Literature DB >> 20739904

Limb lengthening combined with deformity correction in children with the Taylor Spatial Frame.

Christopher Iobst1.   

Abstract

It is difficult to replicate the regular rate and rhythm described by Ilizarov while lengthening with the Taylor Spatial Frame. The purpose of the study was to examine whether this breach of Ilizarov's principles has any deleterious effect on the ability of children to make healthy regenerate bone. A retrospective case-control study was performed comparing pediatric patients undergoing primarily lengthening with Taylor Spatial Frame rings and struts, and patients undergoing lengthening with Taylor Spatial Frame rings and Ilizarov clickers. Fifteen patients had primarily lengthening with Taylor Spatial Frame rings and struts, and six patients had lengthening with Taylor Spatial Frame rings and Ilizarov clickers. Statistically, there was no significant difference between the two groups in terms of age, latency, pre-operative bone length percentage, and average length gained. The lengthening index for the strut group (1.79 months/cm) was significantly different from the clicker group (1.33 months/cm) with P=0.012. For a pediatric patient with lower extremity long bone deformities in multiple planes, the Taylor Spatial Frame is an excellent option. However, the surgeon should anticipate a slightly longer duration of treatment with the Taylor Spatial Frame compared to Ilizarov frames and plan his/her fixation accordingly. For the straightforward lengthening of pediatric long bones without significant concomitant deformity, our results indicate that the Ilizarov method appears to be superior to the Taylor Spatial Frame struts and should still be considered the gold standard.

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Year:  2010        PMID: 20739904     DOI: 10.1097/BPB.0b013e32833dec43

Source DB:  PubMed          Journal:  J Pediatr Orthop B        ISSN: 1060-152X            Impact factor:   1.041


  6 in total

1.  Clinical value of the Taylor Spatial Frame: a comparison with the Ilizarov and Orthofix fixators.

Authors:  D Dammerer; K Kirschbichler; L Donnan; G Kaufmann; M Krismer; R Biedermann
Journal:  J Child Orthop       Date:  2011-08-19       Impact factor: 1.548

2.  Comparison of treatment indices associated with the correction and lengthening of deformities along various lower limb frontal plane directions.

Authors:  Tomo Hamada; Hidenori Matsubara; Yasuhisa Yoshida; Shuhei Ugaji; Hiroyuki Tsuchiya
Journal:  J Clin Orthop Trauma       Date:  2019-01-03

3.  Limb lengthening and deformity correction of congenital and acquired deformities in children using the Taylor Spatial Frame.

Authors:  Joachim Horn; Harald Steen; Stefan Huhnstock; Ivan Hvid; Ragnhild B Gunderson
Journal:  Acta Orthop       Date:  2017-02-22       Impact factor: 3.717

Review 4.  An engineering review of external fixators.

Authors:  P L N Fernando; Aravinda Abeygunawardane; Pci Wijesinghe; Parakrama Dharmaratne; Pujitha Silva
Journal:  Med Eng Phys       Date:  2021-11-04       Impact factor: 2.242

5.  Hospitalization for computer-assisted hexapod ring fixation application - analyses of patient variability, peri-operative complications, hospital costs, and discharge status.

Authors:  J Spence Reid; Mollie Vanderkarr; Bidusee Ray; Abhishek Chitnis; Chantal E Holy; Charisse Sparks
Journal:  BMC Musculoskelet Disord       Date:  2022-03-05       Impact factor: 2.362

6.  A new technique for correction of leg length discrepancies in combination with complex axis deformities of the lower limb using a lengthening nail and a locking plate.

Authors:  C N Steiger; U Lenze; A H Krieg
Journal:  J Child Orthop       Date:  2018-10-01       Impact factor: 1.548

  6 in total

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