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Articles

Study of the water structure in poly(methyl methacrylate-block-2-hydroxyethyl methacrylate) and its relationship to platelet adhesion on the copolymer surface

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Pages 750-765 | Received 16 Dec 2014, Accepted 27 May 2015, Published online: 30 Jun 2015

References

  • Okano T, Nishiyama S, Shinohara I, et al. Role of microphase separated structure on the interfacial interaction of polymer with blood. Artif. Organs. 1979;3Suppl:253–256.
  • Okano T, Nishiyama S, Shinohara I, et al. Effect of hydrophilic and hydrophobic microdomains on mode of interaction between block polymer and blood platelets. J. Biomed. Mater. Res. 1981;15:393–402. 10.1002/(ISSN)1097-4636
  • Okano T, Uruno M, Sugiyama N, et al. Suppression of platelet activity on microdomain surfaces of 2-hydroxyethyl methacrylate-polyether block copolymers. J. Biomed. Mater. Res. 1986;20:1035–1047. 10.1002/(ISSN)1097-4636
  • Nakashima T, Takakura K. Thromboresistance of graft-type copolymers with hydrophilic-hydrophobic microphase-separated structure. J. Biomed. Mater. Res. 1977;11:787–798. 10.1002/(ISSN)1097-4636
  • Kataoka K, Ito H, Amano H, et al. Minimized platelet interaction with poly(2-hydroxyethyl methacrylate-block-4-bis(trimethylsilyl)methylstyrene) hydrogel showing anomalously high free water content. J. Biomater. Sci., Polym. Ed. 1998;9:111–129. 10.1163/156856298X00460
  • Vermette P, Meagher L. Interactions of phospholipid- and poly(ethylene glycol)-modified surfaces with biological systems: relation to physico-chemical properties and mechanisms. Colloids Surf. B. 2003;28:153–198. 10.1016/S0927-7765(02)00160-1
  • Ishihara K, Aragaki R, Ueda T, et al. Reduced thrombogenicity of polymers having phospholipid polar groups. J. Biomed. Mater. Res. 1990;24:1069–1077. 10.1002/(ISSN)1097-4636
  • Kataoka K, Okano T, Akaike T, et al. Estimation of cell adhesion on polymer surfaces by the use of “column-method”. In: Winter GD, Gibbons DF, Plenk H Jr, editors. Advances in biomaterials. vol. 3, Biomaterials 1980. New York (NY): Wiley; 1982. p. 493–498.
  • Senshu K, Yamashita S, Ito M, et al. Surface characterization of 2-hydroxyethyl methacrylate/styrene block copolymers by transmission electron microscopic observation and contact angle measurement. Langmuir. 1995;11:2293–2300. 10.1021/la00006a070
  • Yoshikawa C, Goto A, Tsujii Y, et al. Protein repellency of well-defined, concentrated poly(2-hydroxyethyl methacrylate) brushes by size-exclusion effect. Macromolecules. 2006;39:2284–2290. 10.1021/ma0520242
  • Mei Y, Wu T, Xu C, et al. Tuning cell adhesion on gradient poly(2-hydroxyethyl methacrylate)-grafted surfaces. Langmuir. 2005;21:12309–12314. 10.1021/la050668x
  • Tsukagoshi T, Kondo Y, Yoshino N. Protein adsorption on polymer-modified silica particle surface. Colloids Surf. B. 2007;54:101–107. 10.1016/j.colsurfb.2006.10.004
  • Zhao C, Li L, Wang Q, et al. Effect of film thickness on the antifouling performance of poly(hydroxy-functional methacrylates) grafted surfaces. Langumuir. 2011;27:4906–4913. 10.1021/la200061h
  • Morra M, editor. Water in biomaterial surface science. New York (NY): Wiley; 2001.
  • Vogler EA. Water and the acute biological response to surfaces. J. Biomater. Sci., Polym. Ed. 1999;10:1015–1045. 10.1163/156856299X00667
  • Kitano H, Ichikawa K, Fukuda M, et al. The structure of water sorbed to polymethylmethacrylate film as examined by FT-IR spectroscopy. J. Colloid Interf. Sci. 2001;242:133–140. 10.1006/jcis.2001.7785
  • Ichikawa K, Mori T, Kitano H, et al. Fourier transform infrared study on the sorption of water to various kinds of polymer thin films. J. Polym. Sci. Part B Polym. Phys. 2001;39:2175–2182. 10.1002/(ISSN)1099-0488
  • Ide M, Mori T, Ichikawa K, et al. Structure of water sorbed into poly(MEA-co-HEMA) films as examined by ATR-IR spectroscopy. Langmuir. 2003;19:429–435. 10.1021/la020617p
  • Bajpai AK, Muditashrivastava M. Water sorption dynamics of a binary copolymeric hydrogel of 2-hydroxyethyl methacrylate (HEMA). J. Biomater. Sci., Polym. Ed. 2002;13:237–256. 10.1163/156856202320176501
  • Andrade JD, Lee HB, John MS, et al. Water as a biomaterial. Trans. Am. Soc. Intern. Organs. 1973;19:1–7. 10.1097/00002480-197301900-00001
  • Gracia C, Anderson JM, Bareneberg SA. Hemocompatibility: effect of structured water. Trans. Am. Soc. Intern. Organs. 1980;26:294–298.
  • Volger E. Biomaterials science: an introduction to materials in medicine. 2nd ed. London: Academic Press; 2004. In: Ratner BD, Hoffman AS, Schoen FJ, Lemons JE, editors. Chapter 1.5, Role of water in biomaterials; p. 59–65.
  • Tanaka M, Mochizuki A, Ishii N, et al. Study of blood compatibility with poly(2-methoxyethyl acrylate). Relationship between water structure and platelet compatibility in poly(2-methoxyethylacrylate-co-2-hydroxyethylmethacrylate). Biomacromolecules. 2002;3:36–41. 10.1021/bm010072y
  • Tanaka M, Mochizuki A. Clarification of blood compatibility mechanism by controlling water structure at the blood–poly(meth)acrylate Interface. J. Biomater. Sci., Polym. Ed. 2010;21:1849–1863. 10.1163/092050610X517220
  • Tanaka M, Motomura T, Ishii N, et al. Cold crystallization of water in hydrated poly(2-methoxyethyl acrylate). Polym. Int. 2000;49:1709–1713. 10.1002/(ISSN)1097-0126
  • Tanaka M, Mochizuki A. Effect of water structure on blood compatibility—thermal analysis of water in poly(meth)acrylate. J. Biomed. Mater. Res. A. 2004;68A:684–695. 10.1002/(ISSN)1097-4636
  • Hirota E, Ute K, Uehara M, et al. Study on blood compatibility with poly(2-methoxyethylacrylate)—relationship between surface structure, water structure, and platelet compatibility in 2-methoxyethylacrylate/2-hydroxyethylmethacrylate diblock copolymer. J. Biomed. Mater. Res. A. 2006;76A:540–550. 10.1002/(ISSN)1552-4965
  • Hirota E, Tanaka M, Mochizuki A. Relationship between blood compatibility and water structure—Comparative study between 2-methoxyethylacrylate- and 2-methoxyethylmethacrylate-based random copolymers. J. Biomed. Mater. Res. A. 2007;81A:710–719. 10.1002/(ISSN)1552-4965
  • Miwa Y, Ishida H, Saitô H, et al. Network structures and dynamics of dry and swollen poly(acrylate)s. Characterization of high- and low-frequency motions as revealed by suppressed or recovered intensities (SRI) analysis of 13C NMR. Polymer. 2009;50:6091–6099. 10.1016/j.polymer.2009.10.037
  • Miwa Y, Ishida H, Tanaka M, et al. 2H-NMR and 13C-NMR study of the hydration behavior of Poly(2-methoxyethyl acrylate), Poly(2-hydroxyethyl methacrylate) and Poly(tetrahydrofurfuryl acrylate) in relation to their blood compatibility as biomaterials. J. Biomater. Sci., Polym. Ed. 2010;21:1911–1924. 10.1163/092050610X489682
  • Weaver JVM, Bannister I, Robinson KL, et al. Stimulus-responsive water-soluble polymers based on 2-hydroxyethyl methacrylate. Macromolecules. 2004;37:2395–2403. 10.1021/ma0356358
  • Hirao A, Kato H, Yamaguchi K, et al. Polymerization of monomers containing functional groups protected by trialkylsilyl groups. 5. Synthesis of poly(2-hydroxyethyl methacrylate) with a narrow molecular weight distribution by means of anionic living polymerization. Macromolecules. 1986;19:1294–1299. 10.1021/ma00159a002
  • Weast RC, Astle MJ, Beyer WH. CRC handbook of chemistry and physics: a ready-reference book of chemical and physical data/Section 6, Fluid Properties. 74th ed. Cleveland (OH): CRC Press; 1993.
  • N’Diaye M, Pascaretti-Grizon F, Massin P, et al. Water absorption of poly(methyl methacrylate) measured by vertical interference microscopy. Langmuir. 2012;28:11609–11614. 10.1021/la302260a
  • Kishi A, Tanaka M, Mochiuzki A. Comparative study on water structures in polyHEMA and polyMEA by XRD-DSC simultaneous measurement. J. Appl. Polym. Sci. 2008;111:476–481.
  • Mochizuki A, Ogawa H, Nishimori Y. Water structure in poly(2-hydroxyethyl methacrylate): effect of molecular weight of poly(2-hydroxyethyl methacrylate) on its property related to water. J. Appl. Polym. Sci. 2012;125:53–60. 10.1002/app.v125.1
  • Tsuruta T. On the role of water molecules in the interface between biological systems and polymers. J. Biomater. Sci., Polym. Ed. 2010;21:1831–1848. 10.1163/092050610X488269

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