Literature DB >> 27896679

What Are the Biomechanical Properties of the Taylor Spatial Frame™?

Daniel J Henderson1,2, Jeremy L Rushbrook3,4, Paul J Harwood3, Todd D Stewart4.   

Abstract

BACKGROUND: The Taylor Spatial Frame™ (TSF) is a versatile variant of the traditional Ilizarov circular fixator. Although in widespread use, little comparative data exist to quantify the biomechanical effect of substituting the tried-and-tested Ilizarov construct for the TSF hexapod system. QUESTIONS/PURPOSES: This study was designed to investigate the mechanical properties of the TSF system under physiologic loads, with and without the addition of a simulated bone model, with comparison to the standard Ilizarov frame.
METHODS: The mechanical behaviors of three identical four-ring TSF and Ilizarov constructs were tested under levels of axial compression, bending, and rotational torque to simulate loading during normal gait. An acrylic-pipe fracture model subsequently was mounted, using fine wires and 5 mm half pins, and the testing was repeated. Load-deformation curves, and so rigidity, for each construct were calculated, with statistical comparisons performed using paired t-tests.
RESULTS: Under axial loading, the TSF was found to be less rigid than the Ilizarov frame (645 ± 57 N/mm versus 1269 ± 256 N/mm; mean difference, 623 N/mm; 95% CI, 438.3-808.5 N/mm; p < 0.001), but more rigid under bending and torsional loads (bending: 42 ± 9 Nm/degree versus 78 ± 13 Nm/degree; mean difference, 37 Nm/degree; 95% CI, 25.0-47.9 Nm/degree; p < 0.001; torsion: 16 ± 2 Nm/degree versus 5 ± 0.35 Nm/degree; mean difference, 11 Nm/degree; 95% CI, 9.5-12.2 Nm/degree; p < 0.001). On mounting the bone models, these relationships broadly remained in the half-pin and fine-wire groups, however the half-pin constructs were universally more rigid than those using fine wires. This effect resulted in the TSF, using half pins, showing no difference in axial rigidity to the fine-wire Ilizarov (107 ± 3 N/mm versus 107 ± 4 N/mm; mean difference, 0.05 N/mm; 95% CI, -6.99 to 7.1 N/mm; p > 0.999), while retaining greater bending and torsional rigidity. Throughout testing, a small amount of laxity was observed in the TSF construct on either side of neutral loading, amounting to 0.72 mm (±0.37 mm) for a change in loading between -10 N and 10 N axial load, and which persisted with the addition of the synthetic fracture model.
CONCLUSIONS: This study broadly shows the TSF construct to generate lower axial rigidity, but greater bending and torsional rigidity, when compared with the Ilizarov frame, under physiologic loads. The anecdotally described laxity in the TSF hexapod strut system was shown in vitro, but only at low levels of loading around neutral. It also was shown that the increased stiffness generated by use of half pins produced a TSF construct replicating the axial rigidity of a fine-wire Ilizarov frame, for which much evidence of good clinical and radiologic outcomes exist, while providing greater rigidity and so improved resistance to potentially detrimental bending and rotational shear loads. CLINICAL RELEVANCE: If replicated in the clinical setting, these findings suggest that when using the TSF, care should be taken to minimize the observed laxity around neutral with appropriate preloading of the construct, but that its use may produce constructs better able to resist bending and torsional loading, although with lower axial rigidity. Use of half pins in a TSF construct however may replicate the axial mechanical behavior of an Ilizarov construct, which is thought to be conducive to bone healing.

Entities:  

Mesh:

Year:  2016        PMID: 27896679      PMCID: PMC5384917          DOI: 10.1007/s11999-016-5182-8

Source DB:  PubMed          Journal:  Clin Orthop Relat Res        ISSN: 0009-921X            Impact factor:   4.176


  32 in total

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2.  Why fine-wire fixators work: an analysis of pressure distribution at the wire-bone interface.

Authors:  T N Board; L Yang; M Saleh
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Authors:  Valentin Antoci; Michael J Voor; Valentin Antoci; Craig S Roberts
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Review 5.  Ilizarov principles of deformity correction.

Authors:  B Spiegelberg; T Parratt; S K Dheerendra; W S Khan; R Jennings; D R Marsh
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6.  Interfragmentary motion in tibial osteotomies stabilized with ring fixators.

Authors:  Georg N Duda; Michael Sollmann; Simon Sporrer; Jan E Hoffmann; Jean-Pierre Kassi; Cyrus Khodadadyan; Michael Raschke
Journal:  Clin Orthop Relat Res       Date:  2002-03       Impact factor: 4.176

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Authors:  K Seide; N Weinrich; M E Wenzl; D Wolter; C Jürgens
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8.  Controlled mechanical stimulation in the treatment of tibial fractures.

Authors:  J Kenwright; A E Goodship
Journal:  Clin Orthop Relat Res       Date:  1989-04       Impact factor: 4.176

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Authors:  P A L Foster; S B Barton; S C E Jones; R J M Morrison; S Britten
Journal:  J Bone Joint Surg Br       Date:  2012-12

10.  The influence of a weight-bearing platform on the mechanical behavior of two Ilizarov ring fixators: tensioned wires vs. half-pins.

Authors:  Jan Gessmann; Mustafa Citak; Birger Jettkant; Thomas A Schildhauer; Dominik Seybold
Journal:  J Orthop Surg Res       Date:  2011-12-12       Impact factor: 2.359

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  7 in total

1.  Extreme Genu Recurvatum Deformity in a Pediatric Patient With Spondyloepiphyseal Dysplasia: Gradual Correction With Z-plates and Hexapod Frame.

Authors:  James Seymour; Neeraj Vij; Mohan Belthur
Journal:  Cureus       Date:  2022-05-23

2.  [Closed reduction combined with Taylor three-dimensional space stent fixation for supracondylar femoral fracture in children].

Authors:  Shen Li; Shuai Wang; Chunyou Li; Guanpeng Song; Yongqiang Sun; Songfeng Lü; Xiaoyan Liu; Yanhong He; Sujuan Guo
Journal:  Zhongguo Xiu Fu Chong Jian Wai Ke Za Zhi       Date:  2019-05-15

3.  Reducing the Risk of Ring Breakage in Taylor Spatial Frames: The Effect of Frame Configuration on Strain at the Half-ring Junction.

Authors:  Alexios D Iliadis; Roland Bebja; Katherine Wang; Mehran Moazen; Jonathan Wright; Peter Calder; David Goodier
Journal:  Strategies Trauma Limb Reconstr       Date:  2020 Sep-Dec

4.  [Clinical application of Taylor spatial frame in adjustment of lower extremity force line of knee medial compartmental osteoarthritis].

Authors:  Weiye Zhang; Chunyou Wan; Tao Zhang; Mingjie Wang; Zhao Liu; Yuanhang Zhao
Journal:  Zhongguo Xiu Fu Chong Jian Wai Ke Za Zhi       Date:  2020-04-15

5.  Comparative Stiffness Characteristics of Ilizarov- and Hexapod-type External Frame Constructs.

Authors:  Carl Fenton; Daniel Henderson; Mikhail Samchukov; Alexander Cherkashin; Hemant Sharma
Journal:  Strategies Trauma Limb Reconstr       Date:  2021 Sep-Dec

6.  Auto Strut: a novel smart robotic system for external fixation device for bone deformity correction, a preliminary experience.

Authors:  Roy Gigi; Jacob Mor; Inbar Lidor; Dror Ovadia; Eitan Segev
Journal:  J Child Orthop       Date:  2021-04-19       Impact factor: 1.548

7.  Functional Outcomes and Quality of Life Following Complex Tibial Fractures Treated with Circular External Fixation: A Comparison between Proximal, Midshaft, and Distal Tibial Fractures.

Authors:  Jaco J Naude; Muhammad A Manjra; Franz Birkholtz; Annette-Christi Barnard; Kevin Tetsworth; Vaida Glatt; Erik Hohmann
Journal:  Strategies Trauma Limb Reconstr       Date:  2021 Jan-Apr
  7 in total

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