Abstract
Contact-active surfaces have been created by means of the layer-by-layer (LbL) modification technique, which is based on previous observations that cellulose fibers treated with polyelectrolyte multilayers with polyvinylamine (PVAm) are perfectly protected against bacteria. Several different cationic polyelectrolytes were applied, including PVAm, two different poly(diallyl dimethyl ammonium chloride) polymers and two different poly(allylamine hydrochloride) polymers. The polyelectrolytes were self-organized in one or three layers on cellulosic fibers in combination with polyacrylic acid by the LbL method, and their antibacterial activities were evaluated. The modified cellulose fibers showed remarkable bacterial removal activities and inhibited bacterial growth. It was shown that the interaction between bacteria and modified fibers is not merely a charge interaction because a certain degree of bacterial cell deformation was observed on the modified fiber surfaces. Charge properties of the modified fibers were determined based on polyelectrolyte titration and zeta potential measurements, and a correlation between high charge density and antibacterial efficiency was observed for the PVAm and PDADMAC samples. It was demonstrated that it is possible to achieve antibacterial effects by the surface modification of cellulosic fibers via the LbL technique with different cationic polyelectrolytes.
Acknowledgments
We thank the Chinese Scholarship Council for financial support and RISE Bioeconomy for technical support with the nitrogen analysis. Lars Wågberg acknowledges the Wallenberg Wood Science Centre at KTH Royal Institute of Technology for financial support.
References
Advincula, R. (2006) Polymer brushes by anionic and cationic surface-initiated polymerization (SIP). In: Surface-Initiated Polymerization I. Ed. R. Jordan. Springer Berlin Heidelberg.Suche in Google Scholar
Alonso, T., Irigoyen, J., Iturri, J., Moya, S. (2013) Study of the multilayer assembly and complex formation of poly (diallyldimethylammonium chloride)(PDADMAC) and poly (acrylic acid)(PAA) as a function of pH. Soft Matter 9:1920–1928.10.1039/C2SM26884ASuche in Google Scholar
Andreasson, B., Wågberg, L. (2009) On the mechanisms behind the action of wet strength and wet strength agents. In: Pulp and Paper Chemistry and Technology: Paper Products Physics and Technology. Eds. Ek, M., Gellerstedt, G., Henriksson, G. de Gruyter, Berlin, pp. 185–208.10.1515/9783110213461.185Suche in Google Scholar
Bagheri, M., Michael, B., Margitta, D. (2009) Immobilization reduces the activity of surface-bound cationic antimicrobial peptides with no influence upon the activity spectrum. Antimicrob. Agents Chemother. 53:1132–1141.10.1128/AAC.01254-08Suche in Google Scholar PubMed PubMed Central
Bieser, A.M., Tiller, J.C. (2011) Mechanistic considerations on contact‐active antimicrobial surfaces with controlled functional group densities. Macromol. Biosci. 11:526–534.10.1002/mabi.201000398Suche in Google Scholar PubMed
Bieser, A.M., Yi, T., Tiller, J.C. (2011) Contact‐active antimicrobial and potentially self‐polishing coatings based on cellulose. Macromol. Biosci. 11:111–121.10.1002/mabi.201000306Suche in Google Scholar PubMed
Chang, M.M., Terry, Y.C., George, T.T. (1981) Structure, pretreatment and hydrolysis of cellulose. Bioenergy. Springer, Berlin, Heidelberg, pp. 15–42.10.1515/9783112576144-003Suche in Google Scholar
Chen, C.Z., Beck-Tan, N.C.D., Prasad, D., Tina, K., LaRossa, R.A.C., Stuart L. (2000) Quaternary ammonium functionalized poly(propylene imine) dendrimers as effective antimicrobials: structure–activity studies. Biomacromolecules 1:473–480.10.1021/bm0055495Suche in Google Scholar PubMed
Dammak, A., Moreau, C., Beury, N., Schwikal, K., Winter, H.T., Bonnin, E., Saake, B., Cathala, B. (2013) Elaboration of multilayered thin films based on cellulose nanocrystals and cationic xylans: application to xylanase activity detection. Holzforschung 67:579–586.10.1515/hf-2012-0176Suche in Google Scholar
Dickson, J., Koohmaraie, M. (1989) Cell surface charge characteristics and their relationship to bacterial attachment to meat surfaces. Appl. Environ. Microbiology 55:832–836.10.1128/aem.55.4.832-836.1989Suche in Google Scholar PubMed PubMed Central
Dubas, S.T., Schlenoff, J.B. (2001) Swelling and smoothing of polyelectrolyte multilayers by salt. Langmuir 17:7725–7727.10.1021/la0112099Suche in Google Scholar
Eriksson, M., Notley, S.M., Wågberg, L. (2005) The influence on paper strength properties when building multilayers of weak polyelectrolytes onto wood fibres. J. Colloid. Interface Sci. 292:38–45.10.1016/j.jcis.2005.05.058Suche in Google Scholar PubMed
Fuchs, A.D., Tiller, J.C. (2006) Contact-active antimicrobial coatings derived from aqueous suspensions. Angew. Chem. Int. Ed. Engl. 45:759–762.10.1002/anie.200602738Suche in Google Scholar PubMed
Hoque, J., Akkapeddi, P., Yadav, V., Manjunath, G.B., Uppu, D.S., Konai, M.M., Yarlagadda, V., Sanyal, K., Haldar, J. (2015) Broad spectrum antibacterial and antifungal polymeric paint materials: synthesis, structure-activity relationship, and membrane-active mode of action. ACS Appl. Mater. Interfaces 7:1804–1815.10.1021/am507482ySuche in Google Scholar PubMed
Hou, A., Zhou, M., Wang, X. 2009. Preparation and characterization of durable antibacterial cellulose biomaterials modified with triazine derivatives. Carbohydrate Polym. 75:328–332.10.1016/j.carbpol.2008.07.032Suche in Google Scholar
Illergård, J., Enarsson, L.E., Wågberg, L., Ek, M. (2010) Interactions of hydrophobically modified polyvinylamines: adsorption behavior at charged surfaces and the formation of polyelectrolyte multilayers with polyacrylic acid. ACS Appl. Mater. Interfaces 2:425–433.10.1021/am9006879Suche in Google Scholar PubMed
Illergård, J., Wågberg, L., Ek, M. (2011) Bacterial-growth inhibiting properties of multilayers formed with modified polyvinylamine. Colloids Surf. B Biointerfaces 88:115–120.10.1016/j.colsurfb.2011.06.023Suche in Google Scholar PubMed
Illergård, J., Römling, U., Wågberg, L., Ek, M. (2012) Biointeractive antibacterial fibres using polyelectrolyte multilayer modification. Cellulose 19:1731–1741.10.1007/s10570-012-9742-0Suche in Google Scholar
Illergård, J., Römling, U., Wågberg, L., Ek, M. (2013) Tailoring the effect of antibacterial polyelectrolyte multilayers by choice of cellulosic fiber substrate. Holzforschung 67:573–578.10.1515/hf-2012-0191Suche in Google Scholar
Illergård, J., Wågberg, L., Ek, M. (2015) Contact-active antibacterial multilayers on fibres: a step towards understanding the antibacterial mechanism by increasing the fibre charge. Cellulose 22:2023–2034.10.1007/s10570-015-0629-8Suche in Google Scholar
Katz, S., Beatson, R.P. (1984) The determination of strong and weak acidic groups in sulfite pulps. Svensk Papperstid. 87:48–53.Suche in Google Scholar
Kharlampieva, E., Sukhishvili, S.A. (2003) Ionization and pH stability of multilayers formed by self-assembly of weak polyelectrolytes. Langmuir 19:1235–1243.10.1021/la026546bSuche in Google Scholar
Kugler, R., Bouloussa, O., Rondelez, F. (2005) Evidence of a charge-density threshold for optimum efficiency of biocidal cationic surfaces. Microbiology 151:1341–1348.10.1099/mic.0.27526-0Suche in Google Scholar PubMed
Li, Y., Yang, D., Huang, Q., Li, R. (2016) Modified sodium lignosulfonates (NaLS) with straight chain alcohols and their aggregation behavior and adsorption characteristics on solid surfaces. Holzforschung 70:1023–1030.10.1515/hf-2016-0011Suche in Google Scholar
Lichter, J.A., Rubner, M.F. (2009a) Polyelectrolyte multilayers with intrinsic antimicrobial functionality: the importance of mobile polycations. Langmuir 25:7686–7694.10.1021/la900349cSuche in Google Scholar PubMed
Lichter, J.A., Van V., Krystyn, J., Rubner, M.F. (2009b) Design of antibacterial surfaces and interfaces: polyelectrolyte multilayers as a multifunctional platform. Macromolecules 42:8573–8586.10.1021/ma901356sSuche in Google Scholar
Lu, J., Xiao, C. (2007) Synthesis, characterization and antibacterial activity of poly (dimethyldiallyl ammonium) chloride. J. Wuhan Univ. Nat. Sci. Ed. 53:397.Suche in Google Scholar
Lu, Y., Sun, J., Shen, J. (2008a) Cell adhesion properties of patterned poly(acrylic acid)/poly(allylamine hydrochloride) multilayer films created by room-temperature imprinting technique. Langmuir 24:8050–8055.10.1021/la800998nSuche in Google Scholar PubMed
Lu, J., Wang, X., Xiao, C. (2008b) Preparation and characterization of konjac glucomannan/poly(diallydimethylammonium chloride) antibacterial blend films. Carbohydrate Polym. 73:427–437.10.1016/j.carbpol.2007.12.021Suche in Google Scholar
Melo, L.D., Mamizuka, E.M., Carmona-Ribeiro, A.M. (2010) Antimicrobial particles from cationic lipid and polyelectrolyte. Langmuir 26:12300–12306.10.1021/la101500sSuche in Google Scholar PubMed
Murata, H., Koepsel, R.R., Matyjaszewski, K., Russell, A.J. (2007). Permanent, non-leaching antibacterial surface-2: how high density cationic surfaces kill bacterial cells. Biomaterials 28:4870–4879.10.1016/j.biomaterials.2007.06.012Suche in Google Scholar PubMed
Mustafa, K., Blanca S.L., Kjeil H., Wennerberg, A., Arvidson, K. (1998) Attachment and proliferation of human oral fibroblasts to titanium surfaces blasted with TiO2 particles. A scanning electron microscopic and histomorphometric analysis. Clinical Oral Implants Res. 9:195–207.10.1034/j.1600-0501.1998.090307.xSuche in Google Scholar PubMed
Notley, S.M., Simon, C., Vincent, S.J., Wågberg, L. (2004) Adsorbed layer structure of a weak polyelectrolyte studied by colloidal probe microscopy and QCM-D as a function of pH and ionic strength. Physical Chem. Chemical Physics 6:2379–2286.10.1039/B401376JSuche in Google Scholar
Qian, L., Dong, C., Liang, X., He, B., Xiao, H. (2014) Polyelectrolyte complex containing antimicrobial guanidine-based polymer and its adsorption on cellulose fibers. Holzforschung 68:103–111.10.1515/hf-2012-0206Suche in Google Scholar
Rao, X., Liu, Y., Fu, Y., Liu, Y., Yu, H. (2015) Formation and properties of polyelectrolytes/TiO2 composite coating on wood surfaces through layer-by-layer assembly method. Holzforschung 70:361–367.10.1515/hf-2015-0047Suche in Google Scholar
Roy, D., Knapp, J.S., Guthrie, J.T., Perrier, S. (2007) Antibacterial cellulose fiber via RAFT surface graft polymerization. Biomacromolecules 9:91–99.10.1021/bm700849jSuche in Google Scholar
Siedenbiedel, F., Fuchs, A., Moll, T., Weide, M., Breves, R., Tiller, J.C. (2013) Star‐shaped poly (styrene)‐block‐poly (4‐vinyl‐N‐methylpyridiniumiodide) for semipermanent antimicrobial coatings. Macromol. Biosci. 13:1447–1455.10.1002/mabi.201300219Suche in Google Scholar
Sütterlin, S.E., Petra, S., Linus, M., Thomas, M., Björn, Å. (2014) Silver resistance genes are overrepresented among Escherichia coli isolates with CTX-M production. Appl. Environ. Microbiology 80:6863–6869.10.1128/AEM.01803-14Suche in Google Scholar
Terada, A., Yuasa, A., Kushimoto, T., Tsuneda, S., Katakai, A., Tamada, M. (2006) Bacterial adhesion to and viability on positively charged polymer surfaces. Microbiology 152:3575–3583.10.1099/mic.0.28881-0Suche in Google Scholar
Thompson, M.T.B., Michael, C.T., Irene, S.R., Michael, F., Van, V., Krystyn, J. (2005). Tuning compliance of nanoscale polyelectrolyte multilayers to modulate cell adhesion. Biomaterials 26:6836–6845.10.1016/j.biomaterials.2005.05.003Suche in Google Scholar
Tiller, J.C., Liao, C., Lewis, K., Klibanov, A.M. (2001) Designing surfaces that kill bacteria on contact. Proc. Nat. Academy Sci. 98:5981–5985.10.1073/pnas.111143098Suche in Google Scholar
Tiller, J.C., Lee, S., Lewis, K., Klibanov, A.M. (2002) Polymer surfaces derivatized with poly (vinyl‐N‐hexylpyridinium) kill airborne and waterborne bacteria. Biotechn. Bioeng. 79:465–471.10.1002/bit.10299Suche in Google Scholar
Wågberg, L., Björklund, M. (1993a) Adsorption of cationic potato starch on cellulosic fibres. Nordic Pulp Paper Res. J 8:53–58.10.3183/npprj-1993-08-04-p399-404Suche in Google Scholar
Wågberg, L., Hägglund, R. (2001b) Kinetics of polyelectrolyte adsorption on cellulosic fibers. Langmuir 17:1096–1103.10.1021/la000629fSuche in Google Scholar
Wågberg, L., Ödberg, L., Lindström, T., Aksberg R. (1988) Kinetics of adsorpton and ion-exchange reactions during adsorption of cationic polyelectrolytes onto cellulosic fibers. J. Colloid. Interface Sci. 123:287–295.10.1016/0021-9797(88)90245-7Suche in Google Scholar
Wågberg, L., Odberg, L., Glad, N.G. (1989) Charge determination of porous substrates by polyelectrolyte adsorption Part 1. Carboxymethylated bleached cellulosic fibres. Nordic Pulp Paper Res. J. 4:71–76.10.3183/npprj-1989-04-02-p071-076Suche in Google Scholar
Xiong, W., Qiu, X., Zhong, R., Yang, D. (2016) Characterization of the adsorption properties of a phosphorylated kraft lignin-based polymer at the solid/liquid interface by the QCM-D approach. Holzforschung 70:937–945.10.1515/hf-2015-0226Suche in Google Scholar
©2017 Walter de Gruyter GmbH, Berlin/Boston
Artikel in diesem Heft
- Frontmatter
- Editorial
- Editorial
- Original Articles
- About structural changes of lignin during kraft cooking and the kinetics of delignification
- Utilization of lignin powder for manufacturing self-binding HDF
- Consecutive determination of softwood kraft lignin structure and molar mass from NMR measurements
- Production of hemicellulose oligomers from softwood chips using autohydrolysis followed by an enzymatic post-hydrolysis
- Morphological features of aerogels and carbogels based on lignosulfonates
- Wood based activated carbons for supercapacitor electrodes with sulfuric acid electrolyte
- New insights into the decomposition mechanism of chlorine dioxide at alkaline pH
- Upgrading of commercial pulps to high-purity dissolving pulps by an ionic liquid-based extraction method
- Hardwood kraft pulp structural features affecting refinability
- Brightness stability of eucalyptus-dissolving pulps: effect of the bleaching sequence
- Cellulose fiber based fungal and water resistant insulation materials
- Biomass conversion into blow-in heat insulation materials by steam explosion
- Effect of cationic polyelectrolytes in contact-active antibacterial layer-by-layer functionalization
- Nanocelluloses obtained by ammonium persulfate (APS) oxidation of bleached kraft pulp (BKP) and bacterial cellulose (BC) and their application in biocomposite films together with chitosan
- Volatile terpene extraction of spruce, fir and maritime pine wood: supercritical CO2 extraction compared to classical solvent extractions and steam distillation
- Protective effects of proanthocyanidins extracts from the bark of deciduous trees in lipid systems
- Short Notes
- Steam explosion treatments of technical hydrolysis lignin
- Moisture absorption properties of hardwood veneers modified by a sol-gel process
Artikel in diesem Heft
- Frontmatter
- Editorial
- Editorial
- Original Articles
- About structural changes of lignin during kraft cooking and the kinetics of delignification
- Utilization of lignin powder for manufacturing self-binding HDF
- Consecutive determination of softwood kraft lignin structure and molar mass from NMR measurements
- Production of hemicellulose oligomers from softwood chips using autohydrolysis followed by an enzymatic post-hydrolysis
- Morphological features of aerogels and carbogels based on lignosulfonates
- Wood based activated carbons for supercapacitor electrodes with sulfuric acid electrolyte
- New insights into the decomposition mechanism of chlorine dioxide at alkaline pH
- Upgrading of commercial pulps to high-purity dissolving pulps by an ionic liquid-based extraction method
- Hardwood kraft pulp structural features affecting refinability
- Brightness stability of eucalyptus-dissolving pulps: effect of the bleaching sequence
- Cellulose fiber based fungal and water resistant insulation materials
- Biomass conversion into blow-in heat insulation materials by steam explosion
- Effect of cationic polyelectrolytes in contact-active antibacterial layer-by-layer functionalization
- Nanocelluloses obtained by ammonium persulfate (APS) oxidation of bleached kraft pulp (BKP) and bacterial cellulose (BC) and their application in biocomposite films together with chitosan
- Volatile terpene extraction of spruce, fir and maritime pine wood: supercritical CO2 extraction compared to classical solvent extractions and steam distillation
- Protective effects of proanthocyanidins extracts from the bark of deciduous trees in lipid systems
- Short Notes
- Steam explosion treatments of technical hydrolysis lignin
- Moisture absorption properties of hardwood veneers modified by a sol-gel process