Literature DB >> 22933497

The effect on mechanical axis deviation of femoral lengthening with an intramedullary telescopic nail.

R D Burghardt1, D Paley, S C Specht, J E Herzenberg.   

Abstract

Internal lengthening devices in the femur lengthen along the anatomical axis, potentially creating lateral shift of the mechanical axis. We aimed to determine whether femoral lengthening along the anatomical axis has an inadvertent effect on lower limb alignment. Isolated femoral lengthening using the Intramedullary Skeletal Kinetic Distractor was performed in 27 femora in 24 patients (mean age 32 years (16 to 57)). Patients who underwent simultaneous realignment procedures or concurrent tibial lengthening, or who developed mal- or nonunion, were excluded. Pre-operative and six-month post-operative radiographs were used to measure lower limb alignment. The mean lengthening achieved was 4.4 cm (1.5 to 8.0). In 26 of 27 limbs, the mechanical axis shifted laterally by a mean of 1.0 mm/cm of lengthening (0 to 3.5). In one femur that was initially in varus, a 3 mm medial shift occurred during a lengthening of 2.2 cm. In a normally aligned limb, intramedullary lengthening along the anatomical axis of the femur results in a lateral shift of the mechanical axis by approximately 1 mm for each 1 cm of lengthening.

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Mesh:

Year:  2012        PMID: 22933497     DOI: 10.1302/0301-620X.94B9.28672

Source DB:  PubMed          Journal:  J Bone Joint Surg Br        ISSN: 0301-620X


  12 in total

1.  Precision of the PRECICE internal bone lengthening nail.

Authors:  Yatin M Kirane; Austin T Fragomen; S Robert Rozbruch
Journal:  Clin Orthop Relat Res       Date:  2014-12       Impact factor: 4.176

Review 2.  Use of internal lengthening nails in post-traumatic sequelae.

Authors:  Hamza M Alrabai; Martin G Gesheff; Janet D Conway
Journal:  Int Orthop       Date:  2017-04-07       Impact factor: 3.075

3.  What Are the Potential Benefits and Risks of Using Magnetically Driven Antegrade Intramedullary Lengthening Nails for Femoral Lengthening to Treat Leg Length Discrepancy?

Authors:  Adrien Frommer; Robert Roedl; Georg Gosheger; Maike Niemann; Dominik Turkowski; Gregor Toporowski; Christoph Theil; Andrea Laufer; Bjoern Vogt
Journal:  Clin Orthop Relat Res       Date:  2022-04-01       Impact factor: 4.755

4.  Bone Ninja Mobile App for Reverse Planning Method in Internal Limb Deformity and Lengthening Surgery.

Authors:  Alec Lik-Hang Hung; Philip K McClure; Jeanne M Franzone; Ahmed I Hammouda; Shawn C Standard; Wai-Wang Chau; John E Herzenberg
Journal:  Strategies Trauma Limb Reconstr       Date:  2019 May-Aug

5.  Electromagnetic Rod in Lower Limb Lengthening: A Technical Note for Shaft Osteotomy.

Authors:  Miguel Lopes; Bernardo Nunes; André Couto; Joana Freitas; Rui Martins; Jorge Coutinho; Gilberto Costa
Journal:  Strategies Trauma Limb Reconstr       Date:  2019 Sep-Dec

Review 6.  [Research progress of intramedullary lengthening nail technology].

Authors:  Jin Zhang; Yonghong Zhang; Chaoqi Wang; Sihe Qin
Journal:  Zhongguo Xiu Fu Chong Jian Wai Ke Za Zhi       Date:  2021-05-15

7.  Distal femoral flexion deformity from growth disturbance treated with a two-level osteotomy and internal lengthening nail.

Authors:  Austin T Fragomen; Fiona R Fragomen
Journal:  Strategies Trauma Limb Reconstr       Date:  2017-10-16

8.  Lengthening and deformity correction about the knee using a magnetic internal lengthening nail.

Authors:  Austin T Fragomen; S Robert Rozbruch
Journal:  SICOT J       Date:  2017-03-22

9.  The Resolution Axis Method (RAM) for lengthening of the femur with or without associated frontal plane deformity (a new method).

Authors:  Sherif Galal
Journal:  Strategies Trauma Limb Reconstr       Date:  2018-05-24

10.  Effect of lengthening along the anatomical axis of the femur and its clinical impact.

Authors:  Khaled M Emara; Ahmed Nageeb Mahmoud; Ahmed K Emara; Mariam K Emara
Journal:  World J Orthop       Date:  2017-05-18
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