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Disc replacement adjacent to cervical fusion: a biomechanical comparison of hybrid construct versus two-level fusion.

机译:椎间盘置换邻近颈椎融合术:混合结构与两层融合的生物力学比较。

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STUDY DESIGN: A cadaveric biomechanical study. OBJECTIVE: To investigate the biomechanical behavior of the cervical spine after cervical total disc replacement (TDR) adjacent to a fusion as compared to a two-level fusion. SUMMARY OF BACKGROUND DATA: There are concerns regarding the biomechanical effects of cervical fusion on the mobile motion segments. Although previous biomechanical studies have demonstrated that cervical disc replacement normalizes adjacent segment motion, there is a little information regarding the function of a cervical disc replacement adjacent to an anterior cervical decompression and fusion, a potentially common clinical application. METHODS: Nine cadaveric cervical spines (C3-T1, age: 60.2 +/- 3.5 years) were tested under load- and displacement-control testing. After intact testing, a simulated fusion was performed at C4-C5, followed by C6-C7. The simulated fusion was then reversed, and the response of TDR at C5-C6 was measured. A hybrid construct was then tested with the TDR either below or above a single-level fusion and contrasted with a simulated two-level fusion (C4-C6 and C5-C7). RESULTS: The external fixator device used to simulate fusion significantly reduced range of motion (ROM) at C4-C5 and C6-C7 by 74.7 +/- 8.1% and 78.1 +/- 11.5%, respectively (P < 0.05). Removal of the fusion construct restored the motion response of the spinal segments to their intact state. Arthroplasty performed at C5-C6 using the porous-coated motion disc prosthesis maintained the total flexion-extension ROM to the level of the intact controls when used as a stand-alone procedure or when implanted adjacent to a single-level fusion (P > 0.05). The location of the single-level fusion, whether above or below the arthroplasty, did not significantly affect the motion response of the arthroplasty in the hybrid construct. Performing a two-level fusion significantly increased the motion demands on the nonoperated segments as compared to a hybrid TDR-plus fusion construct when the spine was required to reach the same motion end points. The spine with a hybrid construct required significantly less extension moment than the spine with a two-level fusion to reach the same extension end point. CONCLUSION: The porous-coated motion cervical prosthesis restored the ROM of the treated level to the intact state. When the porous-coated motion prosthesis was used in a hybrid construct, the TDR response was not adversely affected. A hybrid construct seems to offer significant biomechanical advantages over two-level fusion in terms of reducing compensatory adjacent-level hypermobility and also loads required to achieve a predetermined ROM.
机译:研究设计:尸体生物力学研究。目的:探讨与两级融合相比,邻近融合的颈全椎盘置换术(TDR)后颈椎的生物力学行为。背景技术概述:关于颈椎融合对移动运动节段的生物力学作用存在关注。尽管先前的生物力学研究表明,颈椎间盘置换术可以使相邻节段运动正常化,但是关于颈椎间盘置换术与前颈椎减压和融合术(潜在的常见临床应用)的功能相关的信息很少。方法:在负荷和位移控制测试下测试了九具尸体颈椎(C3-T1,年龄:60.2 +/- 3.5岁)。完整测试后,先在C4-C5进行模拟融合,然后在C6-C7进行融合。然后将模拟融合反向,并测量TDR在C5-C6的响应。然后用低于或高于单水平融合的TDR测试杂合构建体,并与模拟的两水平融合(C4-C6和C5-C7)进行对比。结果:用于模拟融合的外部固定器设备分别将C4-C5和C6-C7的运动范围(ROM)分别降低了74.7 +/- 8.1%和78.1 +/- 11.5%(P <0.05)。去除融合构建体将脊柱节段的运动响应恢复到其完整状态。当作为独立手术或与单层融合术相邻植入时,使用多孔涂层运动盘假体在C5-C6进行的关节置换术将总屈伸ROM保持在完整对照水平。(P> 0.05 )。无论是在置换术之上还是之下,单级融合的位置都不会显着影响杂交构建体中置换术的运动反应。当需要脊柱到达相同的运动终点时,与混合TDR-plus融合结构相比,执行两级融合显着增加了非手术段的运动需求。与具有两级融合的脊柱相比,具有混合结构的脊柱所需的伸展力矩明显更少。结论:多孔涂层运动型颈部假体可将治疗水平的ROM恢复至完整状态。当在混合结构中使用多孔涂层运动假体时,TDR反应不会受到不利影响。就降低补偿性相邻水平的超机动性以及实现预定ROM所需的负荷而言,混合结构似乎比两级融合具有明显的生物力学优势。

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