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A new technique for cement augmentation of the sliding hip screw in proximal femur fractures
JournalArticle (Originalarbeit in einer wissenschaftlichen Zeitschrift)
 
ID 1195952
Author(s) Stoffel, Karl K; Leys, Toby; Damen, Nikki; Nicholls, Rochelle L; Kuster, Markus S
Author(s) at UniBasel Stoffel, Karl
Kuster, Markus
Year 2008
Title A new technique for cement augmentation of the sliding hip screw in proximal femur fractures
Journal Clinical biochemistry
Volume 23
Number 1
Pages / Article-Number 45-51
Keywords femur, fracture, cement, augmentation, osteoporosis, biomechanics
Abstract BACKGROUND: Fractures of the osteoporotic proximal femur are a significant source of mortality and morbidity in today's ageing population. Even with modern fixation techniques such as the sliding hip screw, a certain percentage of fixations will fail due to cut-out of the screw. This study presents a new method for augmenting hip screws with cement to reinforce the fixation. METHODS: Unstable pertrochanteric fractures were created in paired osteoporotic cadaver femora (n=10). The fractures were fixed using either standard fixation techniques (dynamic hip screw), or using a dynamic hip screw augmented with cement. Cement was introduced using a customised jig to guide cement into a region superior to the screw in the femoral head. Cut-out resistance was assessed using a biaxial material testing machine, with loading applied in compression until failure. FINDINGS: The new cement augmentation technique significantly improved the cut-out strength of the fixation (mean 42%; P=0.032). The failure mechanism for both groups was the same, with failure occurring through compression of the cancellous bone superior to the screw. The mean increase in temperature at the femoral neck was 3.7 degrees C in augmented bones, which is much lower than values previously reported for polymethylmethacrylate cements. INTERPRETATION: Several benefits with this technique have emerged. The method is technically straightforward. The risk of cement penetration into the joint is reduced, and cement is targetted to the areas of the femoral head where it is most needed. The exothermic reaction is minimised by reducing the volume of cement used. The first clinical results are promising.
Publisher Elsevier
ISSN/ISBN 0009-9120
edoc-URL http://edoc.unibas.ch/dok/A6006131
Full Text on edoc No
Digital Object Identifier DOI 10.1016/j.clinbiomech.2007.08.014
PubMed ID http://www.ncbi.nlm.nih.gov/pubmed/17964016
ISI-Number WOS:000252629700007
Document type (ISI) Article
 
   

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