Biomedical Engineering Reference
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[27] V. Sehgal, V.S. Shetty, S. Mogra, G. Bhat, M. Eipe, S. Jacob, et al., Evaluation of antimicrobial and physi-
cal properties of orthodontic composite resin modified by addition of antimicrobial agents—an in-vitro
study, Am. J. Orthod. Dentofacial Orthop. 131 (4) (2007) 525.
[28] E.R. Kenawy, S.D. Worley, R. Broughton, The chemistry and applications of antimicrobial polymers: a
state-of-the-art review, Biomacromolecules 8 (5) (2007) 1359.
[29] M.J. Wicht, R. Haak, S. Kneist, M.J. Noack, A triclosan-containing compomer reduces Lactobacillus spp.
predominant in advanced carious lesions, Dent. Mater. 21 (9) (2005) 831.
[30] I. Cakmak, Z. Ulukanli, M. Tuzcu, S. Karabuga, K. Genctav, Synthesis and characterization of novel anti-
microbial cationic polyelectrolytes, Eur. Polym. J. 40 (10) (2004) 2373.
[31] T. Nonaka, E. Noda, S. Kurihara, Graft copolymerization of vinyl monomers bearing positive charges or
episulfide groups onto loofah fibers and their antibacterial activity, J. Appl. Polymer Sci. 77 (5) (2000)
1077.
[32] A.J. Isquith, E.A. Abbott, P.A. Walters, Surface-bonded antimicrobial activity of an organosilicon quater-
nary ammonium chloride, Appl. Micro. 24 (6) (1972) 859.
[33] G.J. Li, J.R. Shen, A study of pyridinium-type functional polymers. IV. Behavioral features of the antibacte-
rial activity of insoluble pyridinium-type polymers, J. Appl. Polymer Sci. 78 (3) (2000) 676.
[34] G.J. Li, J.R. Shen, Y.L. Zhu, A study of pyridinium-type functional polymers. III. Preparation and charac-
terization of insoluble pyridinium-type polymers, J. Appl. Polymer Sci. 78 (3) (2000) 668.
[35] T. keda, H. Yamaguchi, S. Tazuke, Phase-separation in phospholipid-bilayers induced by biologically-active
polycations, Biochim. Biophys. Acta 1026 (1) (1990) 105.
[36] J.C. Tiller, S.B. Lee, K. Lewis, A.M. Klibanov, Polymer surfaces derivatized with poly(vinyl- N -hexylpyri-
dinium) kill airborne and waterborne bacteria, Biotech. Bioeng. 79 (4) (2002) 465.
[37] J.C. Tiller, C.J. Liao, K. Lewis, A.M. Klibanov, Designing surfaces that kill bacteria on contact, Proc. Natl.
Acad. Sci. USA 98 (11) (2001) 5981.
[38] K. Lewis, A.M. Klibanov, Surpassing nature: rational design of sterile-surface materials, Trends Biotech. 23
(7) (2005) 343.
[39] J. Lin, S.Y. Qiu, K. Lewis, A.M. Klibanov, Bactericidal properties of flat surfaces and nanoparticles deriva-
tized with alkylated polyethylenimines, Biotech. Progress 18 (5) (2002) 1082.
[40] B. Gao, X. Zhang, Y. Zhu, Studies on the preparation and antibacterial properties of quaternized polyethyl-
eneimine, J. Biomater. Sci. Polymer Edn. 18 (2007) 531.
[41] A.A. Scheie, Modes of action of currently known chemical anti-plaque agents other than chlorhexidine, J.
Dent. Res. 68 (1989) 1609.
[42] N. Kawabata, M. Nishiguchi, Antibacterial activity of soluble pyridinium-type polymers, Appl. Environ.
Microbiol. 54 (1988) 2532.
[43] J. Lin, S.Y. Qiu, K. Lewis, A.M. Klibanov, Mechanism of bactericidal and fungicidal activities of textiles
covalently modified with alkylated polyethylenimine, Biotech Bioeng. 83 (2) (2003) 168.
[44] A.T.J. Nagaya, K. Miyasaka, Preparation and characterization of membranes with positively charged main
chain from polyethyleneimine, J. Appl. Polymer Sci. 48 (1993) 1441.
[45] I. Yudovin-Farber, N. Beyth, E.I. Weiss, A.J. Domb, Antibacterial effect of composite resins contain-
ing quaternary ammonium polyethyleneimine nanoparticles, J. Nanopart. Res. (2009). DOI 10.1007/
s11051-009-9628-8
[46] B. Gao, X. Zhang, J. Wang, Mater preparation and antibacterial characteristic of water-insoluble antibacte-
rial material QPEI/SiO 2 , J. Mater. Sci. Med. 19 (9) (2008) 3021.
[47] I. Yudovin-Farber, N. Beyth, A. Nyska, E.I. Weiss, J. Golenser, A.J. Domb, Surface characterization and
biocompatibility of restorative resin containing nanoparticles, Biomacromolecules 9 (11) (2008) 3044.
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