RSS-Feed abonnieren
DOI: 10.1055/s-0043-101723
Intramedulläre Stabilisierung und Augmentation mit unter Licht polymerisierendem Methylmethacrylat
Intramedullary Stabilization and Augmentation with Light-polymerised Methyl MethacrylatePublikationsverlauf
Publikationsdatum:
23. Juni 2017 (online)

Zusammenfassung
Ein neues Verfahren ermöglicht durch das Einspritzen eines Monomers in einen minimalinvasiv intramedullär eingebrachten Ballon mit anschließendem Auspolymerisieren unter Blaulicht die gezielte Stabilisierung und Augmentation insbesondere von osteoporotischen und/oder metastatischen Frakturen. An den oberen Extremitäten kann das ausgehärtete Methylmethacrylat als Stand-alone-Implantat zur Frakturstabilisierung dienen. Es eignet sich auch – vor allem an den unteren Extremitäten – zur intramedullären Augmentation z. B. einer winkelstabilen Plattenosteosynthese im Sinne einer verlängerten Verbundosteosynthese. Bisher gibt es nur wenige klinische Daten bez. dieses Verfahrens, es existieren vor allem Kongressberichte. Das Verfahren muss seinen Wert noch in größeren Fallserien und vergleichenden Studien unter Beweis stellen. Dennoch scheint es eine Option zur Verbesserung der Versorgung von Frakturen bei stark reduzierter Knochensubstanz darzustellen.
Abstract
A new method allows controlled polymerisation of bone cement within the medullary canal. It consists of the minimally invasive injection of a monomer which hardens under blue light. The method seems to be particularly useful in the treatment of osteoporotic and/or metastatic fractures. At the upper extremity it can be used as a stand-alone implant. However, the method is also useful for augmentation of extramedullary implants as angular stable plates. Very few clinical data are currently available, the procedure has to prove its value in larger case series and controlled studies. Nevertheless, this method seems to be an option for improving the treatment of fractures under strongly reduced bony purchase.
-
Literatur
- 1 Costa AG, Wyman A, Siris ES. et al. When, where and how osteoporosis-associated fractures occur: an analysis from the Global Longitudinal Study of Osteoporosis in Women (GLOW). PLoS One 2013; 8: e83306
- 2 Johnell O, Kanis JA. An estimate of the worldwide prevalence and disability associated with osteoporotic fractures. Osteoporos Int 2006; 17: 1726-1733
- 3 Hernlund E, Svedbom A, Ivergård M. et al. Osteoporosis in the European Union: medical management, epidemiology and economic burden. A report prepared in collaboration with the International Osteoporosis Foundation (IOF) and the European Federation of Pharmaceutical Industry Associations (EFPIA). Arch Osteoporos 2013; 8: 136
- 4 Ratasvuori M, Wedin R, Keller J. et al. Insight opinion to surgically treated metastatic bone disease: Scandinavian Sarcoma Group Skeletal Metastasis Registry report of 1195 operated skeletal metastasis. Surg Oncol 2013; 22: 132-138
- 5 Changulani M, Jain UK, Keswani T. Comparison of the use of the humerus intramedullary nail and dynamic compression plate for the management of diaphyseal fractures of the humerus. A randomised controlled study. Int Orthop 2007; 31: 391-395
- 6 Kammerlander C, Neuerburg C, Verlaan JJ. et al. The use of augmentation techniques in osteoporotic fracture fixation. Injury 2016; 47 (Suppl. 02) S36-S43
- 7 Larsson S, Bauer TW. Use of injectable calcium phosphate cement for fracture fixation: a review. Clin Orthop Relat Res 2002; 395: 23-32
- 8 Larsson S, Procter P. Optimising implant anchorage (augmentation) during fixation of osteoporotic fractures: is there a role for bone-graft substitutes?. Injury 2011; 42 (Suppl. 02) S72-S76
- 9 Mattsson P, Larsson S. Stability of internally fixed femoral neck fractures augmented with resorbable cement. A prospective randomized study using radiostereometry. Scand J Surg 2003; 92: 215-219
- 10 Wähnert D, Lange JH, Schulze M. et al. The potential of implant augmentation in the treatment of osteoporotic distal femur fractures: a biomechanical study. Injury 2013; 44: 808-812
- 11 Goetzen M, Nicolino T, Hofmann-Fliri L. et al. Metaphyseal screw augmentation of the LISS-PLT plate with polymethylmethacrylate improves angular stability in osteoporotic proximal third tibial fractures: a biomechanical study in human cadaveric tibiae. J Orthop Trauma 2014; 28: 294-299
- 12 Wähnert D, Lange JH, Schulze M. et al. A laboratory investigation to assess the influence of cement augmentation of screw and plate fixation in a simulation of distal femoral fracture of osteoporotic and non-osteoporotic bone. Bone Joint J 2013; 95-B: 1406-1409
- 13 Ross RD, Hamilton JL, Wilson BM. et al. Pharmacologic augmentation of implant fixation in osteopenic bone. Curr Osteoporos Rep 2014; 12: 55-64
- 14 Lind PJ, Degernes LA, Olson DE. et al. Bone cement/polypylene rod orthopedic technique. J Assoc Avian Vet 1989; 3: 203-205
- 15 Putney SD, Borman E, Lohse C. Methylmethacrylate fixation of avian humeral fractures. J Am Anim Hosp Assoc 1983; 19: 773-782
- 16 Kuzma AB, Hunter B. A new technique for avian fracture repair using intramedullary polymethylmethacrylate and bone plate fixation. J Am Anim Hosp Assoc 1991; 27: 239-248
- 17 Lobenhoffer P, Gerich T, Witte F. et al. Use of an injectable calcium phosphate bone cement in the treatment of tibial plateau fractures: a prospective study of twenty-six cases with twenty-month mean follow-up. J Orthop Trauma 2002; 16: 143-149
- 18 Schwabe P, Ruppert M, Tsitsilonis S. et al. Surgical management and outcome of skeletal metastatic disease of the humerus. Acta Chir Orthop Traumatol Cech 2014; 81: 365-370
- 19 Holz U. [Compound osteosynthesis in spontaneous femoral fractures]. Aktuelle Traumatol 1985; 15: 100-103
- 20 Friedl W, Ruf W, Mischkowsky T. [Compound double plate osteosynthesis in subtrochanteric pathologic fractures. A clinical and experimental study]. Chirurg 1986; 57: 713-718
- 21 Wessling M, Pflugmacher R, Müller MC. et al. [Basic principles of surgical treatment of bone metastases]. Z Orthop Unfall 2013; 151: 303-314
- 22 Mirzasadeghi A, Narayanan SS, Ng MH. et al. Intramedullary cement osteosynthesis (IMCO): a pilot study in sheep. Biomed Mater Eng 2014; 24: 2177-2186
- 23 Zani BG, Baird R, Stanley JR. et al. Evaluation of an intramedullary bone stabilization system using a light-curable monomer in sheep. J Biomed Mater Res B Appl Biomater 2016; 104: 291-299
- 24 Vegt P, Muir JM, Block JE. The Photodynamic Bone Stabilization System: a minimally invasive, percutaneous intramedullary polymeric osteosynthesis for simple and complex long bone fractures. Med Devices (Auckl) 2014; 12: 453-461
- 25 Gick S. Intramedullary Polymer Osteosynthesis (IlluminOss): Biomechanical comparative tests and initial clinical experience with metacarpal bone fractures. DGH-Congress (German Association for Surgery of the Hand) – Bonn, October 7, 2011.
- 26 Heck S, Gick S, Rabiner R. et al. Innovative intramedullary stabilization of metacarpal shaft fractures – initial clinical experiences with a photodynamic polymer (IlluminOss). DKOU 2011 (German Congress for Orthopedics and Accident Surgery) – Berlin, October 26, 2011.
- 27 Heck S. Treatment of fractures caused by osteoporosis. VSOU Baden-Baden (Association of South German Orthopedists and Trauma Surgeons) Annual Meeting, April 2012.
- 28 Hoffmann F, Gausepohl T. Minimally invasive stabilization of weber b fractures using intramedullary balloon stabilization (IlluminOss) in elderly patients. DKOU – German Congress of Orthopedics and Trauma Surgery, October 25, 2012.
- 29 Gausepohl T, Rashid A, Baluch M. et al. Ankle fracture fixation with a novel intramedullary photodynamic polymeric rod: a case series review. Orthopaedic Trauma Association 28th Annual Meeting, October 3 – 6, 2012.
- 30 Cohen MS, Whitman K. Calcium phosphate bone cement – the Norian skeletal repair system in orthopedic surgery. AORN J 1997; 65: 958-962
- 31 Simpson D, Keating JF. Outcome of tibial plateau fractures managed with calcium phosphate cement. Injury 2004; 35: 913-918
- 32 Theiss F, Apelt D, Brand B. et al. Biocompatibility and resorption of a brushite calcium phosphate cement. Biomaterials 2005; 26: 4383-4394
- 33 Link DP, van den Dolder J, van den Beucken JJ. et al. Evaluation of the biocompatibility of calcium phosphate cement/PLGA microparticle composites. J Biomed Mater Res A 2008; 87: 760-769