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Flexible non-fusion scoliosis correction systems reduce intervertebral rotation less than rigid implants and allow growth of the spine: a finite element analysis of different features of orthobiom™

机译:灵活的非融合性脊柱侧弯矫正系统比刚性植入物可减少椎间旋转,并使脊柱生长:orthobiom™不同功能的有限元分析

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摘要

The orthobiom™ non-fusion scoliosis correction system consists of two longitudinal rods, polyaxial pedicle screws, mobile and fixed connectors and a cross-connector. The mobile connectors can move along and around the rod, thus allowing length adaptation during growth. The aim of this study was to determine the effects of different features of this novel implant on intervertebral rotations, to calculate the movement of the mobile connectors along the rods for different loading cases and to compare the results with those of a rigid implant construct. A finite element analysis was performed using six versions (M1–M6) of a three-dimensional, nonlinear model of a spine ranging from T3 to L2. The models were loaded with pure moments of 7.5 N m in the three main anatomical planes. First, the validated intact model (M1) was studied. Then, the orthobiom™ implant system was inserted, bridging the segments between T4 and L1 (M2). The effect of pedicle screws only in every second vertebrae was investigated (M3). For comparison, three connection variations of screws and rods were investigated: (1) an implant with rigid screws and mobile connectors (M4), (2) an implant with non-locking polyaxial screws and fixed connectors (M5) and (3) a completely rigid implant construct (M6). For flexion, extension and lateral bending, intervertebral rotation was reduced at all implant levels due to the implants. A rigid implant construct (M6) and an implant with non-locking polyaxial screws and fixed connectors (M5) led to the strongest reduction of intervertebral rotation. The orthobiom™ non-fusion implant system (M2, M3) allowed much more intervertebral rotation than a rigid implant (M6). Differences in intervertebral rotations were small when polyaxial screws were placed at every second level only (M3) instead of at every level (M2). For axial rotation, intervertebral rotation was strongly reduced by a rigid implant construct (M6) and by an implant with rigid screws and mobile connectors (M4). For rotation, an implant with non-locking polyaxial screws (M2, M3, M5) led to nearly the same intervertebral rotations as in an intact spine without an implant (M1). The predicted maximum translation of the mobile connectors along the rod was 4.2 mm for extension, 3.1 mm for lateral bending, 1.6 mm for flexion and 0.8 mm for axial rotation. The movement of the connectors was highest for those closest to the ends of the rods. With rigid screws, the maximum translation was significantly reduced. This study, conducted under a load-controlled loading protocol, showed that intervertebral rotation was reduced much less by the non-fusion orthobiom™ system than by a rigid implant. The mobile connectors moved considerably along the rod when the spine was bent. It can be expected that the connectors also move along the rod as the adolescent grows, possibly leaving the discs intact until the patient is fully grown.
机译:Orthobiom™非融合性脊柱侧弯矫正系统由两个纵向杆,多轴椎弓根螺钉,可移动和固定连接器以及一个交叉连接器组成。移动连接器可以沿着杆并在杆周围移动,从而允许在生长过程中进行长度调整。这项研究的目的是确定这种新型植入物的不同特征对椎间旋转的影响,以计算可移动连接器在不同载荷情况下沿杆的移动,并将结果与​​刚性植入物的结构进行比较。使用从T3到L2的三个三维脊柱非线性模型的六个版本(M1-M6)进行了有限元分析。在三个主要解剖平面上,模型都加载了7.5 Nm的纯力矩。首先,研究了经过验证的完整模型(M1)。然后,插入orthobiom™植入系统,桥接T4和L1(M2)之间的片段。仅在每隔两个椎骨中研究椎弓根螺钉的作用(M3)。为了进行比较,研究了螺钉和杆的三种连接方式:(1)具有刚性螺钉和活动连接器的植入物(M4),(2)具有非锁定多轴螺钉和固定连接器的植入物(M5)和(3)完全刚性的植入物构造(M6)。对于屈曲,伸展和横向弯曲,由于植入物的缘故,在所有植入物水平上椎骨旋转均降低。刚性植入物结构(M6)以及具有非锁定多轴螺钉和固定连接器的植入物(M5)导致最大程度地减少了椎间旋转。与刚性植入物(M6)相比,orthobiom™非融合植入物系统(M2,M3)可使椎间旋转更多。当仅将多轴螺钉放置在第二层(M3)而不是放置在第二层(M2)时,椎间旋转的差异很小。对于轴向旋转,通过刚性植入物构造(M6)和带有刚性螺钉和活动连接器的植入物(M4)可以大大减少椎间旋转。为了旋转,使用无锁定多轴螺钉的植入物(M2,M3,M5)导致的椎间旋转几乎与没有植入物(M1)的完整脊柱相同。沿杆的移动连接器的预计最大平移度为延伸4.2毫米,横向弯曲3.1毫米,弯曲1.6毫米,轴向旋转0.8毫米。对于最靠近杆端的连接器,连接器的运动最高。使用刚性螺钉,最大平移明显减少。这项研究是在负荷控制的负荷方案下进行的,结果表明,非融合orthobiom™系统与刚性植入物相比,椎间旋转的减少幅度要小得多。脊柱弯曲时,可移动连接器沿杆显着移动。可以预料,随着青春期的增长,连接器也将沿着杆移动,可能会使椎间盘完整,直到患者完全成长。

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