AI Article Synopsis

  • Biofilms in drinking water distribution systems (DWDS) can cause problems like increased disinfectant needs and pipe damage, with no effective control method identified so far.
  • A new strategy involving a poly (sulfobetaine methacrylate) (P(SBMA))-based hydrogel coating was proposed to reduce biofilm adherence.
  • The tested coating significantly decreased bacterial adhesion by up to 99%, showing promise as a localized biofilm control method in DWDS.

Article Abstract

Presence of biofilms in drinking water distribution systems (DWDS) can be a nuisance, leading to several operational and maintenance issues (i.e., increased secondary disinfectants demand, pipe damage or increased flow resistance), and so far, no single control practice was found to be sufficiently effective. Here, we propose poly (sulfobetaine methacrylate) (P(SBMA))-based hydrogel coating application as a biofilm control strategy in DWDS. The P(SBMA) coating was synthetized through photoinitiated free radical polymerization on polydimethylsiloxane with different combinations of SBMA as a monomer, and -methylenebis (acrylamide) (BIS) as a cross-linker. The most stable coating in terms of its mechanical properties was obtained using 20% SBMA with a 20:1 SBMA:BIS ratio. The coating was characterized using Scanning Electron Microscopy, Energy Dispersive X-Ray Spectroscopy, and water contact angle measurements. The anti-adhesive performance of the coating was evaluated in a parallel-plate flow chamber system against adhesion of four bacterial strains representing genera commonly identified in DWDS biofilm communities, and . The selected strains exhibited varying adhesion behaviors in terms of attachment density and bacteria distribution on the surface. Despite these differences, after 4 h, presence of the P(SBMA)-based hydrogel coating significantly reduced the number of adhering bacteria by 97%, 94%, 98% and 99%, for Sph5, Sph10, and , respectively, compared to non-coated surfaces. These findings motivate further research into a potential application of a hydrogel anti-adhesive coating as a localized biofilm control strategy in DWDS, especially on materials known to promote excessive biofilm growth.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9989184PMC
http://dx.doi.org/10.3389/fbioe.2023.1066126DOI Listing

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