. The range of motion and neutral zone of each segment were determined in flexion and extension, right and left lateral bending and left and right axial rotation. Overall, we found greater flexibility in the kangaroo spine compared to the human spine. Similarities were only found in the cervical, lower thoracic and lumbar spinal regions. The range of motion of the kangaroo and human spines displayed comparable trends in the cervical (C4-C7), lower thoracic and lumbar regions independent of the motion plane. In the upper and middle thoracic regions, the flexibility of the kangaroo spine was considerably larger. These results suggested that the kangaroo specimens could be considered to be a surrogate, but only in particular cases, for biomechanical in vitro tests.
基于袋鼠的伪两足运动和直立姿势,可以假设袋鼠可能是脊柱研究的有趣模型,并且可以作为生物力学体外测试的合理替代模型。本体外研究的目的是提供袋鼠脊柱的生物力学特性,并将其与文献中的人类脊柱数据进行比较。此外,还将讨论已经发表的袋鼠解剖学脊柱参数。将 13 个来自 C4 到 S4 的袋鼠脊柱切成单个运动节段。将标本在脊柱试验机上进行纯力矩测试。在屈伸、左右侧屈和左右轴向旋转时,确定每个节段的活动范围和中立区。总体而言,与人类脊柱相比,袋鼠脊柱具有更大的柔韧性。仅在颈椎、下胸椎和腰椎区域发现了相似之处。无论运动平面如何,袋鼠和人类脊柱的活动范围在颈椎(C4-C7)、下胸椎和腰椎区域都显示出相似的趋势。在上胸和中胸区域,袋鼠脊柱的柔韧性要大得多。这些结果表明,袋鼠标本可以被认为是生物力学体外测试的替代物,但仅在特定情况下如此。