TY - CONF A1 - Sobisch, Lydia-Yasmin T1 - Identification of Genes Involved in Susceptibility to Biocides in Sulfate-Reducing Bacteria N2 - Microbially induced corrosion (MIC) poses a significant challenge in various industries, leading to structural damage and economic losses due to the activity of microorganisms on metal surfaces. The major culprits of MIC are the sulfate-reducing bacteria (SRB). A common mitigation method is the usage of biocides to prevent MIC. However, the molecular mechanisms that determine susceptibility of SRB to biocides have been poorly understood. Our aim is to identify genes that are linked to biocide susceptibility in the model SRB strain Oleidesulfovibrio alaskensis (G20). We investigated the susceptibility of G20 towards three biocides commonly used in MIC protection: benzalkonium chloride (BAC), glutaraldehyde (GTA), and tetrakishydroxymethyl phosphonium sulphate (THPS). We determined selection of mutants in specific genes in two G20 barcoded transposon mutant libraries in the presence of these biocides and media as control along a concentration gradient up to 500 ppm. Our study investigated over 1843 genes in G20, revealing insights into their response to biocide treatments. We identified 1668 genes negatively affected by biocide treatment, while 175 genes showed improved fitness. Among the treatments leading to reduced fitness in the mutants, GTA had the highest number of solely negatively affected genes (186), followed by BAC (67) and THPS (69). There were common negative impacts on 280 genes of all four treatments (BAC, GTA, THPS, control). Notably, BAC and GTA shared 113 affected genes, BAC and THPS shared 59, and GTA and THPS shared 72. On the single gene level, mutants treated with THPS exhibited reduced fitness for the rluD gene (DDE_1447), encoding ribosomal large subunit pseudouridine synthase d, which plays a crucial role in protein biosynthesis. In the presence of BAC, mutants showed reduced fitness due to the lack of the acrB gene (DDE_0401), encoding a cationic efflux pump crucial for biocide resistance. Our findings provide leads for future research into the detailed molecular mechanisms that underlie biocide susceptibility in microorganisms responsible for MIC. Such detailed understanding will enable the development of improved MIC prevention strategies and foster a more sustainable use of biocides. T2 - International Biodeterioration and Biodegradation Symposium CY - Berlin, Germany DA - 09.09.2024 KW - Biocide Resistance KW - Transposon Mutant Libraries KW - Sulfate-Reducing Bacteria (SRB) KW - Microbially Induced Corrosion (MIC) PY - 2024 AN - OPUS4-61526 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Sobisch, Lydia-Yasmin T1 - Biocide resistance evolution of corrosion causing sulfate reducing bacteria N2 - SRB are environmentally and industrially important microorganisms. The disadvantage of their metabolic activity (e.g. sulfate reduction) results in the formation of toxic sulfide that leads to microbial influenced corrosion. SRB have been responsible for biocorrosion of ferrous metal. One of mitigation strategy is the use of biocides. However, it has been shown that various bacteria develop antimicrobial resistance due to excessive use of biocides. Thus, a deeper understanding of the evolution of biocide resistance of SRB is necessary. Three commonly used biocides, THPS, BAC, and GLUT were applied to investigate the susceptibility of Desulfovibrio alaskensis G20.The minimum inhibitory and bactericidal concentration and the killing kinetics of the three biocides was determined. These results will be used to conduct evolution experiments to determine the evolution of resistance towards biocides of SRBs. The outcome of this work can be helpful to improve the management of MIC treatments. T2 - Panel, Pitch & Popcorn by EUROMIC CY - Online meeting DA - 21.06.2021 KW - Biocide KW - Evolution KW - Mircobially influcenced corrosion KW - Sulfate reducing bacteria PY - 2021 AN - OPUS4-56940 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -