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A novel fusionless vertebral physeal device inducing spinal growth modulation for the correction of spinal deformities.

机译:一种新型的无融合椎骨干s端装置,可诱导脊柱生长调节,以矫正脊柱畸形。

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摘要

Current fusionless scoliosis surgical techniques span the intervertebral disc. This alters the spine stiffness, disc pressure equilibrium and possibly may lead to disc degeneration. A new fusionless physeal device was developed that locally modulates vertebral growth by compressing the physeal ring, while maintaining maximum segmental spinal mobility without spanning the intervertebral disc. This study's objective was to test the feasibility of the device on a small animal model by inducing a scoliotic deformity (inverse approach) while analyzing the growth modifications. This study was conducted on caudal vertebrae of 21 rats (26-day-old) divided into 3 groups: (1) "experimental" (n = 11) with 4 instrumented vertebrae, (2) sham (n = 5) and (3) control (n = 5). Radiographs were taken at regular intervals during the 7-week experimental period. Tissues were embedded in methyl metacrylate (MMA), prepared by the cutting/grinding method, and then stained (Toluidine blue). The discs physiological alterations were qualitatively assessed and classified by inspection of the histological sections. A mean maximum Cobb angle of 30 masculine (+/-6 masculine) and a mean maximum vertebral wedge angle of 10 masculine (+/-3 masculine) were obtained between the 23rd and 35th day postoperative in the subgroup that underwent a long-term response from the device. The sham group underwent no growth alterations when compared to the control group. Descriptive histological analyses of the operated segments showed that 69% had no alterations to the intervertebral disc. This study presents experimental evidence that the device induces a significant and controlled wedging of the vertebrae while maintaining regular flexibility. In most discs, there were no visible morphological alterations induced. Further analysis of the discs and testing of this device on a larger animal is recommended with the long-term objective of developing an early treatment of progressive idiopathic scoliosis.
机译:当前的无融合脊柱侧弯手术技术跨越椎间盘。这会改变脊柱的刚度,椎间盘压力平衡,并可能导致椎间盘退变。开发了一种新的无融合植骨装置,该装置可通过压缩植骨环来局部调节椎骨生长,同时保持最大的节段脊柱活动性,而不会跨越椎间盘。这项研究的目的是通过在分析生长变化的同时诱发脊柱侧弯畸形(反向方法),以在小型动物模型上测试该装置的可行性。这项研究是在21只大鼠(26天大)的尾椎骨上进行的,分为三组:(1)“实验性”(n = 11),有4个器械椎骨,(2)假(n = 5)和(3) )控制(n = 5)。在7周的实验期内,定期进行X射线照相。将组织包埋在通过切割/研磨方法制备的甲基丙烯酸甲酯(MMA)中,然后染色(甲苯胺蓝)。通过检查组织学切片对椎间盘的生理改变进行定性评估和分类。在长期接受治疗的亚组中,在术后第23天到第35天之间,平均最大Cobb角为30男性(+/- 6男性),平均最大椎体楔角为10男性(+/- 3男性)。设备的响应。与对照组相比,假手术组没有生长变化。对手术节段的描述性组织学分析表明,有69%的椎间盘未发生改变。这项研究提供了实验证据,表明该装置在保持规则柔韧性的同时,可引起对椎骨的明显且受控的楔入。在大多数光盘中,没有诱发可见的形态变化。建议对盘进行进一步分析并在较大的动物上对该装置进行测试,以期长期目标是尽早治疗进行性特发性脊柱侧弯。

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