Comparing PMMA and calcium sulfate as carriers for the local delivery of antibiotics to infected surgical sites
Comparing PMMA and calcium sulfate as carriers for the local delivery of antibiotics to infected surgical sites
Antibiotic-loaded bone cement is a primary option for treatment of orthopedic infections. Poly(methyl methacrylate) (PMMA) is a widely used cement that, when loaded with antibiotics in spacer or bead form, has been shown to reduce infection rates. However, PMMA is not resorbable and requires a second surgery for removal, while also acting as a potential foreign body for bacterial colonization. Alternatively, resorbable bone cements, such as calcium sulfate, have been proposed and present the advantage of being completely reabsorbed. It is unknown whether the antibiotic elution characteristics of absorbable bone cements are similar to PMMA. This study (1) characterized antibiotic elution from synthetic, highly purified calcium sulfate cement beads of varying sizes against pathogenic bacteria both in liquid culture and seeded on agar plates, (2) tested calcium sulfate beads against PMMA beads loaded with the same antibiotics, and (3) analyzed the structural differences between how PMMA and calcium sulfate bind to antibiotics. In every assay, the calcium sulfate beads performed as well as, or better than, the PMMA beads in inhibition of bacterial growth and elution of vancomycin in vitro with complete elution observed from calcium sulfate within three days. These data suggest that calcium sulfate, functions, as well as PMMA in the patient setting for infection control.
McConoughey, Stephen J.
b42cc0dd-e1f1-40f0-b1f2-37b17c0a67ec
Howlin, Robert P.
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Wiseman, Jessica
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Stoodley, Paul
08614665-92a9-4466-806e-20c6daeb483f
Calhoun, Jason H.
4009eee3-d16a-474c-ad0b-97e0f6510e90
20 August 2014
McConoughey, Stephen J.
b42cc0dd-e1f1-40f0-b1f2-37b17c0a67ec
Howlin, Robert P.
8c2bdf0d-d6c1-4308-bd94-c8e81a24f527
Wiseman, Jessica
25e7baf9-1150-43a4-8786-5fc6ba3a1cb1
Stoodley, Paul
08614665-92a9-4466-806e-20c6daeb483f
Calhoun, Jason H.
4009eee3-d16a-474c-ad0b-97e0f6510e90
McConoughey, Stephen J., Howlin, Robert P., Wiseman, Jessica, Stoodley, Paul and Calhoun, Jason H.
(2014)
Comparing PMMA and calcium sulfate as carriers for the local delivery of antibiotics to infected surgical sites.
Journal of Biomedical Materials Research Part B: Applied Biomaterials.
(doi:10.1002/jbm.b.33247).
Abstract
Antibiotic-loaded bone cement is a primary option for treatment of orthopedic infections. Poly(methyl methacrylate) (PMMA) is a widely used cement that, when loaded with antibiotics in spacer or bead form, has been shown to reduce infection rates. However, PMMA is not resorbable and requires a second surgery for removal, while also acting as a potential foreign body for bacterial colonization. Alternatively, resorbable bone cements, such as calcium sulfate, have been proposed and present the advantage of being completely reabsorbed. It is unknown whether the antibiotic elution characteristics of absorbable bone cements are similar to PMMA. This study (1) characterized antibiotic elution from synthetic, highly purified calcium sulfate cement beads of varying sizes against pathogenic bacteria both in liquid culture and seeded on agar plates, (2) tested calcium sulfate beads against PMMA beads loaded with the same antibiotics, and (3) analyzed the structural differences between how PMMA and calcium sulfate bind to antibiotics. In every assay, the calcium sulfate beads performed as well as, or better than, the PMMA beads in inhibition of bacterial growth and elution of vancomycin in vitro with complete elution observed from calcium sulfate within three days. These data suggest that calcium sulfate, functions, as well as PMMA in the patient setting for infection control.
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Published date: 20 August 2014
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Local EPrints ID: 368265
URI: http://eprints.soton.ac.uk/id/eprint/368265
ISSN: 1552-4973
PURE UUID: e5c17202-71c3-4d50-8977-4e4713f18dc5
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Date deposited: 12 Sep 2014 13:59
Last modified: 15 Mar 2024 03:34
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Author:
Stephen J. McConoughey
Author:
Robert P. Howlin
Author:
Jessica Wiseman
Author:
Jason H. Calhoun
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