Management of Segmental Tibial Bone Defects With the Magnetic Motorized Intramedullary Transport Nail: A Case Series.
Journal
Journal of orthopaedic trauma
ISSN: 1531-2291
Titre abrégé: J Orthop Trauma
Pays: United States
ID NLM: 8807705
Informations de publication
Date de publication:
01 Nov 2023
01 Nov 2023
Historique:
accepted:
17
01
2023
pubmed:
8
2
2023
medline:
8
2
2023
entrez:
7
2
2023
Statut:
ppublish
Résumé
Critical-sized bone defects in the tibia can arise as sequelae of trauma, infection, tumor, or the treatment of congenital limb deficiencies. Treatment of these defects often requires bone transport, which has traditionally been accomplished using circular external fixators. The development of a bone transport nail facilitated tibia reconstruction through distraction osteogenesis using an all-internal device, thus avoiding the complications associated with chronic external fixation. Given the rarity of these cases, few studies have been published on the reconstruction outcomes using this implant. We sought to investigate the bone healing indices (including regenerate consolidation and time to docking site union) associated with the use of a magnetically controlled all-internal bone transport nail for the reconstruction of 4 patients treated for posttraumatic tibial bone loss. Perioperative and device-related complications are also reported.
Identifiants
pubmed: 36750433
doi: 10.1097/BOT.0000000000002574
pii: 00005131-990000000-00166
doi:
Types de publication
Journal Article
Langues
eng
Sous-ensembles de citation
IM
Pagination
e459-e465Informations de copyright
Copyright © 2023 Wolters Kluwer Health, Inc. All rights reserved.
Références
Keating JF, Simpson AHRW, Robinson CM. The management of fractures with bone loss. J Bone Jt Surg. 2005;87-B:142–150.
Papakostidis C, Bhandari M, Giannoudis PV. Distraction osteogenesis in the treatment of long bone defects of the lower limbs: effectiveness, complications and clinical results; a systematic review and meta-analysis. Bone Jt J. 2013;95-b:1673–1680.
Dahl MT, Morrison S. Segmental bone defects and the history of bone transport. J Orthop Trauma. 2021;35:S1–s7.
Ilizarov GA. The tension-stress effect on the genesis and growth of tissues: Part II. The influence of the rate and frequency of distraction. Clin Orthop Relat Res. 1989:263–285.
Ilizarov GA. The tension-stress effect on the genesis and growth of tissues. Part I. The influence of stability of fixation and soft-tissue preservation. Clin Orthop Relat Res. 1989;238:249–281.
Liu Y, Yushan M, Liu Z, et al. Complications of bone transport technique using the Ilizarov method in the lower extremity: a retrospective analysis of 282 consecutive cases over 10 years. BMC Musculoskelet Disord. 2020;21:354.
Wang H, Wei X, Liu P, et al. Quality of life and complications at the different stages of bone transport for treatment infected nonunion of the tibia. Med Baltim. 2017;96:e8569.
Paley D, Herzenberg JE, Paremain G, et al. Femoral lengthening over an intramedullary nail. A matched-case comparison with Ilizarov femoral lengthening. J Bone Jt Surg. 1997;79:1464–1480.
Rozbruch RS, Kleinman D, Fragomen AT, et al. Limb lengthening and then insertion of an intramedullary nail: a case-matched comparison. Clin Orthop Relat Res. 2008;466:2923–2932.
Barinaga G, Beason AM, Gardner MP. Novel surgical approach to segmental bone transport using a magnetic intramedullary limb lengthening system. J Am Acad Orthop Surg. 2018;26:e477–e482.
Gardner MP, Beason AM. plate-assisted bone segment transport versus Precice bone transport nail. J Orthop Trauma. 2021;35:S19–s24.
Baumgart R, Betz A, Schweiberer L. A fully implantable motorized intramedullary nail for limb lengthening and bone transport. Clin Orthop Relat Res. 1997;343:135–143.
Kold S, Christensen KS. Bone transport of the tibia with a motorized intramedullary lengthening nail - a case report. Acta Orthop. 2014;85:211–213.
Quinnan SM. Use of a motorized intramedullary bone transport nail for trauma: tips, tricks, corticotomy techniques, and rate and rhythm. J Orthop Trauma. 2021;35:S31–s38.
Stoneback JW, Erdman MK, Marecek GS. Management of segmental tibial bone defects with a motorized intramedullary bone transport nail: a case review with follow-up. J Orthop Trauma. 2021;35:S13–s18.
Zuckerman LM, Scolaro JA, Gardner MP, et al. Technical considerations for the management of segmental osseous defects with an internal bone transport nail. Expert Rev Med Devices. 2022;19:203–211.
Meinberg EG, Agel J, Roberts CS, et al. Fracture and dislocation classification compendium-2018. J Orthop Trauma. 2018;32:S1–S10.
Paley D. Problems, obstacles, and complications of limb lengthening by the Ilizarov technique. Clin Orthop Relat Res. 1990:81–104.
Iliadis AD, Wright J, Stoddart MT, et al. Early results from a single centre's experience with the STRYDE nail: a cause for concern?. bone Jt J. 2021;103-b:1168–1172.
Frommer A, Roedl R, Gosheger G, et al. Focal osteolysis and corrosion at the junction of Precice Stryde intramedullary lengthening device : preliminary clinical, radiological, and metallurgic analysis of 57 lengthened segments. Bone Jt Res. 2021;10:425–436.
Paley D, Maar DC. Ilizarov bone transport treatment for tibial defects. J Orthop Trauma. 2000;14:76–85.
Rozbruch SR, Pugsley JS, Fragomen AT, et al. Repair of tibial nonunions and bone defects with the Taylor Spatial Frame. J Orthop Trauma. 2008;22:88–95.
Yuasa M, Saito M, Blum DM, et al. The size of intramedullary fixation affects endochondral-mediated angiogenesis during fracture repair. J Orthop Trauma. 2019;33:e385–e393.
Jellesen MS, Lomholt TN, Hansen RQ, et al. The STRYDE limb lengthening nail is susceptible to mechanically assisted crevice corrosion: an analysis of 23 retrieved implants. Acta Orthop. 2021;92:621–627.
Rölfing JD, Kold S, Nygaard T, et al. Pain, osteolysis, and periosteal reaction are associated with the STRYDE limb lengthening nail: a nationwide cross-sectional study. Acta Orthop. 2021;92:479–484.