Study of the Structure of Hyperbranched Polyglycerol Coatings and Their Antibiofouling and Antithrombotic Applications

Author:

Moore Eli1,Robson Alexander J.2ORCID,Crisp Amy R.3ORCID,Cockshell Michaelia P.1,Burzava Anouck L. S.4,Ganesan Raja1,Robinson Nirmal15,Al‐Bataineh Sameer6,Nankivell Victoria7,Sandeman Lauren7,Tondl Markus1,Benveniste Glen8,Finnie John W.5,Psaltis Peter J.579,Martocq Laurine3ORCID,Quadrelli Alessio10,Jarvis Samuel P.10ORCID,Williams Craig11,Ramage Gordon12ORCID,Rehman Ihtesham U.13,Bursill Christina A.7,Simula Tony6,Voelcker Nicolas H.1415,Griesser Hans J.4,Short Robert D2ORCID,Bonder Claudine S.15

Affiliation:

1. Centre for Cancer Biology University of South Australia and SA Pathology Adelaide South Australia 5000 Australia

2. Department of Chemistry The University of Sheffield Dainton Building Brook Hill Sheffield S3 7HF UK

3. School of Engineering Lancaster University Lancaster LA1 4YW UK

4. Future Industries Institute University of South Australia Mawson Lakes South Australia 5095 Australia

5. Adelaide Medical School University of Adelaide Adelaide South Australia 5000 Australia

6. TekCyte Limited Mawson Lakes South Australia 5095 Australia

7. Vascular Research Centre Heart and Vascular Program Lifelong Health Theme South Australian Health and Medical Research Institute Adelaide South Australia 5000 Australia

8. Ashford Vascular Ashford South Australia 5035 Australia

9. Department of Cardiology Central Adelaide Local Health Network Adelaide South Australia 5000 Australia

10. Department of Physics Lancaster University Lancaster LA1 4YB UK

11. Microbiology Department Royal Lancaster Infirmary Lancaster LA1 4RP UK

12. Department of Nursing and Community Health Glasgow Caledonian University Glasgow G4 0BA UK

13. School of Medicine University of Central Lancashire Preston PR1 2HE UK

14. Monash Institute of Pharmaceutical Sciences Monash University Parkville Victoria 3052 Australia

15. Melbourne Centre for Nanofabrication Victorian Node of the Australian National Fabrication Facility Clayton Victoria 3168 Australia

Abstract

AbstractWhile blood‐contacting materials are widely deployed in medicine in vascular stents, catheters, and cannulas, devices fail in situ because of thrombosis and restenosis. Furthermore, microbial attachment and biofilm formation is not an uncommon problem for medical devices. Even incremental improvements in hemocompatible materials can provide significant benefits for patients in terms of safety and patency as well as substantial cost savings. Herein, a novel but simple strategy is described for coating a range of medical materials, that can be applied to objects of complex geometry, involving plasma‐grafting of an ultrathin hyperbranched polyglycerol coating (HPG). Plasma activation creates highly reactive surface oxygen moieties that readily react with glycidol. Irrespective of the substrate, coatings are uniform and pinhole free, comprising O─C─O repeats, with HPG chains packing in a fashion that holds reversibly binding proteins at the coating surface. In vitro assays with planar test samples show that HPG prevents platelet adhesion and activation, as well as reducing (>3 log) bacterial attachment and preventing biofilm formation. Ex vivo and preclinical studies show that HPG‐coated nitinol stents do not elicit thrombosis or restenosis, nor complement or neutrophil activation. Subcutaneous implantation of HPG coated disks under the skin of mice shows no evidence of toxicity nor inflammation.

Funder

Royal Adelaide Hospital Research Fund

European Regional Development Fund

Engineering and Physical Sciences Research Council

Publisher

Wiley

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