Surgical and radiological behavior of MRI-depictable mesh implants after TAPP repair: the IRONMAN study
Author:
Publisher
Springer Science and Business Media LLC
Subject
Surgery
Link
http://link.springer.com/content/pdf/10.1007/s10029-019-02019-2.pdf
Reference13 articles.
1. Ciritsis A, Hansen NL, Barabasch A, Kuehnert N, Otto J, Conze J, Klinge U, Kuhl CK, Kraemer NA (2014) Time-dependent changes of magnetic resonance imaging-visible Mmesh implants in patients. Invest Radiol 49(7):439–444. https://doi.org/10.1097/RLI.0000000000000051
2. Kuehnert N, Kraemer NA, Otto J, Donker HC, Slabu I, Baumann M, Kuhl CK, Klinge U (2012) In vivo MRI visualization of mesh shrinkage using surgical implants loaded with superparamagnetic iron oxides. Surg Endosc 26(5):1468–1475. https://doi.org/10.1007/s00464-011-2057-7
3. Hansen NL, Barabasch A, Distelmaier M, Ciritsits A, Kuehnert N, Otto J, Conze J, Klinge U, Hilgers RD, Kuhl CK, Kraemer NA (2013) First in-human magnetic resonance visualization of surgical mesh implants for inguinal hernia treatment. Invest Radiol 48(11):770–779. https://doi.org/10.1097/RLI.0b013e31829806ce
4. Muysoms F, Beckers R, Kyle-Leinhase I (2018) Prospective cohort study on mesh shrinkage measured with MRI after laparoscopic ventral hernia repair with an intraperitoneal iron oxide-loaded PVDF mesh. Surg Endosc 32(6):2822–2830. https://doi.org/10.1007/s00464-017-5987-x
5. Köhler G, Pallwein-Prettner L, Koch OO, Luketina RR, Lechner M, Emmanuel K (2015) Magnetic resonance-visible meshes for laparoscopic ventral hernia repair. JSLS 19(1):e2014.00175. https://doi.org/10.4293/JSLS.2014.00175.
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