Calcium polyphosphate precipitation - A strategy to tune the chain length of the glass and control the subsequent release of vancomycin

P. A. Comeau, M. J. Filiaggi

Research output: Contribution to journalArticlepeer-review

6 Citations (Scopus)

Abstract

Using a multi-variable design approach this study sought to determine whether calcium polyphosphate (CPP) could be precipitated with a significantly higher chain length than achieved with conventional melt-derived glass and subsequently enhance the performance of the CPP-based drug delivery matrix. Manipulating aqueous sodium polyphosphate concentration, order of reactant addition, and Ca/P molar ratio at mix of reactants across a minimum of two levels was found to significantly influence the chain length, Ca/P ratio, and residual sodium of the resulting CPP precipitates. The various interactions of these three variables were also found to have a significant impact on the aforementioned properties of the precipitates and we successfully fabricated a precipitate with a 6-fold increase in chain length over that achieved by conventional melting. Despite not seeing a significant improvement in drug release properties, our systematic preparation of calcium polyphosphate from aqueous sodium polyphosphate solutions yielded valuable mechanistic data on this interesting fabrication strategy.

Original languageEnglish
Pages (from-to)56-63
Number of pages8
JournalMaterials Chemistry and Physics
Volume159
DOIs
Publication statusPublished - Jun 1 2015

Bibliographical note

Funding Information:
We'd like to acknowledge Dr. Ulrike Werner-Zwanziger from the NMR-3 at Dalhousie University and the Institute for Research in Materials for assistance in the acquisition of the NMR data. We are grateful to the Natural Sciences and Engineering Research Council for funding of this project and for support in the form of an Alexander Graham Bell Canadian Graduate scholarship.

Publisher Copyright:
© 2015 Elsevier B.V.

ASJC Scopus Subject Areas

  • General Materials Science
  • Condensed Matter Physics

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