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首页> 外文期刊>Spine >Biomechanical effects of C2-C7 intersegmental stability due to laminectomy with unilateral and bilateral facetectomy.
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Biomechanical effects of C2-C7 intersegmental stability due to laminectomy with unilateral and bilateral facetectomy.

机译:椎板切除术与单侧和双侧小平面切除术导致的C2-C7段间稳定性的生物力学效应。

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STUDY DESIGN: The biomechanical responses resulting from laminectomy with graded unilateral and bilateral facetectomy were quantified using a three-dimensional nonlinear finite element model of the C2-C7 motion segments. OBJECTIVE: To study the influence of laminectomy with graded unilateral and bilateral facetectomy on the cervical spinal biomechanics. SUMMARY OF BACKGROUND DATA: Cervical spinal stenosis is a condition that is caused by the narrowing of the spinal canal. Laminectomy and facetectomy are commonly used surgical procedures for decompressing cervical spinal stenosis. Resection of the posterior structures causes instability and affects the internal stresses of the cervical spinal components. However, the influence of these surgical procedures on the biomechanical responses of the cervical spine has not been studied. METHODS: A nonlinear finite element model of the intact C2-C7 was constructed and validated. Ten surgically altered models were created from the intact model and were tested under physiologic loading. Because of the inclusion of five motion segments, it was possible to determine the intersegmental responses and internal cortical shell and disc stresses in the adjacent altered and unaltered spinal components. RESULTS: Under combined flexion and extension, intersegmental motions at C4-C5 and C5-C6 increased significantly after C5 laminectomy. Subsequent facetectomy performed at C5 and C6 on the laminectomized model only affected the responses at the C5-C6 segment. Overall, slight intersegmental responses of up to 5% were observed at the adjacent levels of C3-C4 and C6-C7. Laminectomy did not cause any significant increase in the intersegmental motions under lateral bending and axial rotation. Extending the surgical procedures to unilateral and bilateral facetectomy only increased the intersegmental motions slightly. Similar increases in the intervertebral disc and the cortical shell stresses were observed.These findings may partially explain the clinical observations of enhanced osteophytes formation. CONCLUSIONS: This study provides a better understanding of the surgically altered cervical spinal biomechanics and may help formulate treatment strategies such as spinal implants.
机译:研究设计:使用C2-C7运动节段的三维非线性有限元模型对椎板切除联合单侧和双侧小平面切除术所产生的生物力学响应进行量化。目的:探讨椎板切除联合分级单侧和双侧小平面切除术对颈椎脊柱生物力学的影响。背景数据概述:颈椎管狭窄是由椎管狭窄引起的疾病。椎板切除术和小平面切除术是减压颈椎管狭窄的常用外科手术方法。切除后部结构会导致不稳定并影响颈椎脊髓组件的内部应力。但是,尚未研究这些手术程序对颈椎生物力学反应的影响。方法:建立并验证了完整的C2-C7非线性有限元模型。从完整模型创建了十个手术改变的模型,并在生理负荷下进行了测试。由于包含五个运动节段,因此可以确定相邻改变和未改变的脊柱组件中的节间响应以及内部皮质壳和椎间盘应力。结果:在联合弯曲和伸展下,C5椎板切除术后C4-C5和C5-C6的节间运动明显增加。随后在椎骨切除模型上在C5和C6进行的小平面切除术仅影响C5-C6段的反应。总体而言,在相邻的C3-C4和C6-C7水平上观察到了高达5%的小段间响应。椎板切除术未在侧向弯曲和轴向旋转下引起节段间运动的明显增加。将手术程序扩展到单侧和双侧小平面切除术只会稍微增加段间运动。椎间盘和皮质外壳应力也有类似的增加,这些发现可能部分解释了骨赘形成增强的临床观察。结论:本研究可更好地了解经手术改变的颈椎生物力学,并有助于制定治疗策略,例如脊柱植入物。

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