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Biosynthesis enhancement of tropodithietic acid (TDA) antibacterial compound through biofilm formation by marine bacteria Phaeobacter inhibens on micro-structured polymer surfaces

Although aquaculture is a major player in current and future food production, the routine use of antibiotics provides ample ground for development of antibiotic resistance. An alternative route to disease control is the use of probiotic bacteria such as the marine bacteria Phaeobacter inhibens which...

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Autores principales: Droumpali, Ariadni, Liu, Yuyan, Ferrer-Florensa, Xavier, Sternberg, Claus, Dimaki, Maria, Andersen, Aaron J. C., Strube, Mikael L., Kempen, Paul J., Gram, Lone, Taboryski, Rafael
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10641763/
https://www.ncbi.nlm.nih.gov/pubmed/37964901
http://dx.doi.org/10.1039/d3ra05407a
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author Droumpali, Ariadni
Liu, Yuyan
Ferrer-Florensa, Xavier
Sternberg, Claus
Dimaki, Maria
Andersen, Aaron J. C.
Strube, Mikael L.
Kempen, Paul J.
Gram, Lone
Taboryski, Rafael
author_facet Droumpali, Ariadni
Liu, Yuyan
Ferrer-Florensa, Xavier
Sternberg, Claus
Dimaki, Maria
Andersen, Aaron J. C.
Strube, Mikael L.
Kempen, Paul J.
Gram, Lone
Taboryski, Rafael
author_sort Droumpali, Ariadni
collection PubMed
description Although aquaculture is a major player in current and future food production, the routine use of antibiotics provides ample ground for development of antibiotic resistance. An alternative route to disease control is the use of probiotic bacteria such as the marine bacteria Phaeobacter inhibens which produces tropodithietic acid (TDA) that inhibit pathogens without affecting the fish. Improving conditions for the formation of biofilm and TDA-synthesis is a promising avenue for biocontrol in aquaculture. In this study, the biosynthesis of TDA by Phaeobacter inhibens grown on micro-structured polymeric surfaces in micro-fluidic flow-cells is investigated. The formation of biofilms on three surface topographies; hexagonal micro-pit-arrays, hexagonal micro-pillar-arrays, and planar references is investigated. The biomass on these surfaces is measured by a non-invasive confocal microscopy 3D imaging technique, and the corresponding TDA production is monitored by liquid chromatography mass spectrometry (LC-MS) in samples collected from the outlets of the microfluidic channels. Although all surfaces support growth of P. inhibens, biomass appears to be decoupled from total TDA biosynthesis as the micro-pit-arrays generate the largest biomass while the micro-pillar-arrays produce significantly higher amounts of TDA. The findings highlight the potential for optimized micro-structured surfaces to maintain biofilms of probiotic bacteria for sustainable aquacultures.
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spelling pubmed-106417632023-11-14 Biosynthesis enhancement of tropodithietic acid (TDA) antibacterial compound through biofilm formation by marine bacteria Phaeobacter inhibens on micro-structured polymer surfaces Droumpali, Ariadni Liu, Yuyan Ferrer-Florensa, Xavier Sternberg, Claus Dimaki, Maria Andersen, Aaron J. C. Strube, Mikael L. Kempen, Paul J. Gram, Lone Taboryski, Rafael RSC Adv Chemistry Although aquaculture is a major player in current and future food production, the routine use of antibiotics provides ample ground for development of antibiotic resistance. An alternative route to disease control is the use of probiotic bacteria such as the marine bacteria Phaeobacter inhibens which produces tropodithietic acid (TDA) that inhibit pathogens without affecting the fish. Improving conditions for the formation of biofilm and TDA-synthesis is a promising avenue for biocontrol in aquaculture. In this study, the biosynthesis of TDA by Phaeobacter inhibens grown on micro-structured polymeric surfaces in micro-fluidic flow-cells is investigated. The formation of biofilms on three surface topographies; hexagonal micro-pit-arrays, hexagonal micro-pillar-arrays, and planar references is investigated. The biomass on these surfaces is measured by a non-invasive confocal microscopy 3D imaging technique, and the corresponding TDA production is monitored by liquid chromatography mass spectrometry (LC-MS) in samples collected from the outlets of the microfluidic channels. Although all surfaces support growth of P. inhibens, biomass appears to be decoupled from total TDA biosynthesis as the micro-pit-arrays generate the largest biomass while the micro-pillar-arrays produce significantly higher amounts of TDA. The findings highlight the potential for optimized micro-structured surfaces to maintain biofilms of probiotic bacteria for sustainable aquacultures. The Royal Society of Chemistry 2023-11-09 /pmc/articles/PMC10641763/ /pubmed/37964901 http://dx.doi.org/10.1039/d3ra05407a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Droumpali, Ariadni
Liu, Yuyan
Ferrer-Florensa, Xavier
Sternberg, Claus
Dimaki, Maria
Andersen, Aaron J. C.
Strube, Mikael L.
Kempen, Paul J.
Gram, Lone
Taboryski, Rafael
Biosynthesis enhancement of tropodithietic acid (TDA) antibacterial compound through biofilm formation by marine bacteria Phaeobacter inhibens on micro-structured polymer surfaces
title Biosynthesis enhancement of tropodithietic acid (TDA) antibacterial compound through biofilm formation by marine bacteria Phaeobacter inhibens on micro-structured polymer surfaces
title_full Biosynthesis enhancement of tropodithietic acid (TDA) antibacterial compound through biofilm formation by marine bacteria Phaeobacter inhibens on micro-structured polymer surfaces
title_fullStr Biosynthesis enhancement of tropodithietic acid (TDA) antibacterial compound through biofilm formation by marine bacteria Phaeobacter inhibens on micro-structured polymer surfaces
title_full_unstemmed Biosynthesis enhancement of tropodithietic acid (TDA) antibacterial compound through biofilm formation by marine bacteria Phaeobacter inhibens on micro-structured polymer surfaces
title_short Biosynthesis enhancement of tropodithietic acid (TDA) antibacterial compound through biofilm formation by marine bacteria Phaeobacter inhibens on micro-structured polymer surfaces
title_sort biosynthesis enhancement of tropodithietic acid (tda) antibacterial compound through biofilm formation by marine bacteria phaeobacter inhibens on micro-structured polymer surfaces
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10641763/
https://www.ncbi.nlm.nih.gov/pubmed/37964901
http://dx.doi.org/10.1039/d3ra05407a
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