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2018 | OriginalPaper | Chapter

12. Hemocompatibility

Authors : Vasif Hasirci, Nesrin Hasirci

Published in: Fundamentals of Biomaterials

Publisher: Springer New York

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Abstract

Hemocompatibility is a specific and advanced state of biocompatibility which is especially important for blood interfacing biomaterials. It is important due to its systemic consequences, mainly a blood clot traveling to distant sites and causing unforeseen problems. Any biomaterial which is shown to be biocompatible may not necessarily be hemocompatible, but a hemocompatible material has to be biocompatible. This is because the components in the blood and the processes that take place in it are so different than the rest of those in other tissues and that this issue deserves a separate treatment. In order to understand hemocompatibility, we should first look at the circulatory system and the elements of the circulatory system.

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Literature
1.
go back to reference Koeppen BM, Stanton BA (2008) Berne & Levy physiology, 6th edn. Elsevier, Philadelphia, PA Koeppen BM, Stanton BA (2008) Berne & Levy physiology, 6th edn. Elsevier, Philadelphia, PA
2.
go back to reference Pan Y, Zhou X, Zhao Q (2017) Small-diameter hybrid vascular grafts composed of polycaprolactone and polydioxanone fibers. Sci Rep 7:3615CrossRef Pan Y, Zhou X, Zhao Q (2017) Small-diameter hybrid vascular grafts composed of polycaprolactone and polydioxanone fibers. Sci Rep 7:3615CrossRef
3.
go back to reference Dean L (2005) Blood groups and red cell antigens. National Center for Biotechnology Information (US), Bethesda, MD Dean L (2005) Blood groups and red cell antigens. National Center for Biotechnology Information (US), Bethesda, MD
5.
go back to reference Courtesy of Electron Microscopy Facility at The National Cancer Institute at Frederick (NCI-Frederick) Courtesy of Electron Microscopy Facility at The National Cancer Institute at Frederick (NCI-Frederick)
6.
go back to reference Romney G, Glick M (2009) An updated concept of coagulation with clinical implications. J Am Dent Assoc 140(5):567–574CrossRef Romney G, Glick M (2009) An updated concept of coagulation with clinical implications. J Am Dent Assoc 140(5):567–574CrossRef
7.
go back to reference Thasneem YM, Sajeesh S, Sharma CP (2011) Effect of thiol functionalization on the hemocompatibility of PLGA nanoparticles. J Biomed Mater Res Part A 99A:607–617CrossRef Thasneem YM, Sajeesh S, Sharma CP (2011) Effect of thiol functionalization on the hemocompatibility of PLGA nanoparticles. J Biomed Mater Res Part A 99A:607–617CrossRef
8.
go back to reference Jin J, Zhang C, Jiang W, Luan S, Yang H, Yin J, Stagnaro P (2012) Melting grafting polypropylene with hydrophilic monomers for improving hemocompatibility. Colloids Surf A Physicochem Eng Asp 407:141–149CrossRef Jin J, Zhang C, Jiang W, Luan S, Yang H, Yin J, Stagnaro P (2012) Melting grafting polypropylene with hydrophilic monomers for improving hemocompatibility. Colloids Surf A Physicochem Eng Asp 407:141–149CrossRef
9.
go back to reference Zhao ML, Li DJ, Guo MX, Zhang YT, Gu HQ, Deng XY, Wan RX, Sun X (2013) The different N concentrations induced cytocompatibility and hemocompatibility of MWCNTs with CNx coatings. Surf Coat Technol 229:90–96CrossRef Zhao ML, Li DJ, Guo MX, Zhang YT, Gu HQ, Deng XY, Wan RX, Sun X (2013) The different N concentrations induced cytocompatibility and hemocompatibility of MWCNTs with CNx coatings. Surf Coat Technol 229:90–96CrossRef
10.
go back to reference Sperling C, Schweiss RB, Streller U, Werner C (2005) In vitro hemocompatibility of self-assembled monolayers displaying various functional groups. Biomaterials 26(33):6547–6557CrossRef Sperling C, Schweiss RB, Streller U, Werner C (2005) In vitro hemocompatibility of self-assembled monolayers displaying various functional groups. Biomaterials 26(33):6547–6557CrossRef
11.
go back to reference Ishihara IK (1991) Suppression of protein adsorption on the polymers having phospholipid polar group. J Jpn Soc Biomater 9:296–302 Ishihara IK (1991) Suppression of protein adsorption on the polymers having phospholipid polar group. J Jpn Soc Biomater 9:296–302
12.
go back to reference Ishihara IK, Aragaki R, Ueda T, Watenabe A, Nakabayashi N (1990) Reduced thrombogenicity of polymers having phospholipid polar group. J Biomed Mater Res 24(8):1069–1077CrossRef Ishihara IK, Aragaki R, Ueda T, Watenabe A, Nakabayashi N (1990) Reduced thrombogenicity of polymers having phospholipid polar group. J Biomed Mater Res 24(8):1069–1077CrossRef
13.
go back to reference Nonckreman CJ, Fleith S, Rouxhet PG, Dupont-Gillain CC (2010) Competitive adsorption of fibrinogen and albumin and blood platelet adhesion on surfaces modified with nanoparticles and/or PEO. Colloids Surf B: Biointerfaces 77:139–149CrossRef Nonckreman CJ, Fleith S, Rouxhet PG, Dupont-Gillain CC (2010) Competitive adsorption of fibrinogen and albumin and blood platelet adhesion on surfaces modified with nanoparticles and/or PEO. Colloids Surf B: Biointerfaces 77:139–149CrossRef
14.
go back to reference Forti S, Lunelli L, Volpe CD et al (2011) Hemocompatibility of pyrolytic carbon in comparison with other biomaterials. Diam Relat Mater 20:762–769CrossRef Forti S, Lunelli L, Volpe CD et al (2011) Hemocompatibility of pyrolytic carbon in comparison with other biomaterials. Diam Relat Mater 20:762–769CrossRef
15.
go back to reference Zhang C, Jin J, Zhao J, Jiang W, Yin J (2013) Functionalized polypropylene non-woven fabric membrane with bovine serum albumin and its hemocompatibility enhancement. Colloids Surf B: Biointerfaces 102:45–52CrossRef Zhang C, Jin J, Zhao J, Jiang W, Yin J (2013) Functionalized polypropylene non-woven fabric membrane with bovine serum albumin and its hemocompatibility enhancement. Colloids Surf B: Biointerfaces 102:45–52CrossRef
16.
go back to reference Mohan CC, Chennazhi KP, Menon D (2013) In vitro hemocompatibility and vascular endothelial cell functionality on titania nanostructures under static and dynamic conditions for improved coronary stenting applications. Acta Biomater 9:9568–9577CrossRef Mohan CC, Chennazhi KP, Menon D (2013) In vitro hemocompatibility and vascular endothelial cell functionality on titania nanostructures under static and dynamic conditions for improved coronary stenting applications. Acta Biomater 9:9568–9577CrossRef
Metadata
Title
Hemocompatibility
Authors
Vasif Hasirci
Nesrin Hasirci
Copyright Year
2018
Publisher
Springer New York
DOI
https://doi.org/10.1007/978-1-4939-8856-3_12

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