Literature DB >> 9361079

A carbon fiber reinforced polymer cage for vertebral body replacement: technical note.

P Ciappetta1, S Boriani, G P Fava.   

Abstract

OBJECTIVE: We analyzed the surgical technique used for the replacement of damaged vertebral bodies of the thoracolumbar spine and the carbon fiber reinforced polymer (CFRP) cages that are used to replace the pathological vertebral bodies. We also evaluated the biomechanical properties of carbon composite materials used in spinal surgery. TECHNIQUE: The surgical technique of CFRP implants may be divided into two distinct steps, i.e., assembling the components that will replace the pathological vertebral bodies and connecting the cage to an osteosynthetic system to immobilize the cage. INSTRUMENTATION: The CFRP cages, made of Ultrapek polymer and AS-4 pyrolytic carbon fiber (AcroMed, Rotterdam, The Netherlands), are of different sizes and may be placed one on top of the other and fixed together with a titanium rod. These components are hollow to allow fragments of bone to be pressed manually into them and present threaded holes at 15, 30, and 90 degrees on the external surface, permitting the insertion of screws to connect the cage to an anterior or posterior osteosynthetic system.
RESULTS: To date, we have used CFRP cages in 13 patients undergoing corporectomies and 10 patients undergoing spondylectomies. None of our patients have reported complications.
CONCLUSIONS: CFRP implants offer several advantages compared with titanium or surgical grade stainless steel implants, demonstrating high versatility and outstanding biological and mechanical properties. Furthermore, CFRP implants are radiolucent and do not hinder radiographic evaluation of bone fusion, allowing for better follow-up studies.

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Year:  1997        PMID: 9361079     DOI: 10.1097/00006123-199711000-00040

Source DB:  PubMed          Journal:  Neurosurgery        ISSN: 0148-396X            Impact factor:   4.654


  6 in total

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3.  Preclinical Evaluation of a Novel 3D-Printed Movable Lumbar Vertebral Complex for Replacement: In Vivo and Biomechanical Evaluation of Goat Model.

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4.  Feasibility of postoperative spine stereotactic body radiation therapy in proximity of carbon and titanium hybrid implants using a robotic radiotherapy device.

Authors:  Dominik Henzen; Daniel Schmidhalter; Gian Guyer; Anna Stenger-Weisser; Ekin Ermiş; Robert Poel; Moritz Caspar Deml; Michael Karl Fix; Peter Manser; Daniel Matthias Aebersold; Hossein Hemmatazad
Journal:  Radiat Oncol       Date:  2022-05-12       Impact factor: 4.309

5.  Comparison of long terms follow up results in patients with cervical disk disease treated with anterior PEEK cage implantation and without it in Rasoul Akram Hospital.

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Journal:  Med J Islam Repub Iran       Date:  2012-08

6.  Total enbloc spondylectomy for metastatic high grade spinal tumors: Early results.

Authors:  Sanganagouda S Patil; Abhay M Nene
Journal:  Indian J Orthop       Date:  2016 Jul-Aug       Impact factor: 1.251

  6 in total

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