Clinical Department of Orthopaedics, Tianjin Medical University, Tianjin, China.
Department of Spine Surgery, Tianjin Hospital, Jiefangnanlu 406, Hexi District, Tianjin, China.
BMC Musculoskelet Disord. 2022 Mar 8;23(1):225. doi: 10.1186/s12891-022-05160-9.
Quantitative data on in vivo vertebral disc deformations are critical for enhancing our understanding of spinal pathology and improving the design of surgical materials. This study investigated in vivo lumbar intervertebral disc deformations during axial rotations under different load-bearing conditions.
Twelve healthy subjects (7 males and 5 females) between the ages of 25 and 39 were recruited. Using a combination of a dual fluoroscopic imaging system (DFIS) and CT, the images of L3-5 segments scanned by CT were transformed into three-dimensional models, which matched the instantaneous images of the lumbar spine taken by a double fluorescent X-ray system during axial rotations to reproduce motions. Then, the kinematic data of the compression and shear deformations of the lumbar disc and the coupled bending of the vertebral body were obtained.
Relative to the supine position, the average compression deformation caused by rotation is between + 10% and - 40%, and the shear deformation is between 17 and 50%. Under physiological weightbearing loads, different levels of lumbar discs exhibit similar deformation patterns, and the deformation patterns of left and right rotations are approximately symmetrical. The deformation patterns change significantly under a 10 kg load, with the exception of the L3-4 disc during the right rotation.
The deformation of the lumbar disc was direction-specific and level-specific during axial rotations and was affected by extra weight. These data can provide new insights into the biomechanics of the lumbar spine and optimize the parameters of artificial lumbar spine devices.
活体椎间盘变形的定量数据对于加深我们对脊柱病理学的理解和改进手术材料的设计至关重要。本研究旨在研究不同承重条件下轴向旋转过程中腰椎间盘的活体椎间盘变形。
共招募了 12 名年龄在 25 岁至 39 岁之间的健康受试者(7 名男性和 5 名女性)。使用双荧光透视成像系统(DFIS)和 CT 相结合的方法,将 CT 扫描的 L3-5 节段图像转换为三维模型,该模型与双荧光 X 射线系统在轴向旋转过程中获取的腰椎瞬时图像匹配,以重现运动。然后,获得了腰椎间盘压缩和剪切变形以及椎体耦合弯曲的运动学数据。
与仰卧位相比,旋转引起的平均压缩变形在+10%至-40%之间,剪切变形在 17 至 50%之间。在生理负重条件下,不同节段的腰椎间盘表现出相似的变形模式,左右旋转的变形模式大致对称。在 10kg 负载下,变形模式发生了显著变化,除了右侧旋转时的 L3-4 椎间盘。
轴向旋转过程中腰椎间盘的变形具有方向性和节段特异性,并受额外重量的影响。这些数据可以为腰椎生物力学提供新的见解,并优化人工腰椎装置的参数。