4.6 Article

Haemocompatibility and ion exchange capability of nanocellulose polypyrrole membranes intended for blood purification

Journal

JOURNAL OF THE ROYAL SOCIETY INTERFACE
Volume 9, Issue 73, Pages 1943-1955

Publisher

ROYAL SOC
DOI: 10.1098/rsif.2012.0019

Keywords

nanocellulose; polypyrrole; haemodialysis; biocompatibility; heparin coating

Funding

  1. Swedish Research Council [621-2009-4626]
  2. Swedish Foundation for Strategic Research (SSF) [RMA08-0025]
  3. Nordic Innovation Center [10014]
  4. Bo Rydin Foundation
  5. Stiftelsen Lars Hiertas Minne
  6. Swedish Foundation for Strategic Research (SSF) [RMA08-0025] Funding Source: Swedish Foundation for Strategic Research (SSF)

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Composites of nanocellulose and the conductive polymer polypyrrole (PPy) are presented as candidates for a new generation of haemodialysis membranes. The composites may combine active ion exchange with passive ultrafiltration, and the large surface area (about 80 m(2)g(-1)) could potentially provide compact dialysers. Herein, the haemocompatibility of the novel membranes and the feasibility of effectively removing small uraemic toxins by potential-controlled ion exchange were studied. The thrombogenic properties of the composites were improved by applying a stable heparin coating. In terms of platelet adhesion and thrombin generation, the composites were comparable with haemocompatible polymer polysulphone, and regarding complement activation, the composites were more biocompatible than commercially available membranes. It was possible to extract phosphate and oxalate ions from solutions with physiological pH and the same tonicity as that of the blood. The exchange capacity of the materials was found to be 600 +/- 26 and 706 +/- 31 mu mol g(-1) in a 0.1 M solution (pH 7.4) and in an isotonic solution of phosphate, respectively. The corresponding values with oxalate were 523 +/- 5 in a 0.1 M solution (pH 7.4) and 610 +/- 1 mmol g(-1) in an isotonic solution. The heparinized PPy-cellulose composite is consequently a promising haemodialysis material, with respect to both potential-controlled extraction of small uraemic toxins and haemocompatibility.

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