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  2. Metallosis - Wikipedia

    en.wikipedia.org/wiki/Metallosis

    Metallosis. Metallosis is the medical condition involving deposition and build-up of metal debris in the soft tissues of the body. [1] Metallosis has been known to occur when metallic components in medical implants, specifically joint replacements, abrade against one another. [1] Metallosis has also been observed in some patients either ...

  3. 2010 DePuy Hip Recall - Wikipedia

    en.wikipedia.org/wiki/2010_DePuy_Hip_Recall

    The 2010 DePuy Hip Replacement Recall was instituted when DePuy Orthopaedics, Inc., a division of Johnson & Johnson, recalled its ASR XL Acetabular metal-on-metal hip replacement system on August 24, 2010. [1][2]

  4. Hip replacement - Wikipedia

    en.wikipedia.org/wiki/Hip_replacement

    D019644. MedlinePlus. 002975. [edit on Wikidata] Hip replacement is a surgical procedure in which the hip joint is replaced by a prosthetic implant, that is, a hip prosthesis. [1] Hip replacement surgery can be performed as a total replacement or a hemi/semi (half) replacement.

  5. 3D-printed titanium hips will last longer with less pain - AOL

    www.aol.com/news/2016-11-07-3d-printed-titanium...

    A mechanical engineering professor at McGill University has designed a new 3D-printed titanium hip replacement that will not only take the place of your aging femur, but can also fool the living ...

  6. DePuy Synthes - Wikipedia

    en.wikipedia.org/wiki/DePuy_Synthes

    DePuy Synthes (/ dəˈpjuː /) is a franchise of orthopaedic and neurosurgery companies. Acquired by Johnson & Johnson in 1998, its companies form part of the Johnson & Johnson Medical Devices group. DePuy develops and markets products under the Codman, DePuy Mitek, DePuy Orthopaedics and DePuy Spine brands.

  7. Titanium biocompatibility - Wikipedia

    en.wikipedia.org/wiki/Titanium_biocompatibility

    Biocompatibility. Titanium is considered the most biocompatible metal due to its resistance to corrosion from bodily fluids, bio-inertness, capacity for osseointegration, and high fatigue limit. Titanium's ability to withstand the harsh bodily environment is a result of the protective oxide film that forms naturally in the presence of oxygen.

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