Publication Cover
Biofouling
The Journal of Bioadhesion and Biofilm Research
Volume 32, 2016 - Issue 6
1,127
Views
45
CrossRef citations to date
0
Altmetric
Articles

Charged hydrophilic polymer brushes and their relevance for understanding marine biofouling

, , , , , , , & show all
Pages 609-625 | Received 30 Nov 2015, Accepted 22 Mar 2016, Published online: 29 Apr 2016

References

  • Aldred N, Ekblad T, Andersson O, Liedberg B, Clare AS. 2011. Real-time quantification of microscale bioadhesion events in situ using imaging surface plasmon resonance (iSPR). ACS Appl Mater Inter. 3:2085–2091.
  • ASTM. 2013. Standard D1141 - 98(2013). Standard practice for the preparation of substitute ocean water. West Conshohocken, PA: ASTM International.
  • Atalah J, Bennett H, Hopkins GA, Forrest BM. 2013. Evaluation of the sea anemone Anthothoe albocincta as an augmentative biocontrol agent for biofouling on artificial structures. Biofouling. 29:559–571. doi:10.1080/08927014.2013.789503
  • Bereschenko LA, Stams AJM, Euverink GJW, van Loosdrecht MCM. 2010. Biofilm formation on reverse osmosis membranes is initiated and dominated by Sphingomonas spp. Appl Environ Microb. 76:2623–2632. doi:10.1128/AEM.01998-09
  • Bhadury P, Wright PC. 2004. Exploitation of marine algae: biogenic compounds for potential antifouling applications. Planta. 219:561–578.
  • Callow ME, Callow JE. 2002. Marine biofouling: a sticky problem. Biologist (London). 49:10–14.
  • Callow JA, Callow ME. 2011. Trends in the development of environmentally friendly fouling-resistant marine coatings. Nat Commun. 2; Article ID 244. doi:10.1038/ncomms1251
  • Callow ME, Callow JA, Pickett-Heaps JD, Wetherbee R. 1997. Primary adhesion of Enteromorpha (Chlorophyta, Ulvales) propagules: quantitative settlement studies and video microscopy. J Phycol. 33:938–947. doi:10.1111/j.0022-3646.1997.00938.x
  • Chang Y, Chen WY, Yandi W, Shih YJ, Chu WL, Liu YL, Chu CW, Ruaan RC, Higuchi A. 2009. Dual-thermoresponsive phase behavior of blood compatible zwitterionic copolymers containing nonionic poly(N-isopropyl acrylamide). Biomacromolecules. 10:2092–2100. doi:10.1021/bm900208u
  • Chang Y, Yandi W, Chen WY, Shih YJ, Yang CC, Chang Y, Ling QD, Higuchi A. 2010. Tunable bioadhesive copolymer hydrogels of thermoresponsive poly(N-isopropyl acrylamide) containing zwitterionic polysulfobetaine. Biomacromolecules. 11:1101–1110. doi:10.1021/bm100093g
  • Chapman RG, Ostuni E, Takayama S, Holmlin RE, Yan L, Whitesides GM. 2000. Surveying for surfaces that resist the adsorption of proteins. J Am Chem Soc. 122:8303–8304. doi:10.1021/ja000774f
  • Chen SF, Li LY, Zhao C, Zheng J. 2010. Surface hydration: principles and applications toward low-fouling/nonfouling biomaterials. Polymer. 51:5283–5293. doi:10.1016/j.polymer.2010.08.022
  • Christensen BE. 1989. The role of extracellular polysaccharides in biofilms. J Biotechnol. 10:181–202. doi:10.1016/0168-1656(89)90064-3
  • Clare AS, Hoeg JT. 2008. Balanus amphitrite or Amphibalanus amphitrite? A note on barnacle nomenclature. Biofouling. 24:55–57. doi:10.1080/08927010701830194
  • Di Fino A, Petrone L, Aldred N, Ederth T, Liedberg B, Clare AS. 2014. Correlation between surface chemistry and settlement behaviour in barnacle cyprids (Balanus improvisus). Biofouling. 30:143–152. doi:10.1080/08927014.2013.852541
  • Dobretsov S, Abed RMM, Teplitski M. 2013. Mini-review: inhibition of biofouling by marine microorganisms. Biofouling. 29:423–441. doi:10.1080/08927014.2013.776042
  • Ederth T, Nygren P, Pettitt ME, Ostblom M, Du C, Broo K, Callow ME, Callow J, Liedberg B. 2008. Anomalous settlement behavior of Ulva linza zoospores on cationic oligopeptide surfaces. Biofouling. 24:303–312. doi:10.1080/08927010802192650
  • Ederth T, Pettitt ME, Nygren P, Du CX, Ekblad T, Zhou Y, Falk M, Callow ME, Callow JA, Liedberg B. 2009. Interactions of zoospores of Ulva linza with arginine-rich oligopeptide monolayers. Langmuir. 25:9375–9383. doi:10.1021/la900688g
  • Ekblad T, Bergstroem G, Ederth T, Conlan SL, Mutton R, Clare AS, Wang S, Liu YL, Zhao Q, D’Souza F, et al. 2008. Poly(ethylene glycol)-containing hydrogel surfaces for antifouling applications in marine and freshwater environments. Biomacromolecules. 9:2775–2783. doi:10.1021/bm800547m
  • Ferreira L, Zumbuehl A. 2009. Non-leaching surfaces capable of killing microorganisms on contact. J Mater Chem. 19:7796–7806. doi:10.1039/b905668h
  • Fitridge I, Dempster T, Guenther J, de Nys R. 2012. The impact and control of biofouling in marine aquaculture: a review. Biofouling. 28:649–669. doi:10.1080/08927014.2012.700478
  • Fusetani N. 2004. Biofouling and antifouling. Nat Prod Rep. 21:94–104. doi:10.1039/b302231p
  • Guo QQ, Cai XB, Wang XL, Yang J. 2013. “Paintable” 3D printed structures via a post-ATRP process with antimicrobial function for biomedical applications. J Mater Chem B. 1:6644–6649. doi:10.1039/c3tb21415j
  • Hadfield MG. 2011. Biofilms and marine invertebrate larvae: what bacteria produce that larvae use to choose settlement sites. Ann Rev Mar Sci. 3:453–470. doi:10.1146/annurev-marine-120709-142753
  • Hadfield MG, Paul VJ. 2001. Natural chemical cues for settlement and metamorphosis of marine invertebrate larvae. In: McClintock JB, Baker BJ, editors. Marine chemical ecology. Boca Raton, FL: CRC Press; p. 431–461.
  • Hellio C, Yebra D, editors. 2009. Advances in marine antifouling caotings and technologies. Cambridge: Woodhead.
  • Ista LK, Fan HY, Baca O, Lopez GP. 1996. Attachment of bacteria to model solid surfaces: oligo(ethylene glycol) surfaces inhibit bacterial attachment. Fems Microbiol Lett. 142:59–63. doi:10.1111/fml.1996.142.issue-1
  • Ista LK, Perez-Luna VH, Lopez GP. 1999. Surface-grafted, environmentally sensitive polymers for biofilm release. Appl Environ Microb. 65:1603–1609.
  • Jansen JFGA, Dias AA, Dorschu M, Coussens B. 2003. Fast monomers: factors affecting the inherent reactivity of acrylate monomers in photoinitiated acrylate polymerization. Macromolecules. 36:3861–3873. doi:10.1021/ma021785r
  • Joint I, Tait K, Callow ME, Callow JA, Milton D, Williams P, Cámara M. 2002. Cell-to-cell communication across the prokaryote-eukaryote boundary. Science. 298:1207. doi:10.1126/science.1077075
  • Karamdoust S, Yu BY, Bonduelle CV, Liu Y, Davidson G, Stojcevic G, Yang J, Lau WM, Gillies ER. 2012. Preparation of antibacterial surfaces by hyperthermal hydrogen induced cross-linking of polymer thin films. J Mater Chem. 22:4881–4889. doi:10.1039/c2jm15814k
  • Kirschner CM, Brennan AB. 2012. Bio-inspired antifouling strategies. Annu Rev Mater Res. 42:211–229. doi:10.1146/annurev-matsci-070511-155012
  • Krishnan S, Finlay J, Hexemer A, Wang N, Ober C, Kramer EJ, Callow ME, Callow JA, Fischer D. 2005. Interaction of Ulva and Navicula marine algae with surfaces of pyridinium polymers with fluorinated side-chains. Abstr Pap Am Chem S. 230:U4290–U4291.
  • Larsson A, Ekblad T, Andersson O, Liedberg B. 2007. Photografted poly(ethylene glycol) matrix for affinity interaction studies. Biomacromolecules. 8:287–295. doi:10.1021/bm060685g
  • Lee SB, Koepsel RR, Morley SW, Matyjaszewski K, Sun YJ, Russell AJ. 2004. Permanent, nonleaching antibacterial surfaces. 1. synthesis by atom transfer radical polymerization. Biomacromolecules. 5:877–882. doi:10.1021/bm034352k
  • Lee HH, Ruzele Z, Malysheva L, Onipko A, Gutes A, Bjorefors F, Valiokas R, Liedberg B. 2009. Long-chain alkylthiol assemblies containing buried in-plane stabilizing architectures. Langmuir. 25:13959–13971. doi:10.1021/la901668u
  • Lee H, Son SH, Sharma R, Won Y-Y. 2011. A discussion of the ph-dependent protonation behaviors of poly(2-(dimethylamino)ethyl methacrylate) (PDMAEMA) and poly(ethylenimine-ran-2-ethyl-2-oxazoline) (P(EI-r-EOz)). J Phys Chem B. 115:844–860. doi:10.1021/jp109151s
  • Lei HY, Wang MM, Tang ZC, Luan YF, Liu W, Song B, Chen H. 2014. Control of lysozyme adsorption by pH on surfaces modified with polyampholyte brushes. Langmuir. 30:501–508. doi:10.1021/la403781s
  • Lejars M, Margaillan A, Bressy C. 2012. Fouling release coatings: a nontoxic alternative to biocidal antifouling coatings. Chemical Reviews. 112:4347–4390. doi:10.1021/cr200350v
  • Li P, Poon YF, Li WF, Zhu HY, Yeap SH, Cao Y, Qi XB, Zhou CC, Lamrani M, Beuerman RW, et al. 2011. A polycationic antimicrobial and biocompatible hydrogel with microbe membrane suctioning ability. Nat Mater. 10:149–156. doi:10.1038/nmat2915
  • Liu GM, Wu D, Ma CC, Zhang GZ, Wang HF, Yang SH. 2007. Insight into the origin of the thermosensitivity of poly[2-(dimethylamino)ethyl methacrylate]. ChemPhysChem. 8:2254–2259. doi:10.1002/(ISSN)1439-7641
  • Lord MS, Stenzel MH, Simmons A, Milthorpe BK. 2006. The effect of charged groups on protein interactions with poly(HEMA) hydrogels. Biomaterials. 27:567–575. doi:10.1016/j.biomaterials.2005.06.010
  • Maleshlijski S, Sendra GH, Aldred N, Clare AS, Liedberg B, Grunze M, Ederth T, Rosenhahn A. 2016. Imaging SPR combined with stereoscopic 3D tracking to study barnacle cyprid–surface interactions. Surf Sci. 643:172–177. doi:10.1016/jsusc201508027
  • Marshall K, Joint I, Callow ME, Callow JA. 2006. Effect of marine bacterial isolates on the growth and morphology of axenic plantlets of the green alga Ulva linza. Microb Ecol. 52:302–310. doi:10.1007/s00248-006-9060-x
  • Meuler AJ, Chhatre SS, Nieves AR, Mabry JM, Cohen RE, McKinley GH. 2011. Examination of wettability and surface energy in fluorodecyl POSS/polymer blends. Soft Matter. 7:10122–10134. doi:10.1039/c1sm05994g
  • Mieszkin S, Martin-Tanchereau P, Callow ME, Callow JA. 2012. Effect of bacterial biofilms formed on fouling-release coatings from natural seawater and Cobetia marina, on the adhesion of two marine algae. Biofouling. 28:953–968. doi:10.1080/08927014.2012.723696
  • Mieszkin S, Callow ME, Callow JA. 2013. Interactions between microbial biofilms and marine fouling algae: a mini review. Biofouling. 29:1097–1113. doi:10.1080/08927014.2013.828712
  • Mitik-Dineva N, Wang J, Truong VK, Stoddart PR, Malherbe F, Crawford RJ, Ivanova EP. 2009. Differences in colonisation of five marine bacteria on two types of glass surfaces. Biofouling. 25:621–631. doi:10.1080/08927010903012773
  • Ostuni E, Chapman RG, Holmlin RE, Takayama S, Whitesides GM. 2001. A survey of structure−property relationships of surfaces that resist the adsorption of protein. Langmuir. 17:5605–5620. doi:10.1021/la010384m
  • Ouchi M, Badi N, Lutz JF, Sawamoto M. 2011. Single-chain technology using discrete synthetic macromolecules. Nat Chem. 3:917–924. doi:10.1038/nchem.1175
  • Owens DK, Wendt RC. 1969. Estimation of the surface free energy of polymers. J Appl Polym Sci. 13:1741–1747. doi:10.1002/app.1969.070130815
  • Patel P, Callow ME, Joint I, Callow JA. 2003. Specificity in the settlement–modifying response of bacterial biofilms towards zoospores of the marine alga Enteromorpha. Environ Microbiol. 5:338–349. doi:10.1046/j.1462-2920.2003.00407.x
  • Petrone L, Di Fino A, Aldred N, Sukkaew P, Ederth T, Clare AS, Liedberg B. 2011. Effects of surface charge and Gibbs surface energy on the settlement behaviour of barnacle cyprids (Balanus amphitrite). Biofouling. 27:1043–1055. doi:10.1080/08927014.2011.625474
  • Petrone L, Aldred N, Emami K, Enander K, Ederth T, Clare AS. 2014. Chemistry-specific surface adsorption of the barnacle settlement-inducing protein complex. Interface Focus. 5: Article ID 20140047. doi:10.1098/rsfs.2014.0047
  • Poulsen N, Kröger N, Harrington MJ, Brunner E, Paasch S, Buhmann MT. 2014. Isolation and biochemical characterization of underwater adhesives from diatoms. Biofouling. 30:513–523. doi:10.1080/08927014.2014.895895
  • Pranzetti A, Salaun S, Mieszkin S, Callow ME, Callow JA, Preece JA, Mendes PM. 2012. Model organic surfaces to probe marine bacterial adhesion kinetics by surface lpasmon resonance. Adv Funct Mater. 22:3672–3681. doi:10.1002/adfm.v22.17
  • Quere D. 2008. Wetting and roughness. Annu Rev Mater Res. 38:71–99. doi:10.1146/annurev.matsci.38.060407.132434
  • Ramstedt M, Cheng N, Azzaroni O, Mossialos D, Mathieu HJ, Huck WTS. 2007. Synthesis and characterization of poly(3-sulfopropylmethacrylate) brushes for potential antibacterial applications. Langmuir. 23:3314–3321. doi:10.1021/la062670+
  • Rawlinson LAB, Ryan SM, Mantovani G, Syrett JA, Haddleton DM, Brayden DJ. 2010. Antibacterial effects of poly(2-(dimethylamino ethyl)methacrylate) against selected Gram-positive and Gram-negative bacteria. Biomacromolecules. 11:443–453. doi:10.1021/bm901166y
  • Rickert E, Karsten U, Pohnert G, Wahl M. 2015. Seasonal fluctuations in chemical defenses against macrofouling in Fucus vesiculosus and Fucus serratus from the Baltic sea. Biofouling. 31:363–377. doi:10.1080/08927014.2015.1041020
  • Rittschof D. 2010. Research on environmentally benign antifouling coatings. In: Durr S, Thomason JC, editors. Biofouling. Oxford: Wiley-Blackwell; p. 396–409.
  • Rosenhahn A, Finlay JA, Pettit ME, Ward A, Wirges W, Gerhard R, Callow ME, Grunze M, Callow JA. 2009. Zeta potential of motile spores of the green alga Ulva linza and the influence of electrostatic interactions on spore settlement and adhesion strength. Biointerphases. 4:7–11. doi:10.1116/1.3110182
  • Rosenhahn A, Schilp S, Kreuzer HJ, Grunze M. 2010. The role of “inert’’ surface chemistry in marine biofouling prevention. Phys Chem Chem Phys. 12:4275–4286. doi:10.1039/c001968m
  • Roudman AR, DiGiano FA. 2000. Surface energy of experimental and commercial nanofiltration membranes: effects of wetting and natural organic matter fouling. J Membrane Sci. 175:61–73. doi:10.1016/S0376-7388(00)00409-9
  • Schilp S, Kueller A, Rosenhahn A, Grunze M, Pettitt ME, Callow ME, Callow JA. 2007. Settlement and adhesion of algal cells to hexa (ethylene glycol)-containing self-assembled monolayers with systematically changed wetting properties. Biointerphases. 2:143–150. doi:10.1116/1.2806729
  • Schilp S, Rosenhahn A, Pettitt ME, Bowen J, Callow ME, Callow JA, Grunze M. 2009. Physicochemical properties of (ethylene glycol)-containing self-assembled monolayers relevant for protein and algal cell resistance. Langmuir. 25:10077–10082. doi:10.1021/la901038g
  • Schmitt A, Varoqui R, Uniyal S, Brash JL, Pusineri C. 1983. Interaction of fibrinogen with solid-surfaces of varying charge and hydrophobic hydrophilic balance.1. J Colloid Interf Sci. 92:25–34. doi:10.1016/0021-9797(83)90113-3
  • Schultz MP, Finlay JA, Callow ME, Callow JA. 2000. A turbulent channel flow apparatus for the determination of the adhesion strength of microfouling organisms. Biofouling. 15:243–251. doi:10.1080/08927010009386315
  • Schultz MP, Bendick JA, Holm ER, Hertel WM. 2011. Economic impact of biofouling on a naval surface ship. Biofouling. 27:87–98. doi:10.1080/08927014.2010.542809
  • Spori DM, Drobek T, Zurcher S, Ochsner M, Sprecher C, Muehlebach A, Spencer ND. 2008. Beyond the lotus effect: roughness influences on wetting over a wide surface-energy range. Langmuir. 24:5411–5417. doi:10.1021/la800215r
  • Svetlicic V, Zutic V, Pletikapic G, Radic TM. 2013. Marine polysaccharide networks and diatoms at the nanometric scale. Int J Mol Sci. 14:20064–20078. doi:10.3390/ijms141020064
  • Thome I, Bauer S, Vater S, Zargiel K, Finlay JA, Arpa-Sancet MP, Alles M, Callow JA, Callow ME, Swain GW, et al. 2014. Conditioning of self-assembled monolayers at two static immersion test sites along the east coast of Florida and its effect on early fouling development. Biofouling. 30:1011–1021. doi:10.1080/08927014.2014.957195
  • Tiller JC, Liao CJ, Lewis K, Klibanov AM. 2001. Designing surfaces that kill bacteria on contact. P Natl Acad Sci USA. 98:5981–5985. doi:10.1073/pnas.111143098
  • Vater SM, Finlay J, Callow ME, Callow JA, Ederth T, Liedberg B, Grunze M, Rosenhahn A. 2015. Holographic microscopy provides new insights into the settlement of zoospores of the green alga Ulva linza on cationic oligopeptide surfaces. Biofouling. 31:229–239. doi:10.1080/08927014.2015.1022534
  • Vinsova J, Vavrikova E. 2008. Recent advances in drugs and prodrugs design of chitosan. Curr Pharm Design. 14:1311–1326. doi:10.2174/138161208799316410
  • Wahl M, Kroger K, Lenz M. 1998. Non-toxic protection against epibiosis. Biofouling. 12:205–226. doi:10.1080/08927019809378355
  • Wasilewska M, Adamczyk Z. 2011. Fibrinogen adsorption on mica studied by AFM and in situ streaming potential measurements. Langmuir. 27:686–696. doi:10.1021/la102931a
  • Wibisono Y, Yandi W, Golabi M, Nugraha R, Cornelissen ER, Kemperman AJB, Ederth T, Nijmeijer K. 2015. Hydrogel-coated feed spacers in two-phase flow cleaning in spiral wound membrane elements: a novel platform for eco-friendly biofouling mitigation. Water Res. 71:171–186. doi:10.1016/j.watres.2014.12.030
  • Xie LY, Hong F, He CX, Ma CF, Liu JH, Zhang GZ, Wu C. 2011. Coatings with a self-generating hydrogel surface for antifouling. Polymer. 52:3738–3744. doi:10.1016/j.polymer.2011.06.033
  • Yandi W, Mieszkin S, Martin-Tanchereau P, Callow ME, Callow JA, Tyson L, Liedberg B, Ederth T. 2014. Hydration and chain entanglement determines the optimum thickness of poly(HEMA-co-PEG(10)MA) brushes for effective resistance to settlement and adhesion of marine fouling organisms. ACS Appl Mater Inter. 6:11448–11458. doi:10.1021/am502084x
  • Yang WJ, Neoh KG, Kang ET, Lee SSC, Teo SLM, Rittschof D. 2012. Functional polymer brushes via surface-initiated atom transfer radical graft polymerization for combating marine biofouling. Biofouling. 28:895–912. doi:10.1080/08927014.2012.719895
  • Yudovin-Farber I, Golenser J, Beyth N, Weiss EI, Domb AJ. 2010. Quaternary ammonium polyethyleneimine: antibacterial activity. J Nanomater. 2010: Article ID 826343. doi:10.1155/2010/826343
  • Zardus JD, Nedved BT, Huang Y, Tran C, Hadfield MG. 2008. Microbial biofilms facilitate adhesion in biofouling invertebrates. Biological Bulletin. 214:91–98. doi:10.2307/25066663
  • Zhang Z, Finlay JA, Wang LF, Gao Y, Callow JA, Callow ME, Jiang SY. 2009. Polysulfobetaine-grafted surfaces as environmentally benign ultralow fouling marine coatings. Langmuir. 25:13516–13521. doi:10.1021/la901957k

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.