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Biomechanical properties of bicortical and monocortical plate fixation for rib fractures in the adolescent human rib fracture model

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The technical advancement of surgical stabilization of ribs often prevents the surgeons from fixation, despite the procedure`s documented improved outcomes. The aim of this study was to evaluate a less invasive approach involving a simplified monocortical rib fixation technique.
Słowa kluczowe
Rocznik
Opis fizyczny
Bibliogr. 35 poz., rys., tab., wykr.
Twórcy
  • Department of General Orthopaedics, Musculoskeletal Oncology and Trauma Surgery, Poznan University of Medical Sciences, Poznan, Poland
  • Institute of Mechanical Technology, Poznan University of Technology, Poznan, Poland
autor
  • Institute of Applied Mechanics, Poznan University of Technology, Poznan, Poland
  • Institute of Mechanical Technology, Poznan University of Technology, Poznan, Poland
  • Institute of Applied Mechanics, Poznan University of Technology, Poznan, Poland
autor
  • Institute of Mechanical Technology, Poznan University of Technology, Poznan, Poland
Bibliografia
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  • [3] Bottlang M, Helzel I, Long WB, Madey S. Anatomically Contoured Plates for Fixation of Rib Fractures. Journal of Trauma: Injury, Infection & Critical Care, 2010, 68:611–615.
  • [4] Bottlang M, Walleser S, Noll M, Honold S, Madey SM, Fitzpatrick D, Long WB. Biomechanical rationale and evaluation of an implant system for rib fracture fixation. European Journal of Trauma and Emergency Surgery, 2010, 36:417–426.
  • [5] Choke A, Wong YR, Joethy J-V. Biomechanical comparison of monocortical and bicortical plate fixation for rib fractures in a cadaveric model using a locking plate system. J Thorac Dis, 2019, 11:4966–4971.
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  • [7] Cronier P, Pietu G, Dujardin C, Bigorre N, Ducellier F, Gerard R. The concept of locking plates. Orthopaedics & Traumatology: Surgery & Research, 2010, 96:S17– 331 S36.
  • [8] Currey JD. The effect of porosity and mineral content on the Young’s modulus of elasticity of compact bone. J Biomech, 1988, 21:131–139.
  • [9] Dehghan N, Mah JM, Schemitsch EH, Nauth A, Vicente M, McKee MD. Operative Stabilization of Flail Chest Injuries Reduces Mortality to That of Stable Chest Wall Injuries. J Orthop Trauma, 2018, 32:15–21.
  • [10] Engel C, Krieg JC, Madey SM, Long WB, Bottlang M. Operative Chest Wall Fixation with Osteosynthesis Plates. The Journal of Trauma: Injury, Infection, and Critical Care, 2005, 58:181–186.
  • [11] Fokin AA, Hus N, Wycech J, Rodriguez E, Puente I. Surgical Stabilization of Rib Fractures. JBJS Essent Surg Tech, 2020, 10:e0032–e0032.
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  • [13] Gerakopoulos E, Walker L, Melling D, Scott S, Scott S. Surgical Management of Multiple Rib Fractures Reduces the Hospital Length of Stay and the Mortality Rate in Major Trauma Patients: A Comparative Study in a UK Major Trauma Center. J Orthop Trauma, 2019, 33:9–14.
  • [14] Glowacki M, Ignys-O’Byrne A, Ignys I, Mankowski P, Melzer P. Evaluation of volume and solitary bone cyst remodeling using conventional radiological examination. Skeletal Radiol, 2010, 39:251–259.
  • [15] Glowacki M, Ignys-O’Byrne A, Ignys I, Wroblewska K. Limb shortening in the course of solitary bone cyst treatment—a comparative study. Skeletal Radiol, 2011, 40:173–179.
  • [16] Hamer. Biochemical properties of cortical allograft bone using a new method of bone strength measurement. A comparison of fresh, fresh-frozen and irradiated bone.
  • [17] Hernandez CJ. How can bone turnover modify bone strength independent of bone mass? Bone, 2008, 42:1014–1020. 19
  • [18] Kane ED, Jeremitsky E, Pieracci FM, Majercik S, Doben AR. Quantifying and exploring the recent national increase in surgical stabilization of rib fractures. Journal of Trauma and Acute Care Surgery, 2017, 83:1047–1052.
  • [19] Kent R, Lee S-H, Darvish K, Wang S, Poster CS, Lange AW, Brede C, Lange D, Matsuoka F. Structural and Material Changes in the Aging Thorax and Their Role in Crash Protection for Older Occupants.
  • [20] Lafferty PM, Anavian J, Will RE, Cole PA. Operative Treatment of Chest Wall Injuries: Indications, Technique, and Outcomes. Journal of Bone and Joint Surgery, 2011, 93:97–110.
  • [21] Lardinois D, Krueger T, Dusmet M, Ghisletta N, Gugger M, Ris H-B. Pulmonary function testing after operative stabilisation of the chest wall for flail chest. European Journal of Cardio-Thoracic Surgery, 2001, 20:496–501.
  • [22] Luchette FA, Radafshar SM, Kaiser R, Flynn W, Hassett JM. Prospective evaluation of epidural versus intrapleural catheters for analgesia in chest wall trauma. Journal of Trauma - Injury, Infection and Critical Care, 1994.
  • [23] Mischler D, Schopper C, Gasparri M, Schulz-Drost S, Brace M, Gueorguiev B. Is intrathoracic rib plate fixation advantageous over extrathoracic plating? A biomechanical cadaveric study. Journal of Trauma and Acute Care Surgery, 2022;92:574–580.
  • [24] Mohr M, Abrams E, Engel C, Long WB, Bottlang M. Geometry of human ribs pertinent to orthopedic chest-wall reconstruction. J Biomech, 2007;40:1310–1317.
  • [25] Pezowicz C, Głowacki M. The mechanical properties of human ribs in young adults. Acta Bioeng Biomech, 2012;14:53–60.
  • [26] Pieracci FM, Lin Y, Rodil M, Synder M, Herbert B, Tran DK, Stoval RT, Johnson JL, Biffl WL, Barnett CC, Cothren-Burlew C, Fox C, Jurkovich GJ, Moore EE. A prospective, controlled clinical evaluation of surgical stabilization of severe rib fractures. Journal of Trauma and Acute Care Surgery, 2016;80:187–194.
  • [27] Sikes JW, Smith BR, Mukherjee DP, Coward KA. Comparison of fixation strengths of locking head and conventional screws, in fracture and reconstruction models. Journal of Oral and Maxillofacial Surgery, 1998;56:468–473.
  • [28] Suk S-I, Kim J-H, Kim S-S, Lee J-J, Han Y-T. Thoracoplasty in Thoracic Adolescent Idiopathic Scoliosis. Spine (Phila Pa 1976), 2008;33:1061–1067.
  • [29] Takahashi H, Frost HM. Age and Sex-Related Changes in the Amount of Cortex of Normal Human Ribs. Acta Orthop Scand, 1966;37:122–130.
  • [30] Tanaka H, Yukioka T, Yamaguti Y, Shimizu S, Goto H, Matsuda H, Shimazaki S. Surgical Stabilization or Internal Pneumatic Stabilization? A Prospective Randomized Study of Management of Severe Flail Chest Patients. The Journal of Trauma: Injury, Infection, and Critical Care, 2002;52:727–732.
  • [31] Taylor BC, French BG, Fowler TT. Surgical Approaches for Rib Fracture Fixation. J Orthop Trauma, 2013;27:e168–e173.
  • [32] Wang X, Shen X, Li X, Mauli Agrawal C. Age-related changes in the collagen network and toughness of bone. Bone, 2002;31:1–7.
  • [33] Zioupos P, Currey JD. Changes in the Stiffness, Strength, and Toughness of Human Cortical Bone With Age. Bone, 1998;22:57–66.
  • [34] DePuy Synthes Trauma. MatrixRib. Surgical Technique Guide. Link. Accessed 11 403 Sep 2023.
  • [35] ChM 40ChLP-plates-for-ribs. Link. Accessed 11 Sep 2023.
Uwagi
Brak numeracji stron
Opracowanie rekordu ze środków MNiSW, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2024).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-457e4330-d3cf-4e47-9b18-eac1b9c3ee20
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