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Published in: Journal of Children's Orthopaedics 6/2016

Open Access 01-12-2016 | Current Concept Review

The role of guided growth as it relates to limb lengthening

Author: Peter M. Stevens

Published in: Journal of Children's Orthopaedics | Issue 6/2016

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Abstract

For decades, the classic indication for limb lengthening has been reserved for anisomelia that was expected to reach or exceed 5 cm at maturity. Epiphysiodesis was reserved for discrepancies in the 2–5 cm range. With the increasing sophistication of fixators, including rail, hexapod, and hybrid, complex deformities may be corrected simultaneously while moderate to extreme lengthening is achieved. More recently, iterations of telescoping intramedullary rods have further strengthened our armamentarium. Meanwhile, permanent epiphysiodesis techniques, both open and percutaneous, have yielded to more versatile and reversible tethering of one (angle) or both (length) sides of a physis. While the techniques of guided growth and callotasis seem to be diametrically opposed, they may be used in a tandem or complementary fashion, for the benefit of the patient. If treatment is undertaken during skeletal growth, one must be aware that issues remain regarding the accurate assessment of skeletal maturity and prediction of the ultimate outcome. Therefore, there is potential for over- or undercorrection. Reversible and serial guided growth now enable the surgeon to commence intervention at a comparatively young age, for the purpose of optimizing limb alignment and reducing the ultimate discrepancy. Frame application may be delayed or, in some cases, avoided altogether. With the limb properly aligned at the outset of lengthening, elective use of a telescoping intramedullary nail may now be favored over a frame accordingly.
Literature
1.
go back to reference Machen MS, Stevens PM (2005) Should full-length standing anteroposterior radiographs replace the scanogram for measurement of limb length discrepancy? J Pediatr Orthop B 14(1):30–37CrossRefPubMed Machen MS, Stevens PM (2005) Should full-length standing anteroposterior radiographs replace the scanogram for measurement of limb length discrepancy? J Pediatr Orthop B 14(1):30–37CrossRefPubMed
2.
go back to reference Stevens PM (1989) Radiographic distortion of bones: a marker study. Orthopedics 12(11):1457–1463PubMed Stevens PM (1989) Radiographic distortion of bones: a marker study. Orthopedics 12(11):1457–1463PubMed
3.
go back to reference Phemister DB (1933) Operative arrestment of longitudinal growth of bones in the treatment of deformities. J Bone Joint Surg Am 15(1):1–15 Phemister DB (1933) Operative arrestment of longitudinal growth of bones in the treatment of deformities. J Bone Joint Surg Am 15(1):1–15
4.
go back to reference White JW, Stubbins SG (1944) Growth arrest for equalizing leg lengths. JAMA 126(18):1146–1149CrossRef White JW, Stubbins SG (1944) Growth arrest for equalizing leg lengths. JAMA 126(18):1146–1149CrossRef
5.
go back to reference Bowen JR, Johnson WJ (1984) Percutaneous epiphysiodesis. Clin Orthop Relat Res 190:170–173 Bowen JR, Johnson WJ (1984) Percutaneous epiphysiodesis. Clin Orthop Relat Res 190:170–173
6.
go back to reference Edmonds EW, Stasikelis PJ (2007) Percutaneous epiphysiodesis of the lower extremity: a comparison of single- versus double-portal techniques. J Pediatr Orthop 27(6):618–622CrossRefPubMed Edmonds EW, Stasikelis PJ (2007) Percutaneous epiphysiodesis of the lower extremity: a comparison of single- versus double-portal techniques. J Pediatr Orthop 27(6):618–622CrossRefPubMed
7.
go back to reference Blount WP, Clarke GR (1971) The classic. Control of bone growth by epiphyseal stapling. A preliminary report. Journal of Bone and Joint Surgery, July, 1949. Clin Orthop Relat Res 77:4–17PubMed Blount WP, Clarke GR (1971) The classic. Control of bone growth by epiphyseal stapling. A preliminary report. Journal of Bone and Joint Surgery, July, 1949. Clin Orthop Relat Res 77:4–17PubMed
8.
go back to reference Anderson M, Green WT, Messner MB (1963) Growth and predictions of growth in the lower extremities. J Bone Joint Surg Am 45-A:1–14CrossRefPubMed Anderson M, Green WT, Messner MB (1963) Growth and predictions of growth in the lower extremities. J Bone Joint Surg Am 45-A:1–14CrossRefPubMed
9.
go back to reference Cundy PJ, Paterson D, Morris L, Foster B (1988) Skeletal age estimation in leg length discrepancy. J Pediatr Orthop 8(5):513–515CrossRefPubMed Cundy PJ, Paterson D, Morris L, Foster B (1988) Skeletal age estimation in leg length discrepancy. J Pediatr Orthop 8(5):513–515CrossRefPubMed
10.
go back to reference Surdam JW, Morris CD, DeWeese JD, Drvaric DM (2003) Leg length inequality and epiphysiodesis: review of 96 cases. J Pediatr Orthop 23(3):381–384PubMed Surdam JW, Morris CD, DeWeese JD, Drvaric DM (2003) Leg length inequality and epiphysiodesis: review of 96 cases. J Pediatr Orthop 23(3):381–384PubMed
11.
go back to reference Vogt B, Schiedel F, Rödl R (2014) Guided growth in children and adolescents. Correction of leg length discrepancies and leg axis deformities. Orthopade 43(3):267–284CrossRefPubMed Vogt B, Schiedel F, Rödl R (2014) Guided growth in children and adolescents. Correction of leg length discrepancies and leg axis deformities. Orthopade 43(3):267–284CrossRefPubMed
12.
go back to reference Inan M, Chan G, Littleton AG, Kubiak P, Bowen JR (2008) Efficacy and safety of percutaneous epiphysiodesis. J Pediatr Orthop 28(6):648–651CrossRefPubMed Inan M, Chan G, Littleton AG, Kubiak P, Bowen JR (2008) Efficacy and safety of percutaneous epiphysiodesis. J Pediatr Orthop 28(6):648–651CrossRefPubMed
13.
go back to reference Khoury JG, Tavares JO, McConnell S, Zeiders G, Sanders JO (2007) Results of screw epiphysiodesis for the treatment of limb length discrepancy and angular deformity. J Pediatr Orthop 27(6):623–628CrossRefPubMed Khoury JG, Tavares JO, McConnell S, Zeiders G, Sanders JO (2007) Results of screw epiphysiodesis for the treatment of limb length discrepancy and angular deformity. J Pediatr Orthop 27(6):623–628CrossRefPubMed
14.
go back to reference Métaizeau JP, Wong-Chung J, Bertrand H, Pasquier P (1998) Percutaneous epiphysiodesis using transphyseal screws (PETS). J Pediatr Orthop 18(3):363–369PubMed Métaizeau JP, Wong-Chung J, Bertrand H, Pasquier P (1998) Percutaneous epiphysiodesis using transphyseal screws (PETS). J Pediatr Orthop 18(3):363–369PubMed
15.
go back to reference Stevens PM (2006) Guided growth: 1933 to the present. Strateg Trauma Limb Reconstr 1:29–35CrossRef Stevens PM (2006) Guided growth: 1933 to the present. Strateg Trauma Limb Reconstr 1:29–35CrossRef
16.
go back to reference Stevens PM (2007) Guided growth for angular correction: a preliminary series using a tension band plate. J Pediatr Orthop 27(3):253–259CrossRefPubMed Stevens PM (2007) Guided growth for angular correction: a preliminary series using a tension band plate. J Pediatr Orthop 27(3):253–259CrossRefPubMed
17.
go back to reference Pendleton AM, Stevens PM, Hung M (2013) Guided growth for the treatment of moderate leg-length discrepancy. Orthopedics 36(5):e575–e580CrossRefPubMed Pendleton AM, Stevens PM, Hung M (2013) Guided growth for the treatment of moderate leg-length discrepancy. Orthopedics 36(5):e575–e580CrossRefPubMed
18.
go back to reference Eastwood DM, Sanghrajka AP (2011) Guided growth: recent advances in a deep-rooted concept. J Bone Joint Surg Br 93(1):12–18CrossRefPubMed Eastwood DM, Sanghrajka AP (2011) Guided growth: recent advances in a deep-rooted concept. J Bone Joint Surg Br 93(1):12–18CrossRefPubMed
19.
go back to reference Gottliebsen M, Møller-Madsen B, Stødkilde-Jørgensen H, Rahbek O (2013) Controlled longitudinal bone growth by temporary tension band plating: an experimental study. Bone Joint J 95-B(6):855–860CrossRefPubMed Gottliebsen M, Møller-Madsen B, Stødkilde-Jørgensen H, Rahbek O (2013) Controlled longitudinal bone growth by temporary tension band plating: an experimental study. Bone Joint J 95-B(6):855–860CrossRefPubMed
20.
go back to reference Ilharreborde B, Gaumetou E, Souchet P et al (2012) Efficacy and late complications of percutaneous epiphysiodesis with transphyseal screws. J Bone Joint Surg Br 94(2):270–275CrossRefPubMed Ilharreborde B, Gaumetou E, Souchet P et al (2012) Efficacy and late complications of percutaneous epiphysiodesis with transphyseal screws. J Bone Joint Surg Br 94(2):270–275CrossRefPubMed
22.
go back to reference Stevens PM, Arms D (2000) Postaxial hypoplasia of the lower extremity. J Pediatr Orthop 20(2):166–172PubMed Stevens PM, Arms D (2000) Postaxial hypoplasia of the lower extremity. J Pediatr Orthop 20(2):166–172PubMed
23.
go back to reference Corominas-Frances L, Sanpera I, Saus-Sarrias C, Tejada-Gavela S, Sanpera-Iglesias J, Frontera-Juan G (2015) Rebound growth after hemiepiphysiodesis: an animal-based experimental study of incidence and chronology. Bone Joint J 97-B(6):862–868CrossRefPubMed Corominas-Frances L, Sanpera I, Saus-Sarrias C, Tejada-Gavela S, Sanpera-Iglesias J, Frontera-Juan G (2015) Rebound growth after hemiepiphysiodesis: an animal-based experimental study of incidence and chronology. Bone Joint J 97-B(6):862–868CrossRefPubMed
Metadata
Title
The role of guided growth as it relates to limb lengthening
Author
Peter M. Stevens
Publication date
01-12-2016
Publisher
Springer Berlin Heidelberg
Published in
Journal of Children's Orthopaedics / Issue 6/2016
Print ISSN: 1863-2521
Electronic ISSN: 1863-2548
DOI
https://doi.org/10.1007/s11832-016-0779-8

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