TY - CONF A1 - Bonse, Jörn T1 - A brief survey on open questions about laser-induced periodic surface structures N2 - The processing of laser-induced periodic surface structures (LIPSS) represents a simple and robust way for the nanostructuring of solids that allows creating a wide range of surface functionalities featuring applications in optics, tribology, medicine, energy technologies, etc. While the currently available laser and scanner technology already allows surface processing rates at the m2/min level, industrial applications of LIPSS are sometimes hampered by the complex interplay between the nanoscale surface topography and the specific surface chemistry. This typically manifests in difficulties to control the processing of LIPSS and in limitations to ensure the long-term stability of the created surface functions. This presentation aims to identify some unsolved scientific problems related to LIPSS, discusses the pending technological limitations, and sketches the current state of theoretical modelling. Hereby, it is intended to stimulate further research and developments in the field of LIPSS for overcoming these limitations and for supporting the transfer of the LIPSS technology into industry. T2 - E-MRS Spring Meeting 2022 CY - Online meeting DA - 30.05.2022 KW - Laser-induced periodic surface structures (LIPSS) KW - Surface functionalization KW - Industrial applications KW - Biofilm growth PY - 2022 AN - OPUS4-54929 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Marano, Roberto T1 - A Customizable Procedure for Predicting Antibiotic Resistance Selection on Novel Antimicrobial Coatings N2 - The global burden of antimicrobial resistance (AR) has manifested in an increasing number of deaths attributable to antibiotic-resistant bacteria (ARB) in recent years, with projections indicating a continued rise. Combating AR requires a multifaceted approach, one aspect of which involves preventing the spread of ARB in hospital environments via high-touch surfaces, which are known contributors to nosocomial infections. In conjunction with routine disinfection protocols and infection prevention measures, antimicrobial surfaces or antimicrobial coatings (AC) are increasingly being investigated and implemented to reduce microbial transmission via high-touch surfaces, thereby mitigating their spread in healthcare settings. However, similar to antibiotics, prolonged use of such surfaces may lead to the direct or indirect selection of ARB. To prevent this, targeted tests must be developed to predict potential AR selection before AC implementation. Materials and Methods As part of the Horizon-Europe-funded project "STOP" (Grant Agreement ID: 101057961), a novel antimicrobial coating is being developed and tested to reduce pathogen transfer on surfaces without selecting for ARB. To this end, two bacterial libraries (80 strains each) were assembled from the two species most associated with AR-attributable mortality worldwide, Escherichia coli and Staphylococcus aureus, as identified in the most recent comprehensive study [1]. Each library maintains a 50/50% ratio of strains resistant or sensitive to third-generation cephalosporins (E. coli) and methicillin (S. aureus), respectively—representing two of the most widespread resistance profiles. An adapted ISO 22196 method was developed using a reference benchmark antimicrobial surface (i.e., copper), with stainless steel serving as a control. The goal was to infer potential advantages of copper-unrelated antibiotic resistance phenotypes on the tested surface. Results Metadata, genomic data, and antibiotic susceptibility testing (AST) data were collected for all selected strains in each library, ensuring diversity in sequence types (ST) of clinical relevance, antibiotic resistance gene profiles, and geographical origins. The method was calibrated on copper surfaces using a reference E. coli strain, establishing the initial parameters required for investigators to customize the test for a given AC. Procedural reproducibility was assessed by comparing results from independent operators. Discussion The two libraries are currently being screened against the selected copper surfaces to identify potential associations between the resistance phenotypes of the tested species and their observed survival rates post-exposure. Three mutually exclusive outcomes are anticipated: (i) a statistically significant survival advantage of resistant strains compared to sensitive strains, (ii) an inverse scenario where sensitive strains exhibit higher survival, or (iii) no significant difference between the two groups. Furthermore, post hoc principal component analysis utilizing metadata and AST data may help elucidate genetic traits that confer a survival advantage on the tested AC. Conclusions This test aims to assist developers of antimicrobial coatings and materials in assessing potential selective pressures toward ARB before these products are implemented and evaluated under real-life conditions. T2 - ESB Conference CY - Torino, Italy DA - 07.09.2025 KW - Antimicrobial-resistance KW - Surface antimicrobial testing KW - Materials testing PY - 2025 AN - OPUS4-64569 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Marano, Roberto T1 - A Customizable Procedure for Predicting Antibiotic Resistance Selection on Novel Antimicrobial Coatings N2 - This presentation introduceda new methodological approach developed to test antimocrobials implemented on high touch surfaces, inlcuding preliminary results on its use on reference antimicrobial materials. The seminar was organized by the 'Fast-real' project, funded by the Horizon Europe (project ID: 101159721). T2 - Novel strategies and considerations in fighting pathogens CY - Tartu, Estonia DA - 16.06.2025 KW - Antimicrobial-resistance KW - Surface antimicrobial testing KW - Materials testing PY - 2025 AN - OPUS4-64568 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Wen, Keqing A1 - Gorbushina, Anna A1 - Schwibbert, Karin A1 - Bell, Jérémy T1 - A microfluidic platform for monitoring biofilm formation in flow under defined hydrodynamic conditions N2 - Bacterial adhesion on surfaces of medical, water and food applications may lead to infections, water or food spoilage and human illness. In comparison to traditional static and macro flow chamber assays for biofilm formation studies, microfluidic chips allow in situ monitoring of biofilm formation under various flow regimes, have better environment control and smaller sample requirements. In this work, a novel microfluidic platform is developed to investigate biofilm adhesion under precisely controlled bacteria concentration, temperature, and flow conditions. This platform central unit is a single-inlet microfluidic flow cell with a 5 mm wide chamber designed and tested to achieve ultra-homogenous flow in the central area of chamber. Within this area, defined microstructures are integrated that will disturb the homogeneity of the flow, thus changing bacterial adhesion pattern. Here we present the monitoring of bacterial biofilm formation in a microfluidic chip equipped with a microstructure known as micro-trap. This feature is based on a 3D bacteria trap designed by Di Giacomo et al. and successfully used to sequester motile bacteria. At first, fluorescent particles similar in size to Escherichia coli (E. coli) are used to simulate bacteria flow inside the flow cell and at the micro-trap. The turbulences induced by the trap are analyzed by imaging and particle tracking velocimetry (PTV). Secondly, the model strain E. coli TG1, ideal and well described for biofilm studies, is used to analyze biofilm formation in the micro-trap. Therefore, a stable fluorescent strain E. coli TG1-MRE-Tn7-141 is constructed by using Tn7 transposon mutagenesis according to the method described by Schlechter et al. Sequestering of E. coli cells within the micro-trap was followed using epifluorescence microscopy. The novel microfluidic platform shows great potential for assessment of bacterial adhesion under various flow regimes. The performance of structural feature with respect to the generation of turbulences that promote or reduce bacterial adhesion can be systematically examined. The combination of flow analysis and fluorescent strain injection into the microfluidic chip shows that the micro-trap is useful for capturing bacteria at defined positions and to study how flow conditions, especially micro-turbulences, can affect biofilm formation. It represents a powerful and versatile tool for studying the relation between topography and bacteria adhesion. T2 - International Conference on Miniaturized Systems for Chemistry and Life Sciences CY - Katowice, Poland DA - 15.10.2023 KW - Biofilm KW - E. coli KW - Microfluidics KW - Velocimetry KW - Fluorescence PY - 2023 AN - OPUS4-59593 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Koerdt, Andrea A1 - Gerengi, Husnu A1 - Kaya, Ertugrul A1 - M. Solomon, Moses A1 - Snape, Matthew T1 - Advances in the Mitigation of Microbiologically Influenced Concrete Corrosion: A Snapshot N2 - Concrete, a versatile construction material, faces pervasive deterioration due to microbiologically influenced corrosion (MIC) in various applications, including sewer systems, marine engineering, and buildings. MIC is initiated by microbial activities such as involving sulfate-reducing bacteria (SRB), sulfur-oxidizing bacteria (SOB), etc., producing corrosive substances like sulfuric acid. This process significantly impacts structures, causing economic losses and environmental concerns. Despite over a century of research, MIC remains a debated issue, lacking standardized assessment methods. Microorganisms contribute to concrete degradation through physical and chemical means. In the oil and gas industry, SRB and SOB activities may adversely affect concrete in offshore platforms. MIC challenges also arise in cooling water systems and civil infrastructures, impacting concrete surfaces. Sewer systems experience biogenic corrosion, primarily driven by SRB activities, leading to concrete deterioration. Mitigation traditionally involves the use of biocides and surface coatings, but their long-term effectiveness and environmental impact are questionable. Nowadays, it is important to design more eco-friendly mitigation products. The microbial-influenced carbonate precipitation is one of the green techniques and involves incorporating beneficial bacteria with antibacterial activity into cementitious materials to prevent the growth and the formation of a community that contains species that are pathogenic or may be responsible for MIC. These innovative strategies present promising avenues for addressing MIC challenges and preserving the integrity of concrete structures. This review provides a snapshot of the MIC in various areas and mitigation measures, excluding underlying mechanisms and broader influencing factors. KW - MIC KW - Corrosion KW - Concrete KW - Environment PY - 2024 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-619218 DO - https://doi.org/10.3390/ma17235846 VL - 17 IS - 23 SP - 1 EP - 19 PB - MDPI AN - OPUS4-61921 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Nordholt, Niclas T1 - ALEE-AMC: Bacterial resistance evolution towards antimicrobial surfaces and development of a standardized test N2 - Background: Antimicrobial surfaces and coatings (AMCs) are important to protect man-made structures from biodeterioration and biodegradation. Advances in nano-structuring methods hold the promise of a new generation of AMCs. However, the evolution and selection of bacterial resistance to AMCs may threaten their efficacy in the long term. Therefore, according to the EU Biocidal Products Regulation, the risk of resistance development upon exposure to AMCs must be evaluated during product authorization. The same applies to the development of cross-resistances to other substances, for instance biocides and antibiotics. However, no standardized method exists to assess the risk of resistance and cross-resistance development upon exposure to AMCs during the authorization process. Objectives: • To develop a standardizable adaptive laboratory evolution experiment to be performed on AMCs (ALEE-AMC) • To assess performance and robustness of ALEE-AMC in a round robin test, using a copper AMC as reference • To uncover the mechanisms underlying evolution of resistance to copper AMC Materials & Methods: ALEE-AMC was developed based on an approved standard to determine the efficacy of antimicrobial surfaces (ISO 22196). ALEE-MC was performed on an antimicrobial copper surface as reference material and Escherichia coli as model organism. A round robin test was conducted with six participants to evaluate the reproducibility and applicability of ALEE-AMC. Evolved E. coli populations from the round robin partners were collected and subjected to phenotypic (antimicrobial susceptibility testing, ISO 22196) and genotypic (whole genome sequencing) characterization at BAM. Results: The results of the ALEE-AMC round robin test indicate that repeated exposure to copper can select for reduced copper susceptibility. However, failure of individual E. coli lineages to adapt to the copper surfaces was also observed. Evolved E. coli exhibited increased survival upon exposure to copper surfaces. Adaptation to copper did not induce cross-resistance to antibiotics. Whole genome sequencing of the evolved E. coli revealed high diversity of mutations among individual evolved strains, indicating the existence of multiple, underexplored evolutionary pathways towards increased survival of antimicrobial copper surfaces. Conclusion & Significance: ALEE-AMC offers a standardizable platform to assess the risk of resistance development towards novel and existing AMCs. Specifically, using ALEE-AMC in a round robin test, insights into evolvable survival mechanisms to copper AMCs have been gained. These mechanistic insights may be exploited to prevent the evolution against copper AMCs. In future steps, criteria need to be defined to provide guidelines for the authorization of AMCs based on the outcomes of ALEE-AMC T2 - International Biodeterioration and Biodegradation Symposium, Berlin, Germany CY - Berlin, Germany DA - 09.09.2024 KW - Biocides KW - Antimicrobial surfaces KW - Resistance KW - Evolution KW - Standardized test PY - 2024 AN - OPUS4-61176 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - RPRT A1 - European Food Safety Authority (EFSA), A1 - European Centre for Disease Prevention and Control (ECDC), A1 - European Chemicals Agency (ECHA), A1 - European Environment Agency (EEA), A1 - European Medicines Agency (EMA), A1 - European Commission's Joint Research Centre (JRC), T1 - Annex to: Scientific report 'Impact of the use of azole fungicides, other than as human medicines, on the development of azole-resistant Aspergillus spp.' doi:10.2903/j.efsa.2025.9200 - Annex E - Detailed answer to Term of Reference 5 'Environmental hotspots' and Term of Reference 6 'Prevention and control options' N2 - The widespread use of azole compounds in various sectors has led to the emergence of azole-resistant Aspergillus fumigatus (ARAf), which poses a significant challenge for treating fungal infections, especially in immunocompromised patients. Certain environmental conditions and practices, particularly in agricultural settings and the use of azoles as biocides, have been identified as hotspots for the selection and dispersal of azole-resistant strains of Aspergillus spp. Factors contributing to the selection of resistance include the use of azoles in crop protection, wood preservation and, to a much lesser extent, veterinary medicine. For plant protection products (PPPs), a number of scenarios (green waste of indoor-grown vegetables, uses with the production of wet pomace used as fertiliser, maize or sugar beet silage, and field heaps including flower bulbs) are deemed high risk for hotspot development. Based on EU authorised use patterns, these scenarios are characterised by the hazard characteristics of the azole fungicides in terms of activity against the wild-type Aspergillus spp. compared to resistant strains, substrate characteristics and residue levels, and environmental conditions that promote the growth of the fungus. For biocidal azole applications, products (biocidal product [BP]) for temporary preservation of freshly cut wood have been identified to have the potential for hotspot formation because freshly cut wood allows the growth of Aspergillus spp., and azole concentrations in treated wood are above the predicted no effect concentration (PNEC) for resistance selection (PNECres) and below the minimum inhibitory concentration (MIC) of ARAf for most analysed products on the EU market. Following identification of environmental hotspots, the report recommends measures to prevent the selection of azole-resistant strains in the environment, including controlled storage of organic waste, proper waste management, and responsible use and disposal of azole-treated products. Azole use in veterinary medicinal products (VMPs) represents a very small percentage of total azole use and is unlikely to be a significant source of selection of resistance in the environment. As such, the focus for mitigating resistance should be on other uses of azoles. The report stresses the importance of ongoing surveillance to monitor the presence of ARAf in the environment and to inform risk assessments and management strategies. As industrial chemicals, the azole substances are mostly used as intermediates (precursors) to manufacture yet a different substance, are formulated into a mixture or are reported to be manufactured as active substances in PPP, BP or VMP (therefore already covered above). There are only a few industrial azole substances with widespread use, and as for the moment, there is no evidence from the literature that industrial azoles would be a source of a possible hotspot; thus, the industrial chemicals were not further investigated. There are several areas where further research is needed, including understanding the environmental conditions that support the growth of Aspergillus spp. in different agricultural matrices or on wood, assessing human exposure to resistant strains, regional waste practices and the impact of active substance combinations for azole resistance selection. There is also a need for more comprehensive data on the use and quantities of azole-containing products. Furthermore, industrial substances with widespread use and having antifungal effects, e.g. an antidandruff substance in cosmetics, could be further investigated. Measures were identified that could be implemented with respect to the use of azole fungicides in PPPs as well as in BPs and with respect to the storage, processing and disposal of crop (waste) materials containing azole residues to prevent or minimise the selection of environmental resistance or to minimise the spread of resistant Aspergillus spp. to patients. Any measures that slow down or prevent growth in the presence of azoles, sporulation and dispersal of Aspergillus spp. should be encouraged. A coordinated effort among various stakeholders, including farmers, manufacturers, industrial users, waste managers, regulatory bodies and scientists, is essential to effectively address the challenge of azole resistance in A. fumigatus. KW - Antimicrobial surfaces KW - Biocides KW - Antimicrobial resistance KW - Azoles KW - Fungi KW - Wood preservatives PY - 2025 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-652187 UR - https://doi.org/10.5281/zenodo.14223436 DO - https://doi.org/10.5281/zenodo.14223435 SP - 1 EP - 76 PB - Zenodo CY - Geneva AN - OPUS4-65218 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Jaut, Valerie T1 - Antibiotic tolerance of biofilms emerging from multicellular effects of antibiotic efflux N2 - Biofilms are multicellular assemblages of bacteria living in a self-produced extracellular matrix. Different mechanisms, like the development of highly tolerant persister cells or increased expression of efflux pumps make them tolerant. Here we want to investigate the emergency of antimicrobial tolerance of multicellular bacterial populations, through the interplay of efflux-mediated spatial interactions and efflux-linked persistence. To this end, we are combining computational modelling with experimentally observations gained from three types of multicellular assemblages, i.e. colonies on agar, multicellular populations grown in a monolayer microfluidic device, and 3D biofilms grown in flow chambers. We generated fluorescently labeled E. coli strains that differ in their levels of AcrAB-TolC efflux pump activity, an acrB knockout-strain and a strain with inducible expression of acrAB. All strains were characterized in terms of their antimicrobial susceptibility of three antibiotics, tetracycline, kanamycin, ampicillin, and the biocide benzalkonium chloride. The knockout strain shows higher susceptibility than the wild type strain, with highest difference when using benzalkonium chlorid e. To investigate the link between colony structure and spatial patterns of gene expression, the strains were mixed equimolar and grown on agar supplemented with antimicrobials. First results show, antimicrobials affect the structure of sector formation and morphology. Cells grown on tetracycline agar show a more finer sector formation. While kanamycin changes the overall colony structure . We will develop a mathematical model and additional experiments with multicellular assemblages to explain the observed interactions and extrapolate the results to more realistic biofilm models. T2 - SPP Conference CY - Berlin, Germany DA - 06.01.2025 KW - Antimicrobial KW - Resistance KW - Tolerance KW - Efflux KW - E. coli PY - 2025 AN - OPUS4-64563 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Jaut, Valerie A1 - Schreiber, Frank T1 - Antibiotic tolerance of biofilms emerging fro multicellular effects of antibiotic efflux N2 - The overarching goal of this project is to develop a predictive model for efflux-mediated antimicrobial tolerance in bacterial multicellular assemblies. Our central hypostasis is that efflux pump activity causes emergent antibiotic tolerance of multicellular bacterial populations, through the interplay of efflux mediated spatial interactions and efflux-linked persistence. To test this hypothesis, we will use a combination of microscopy, microbial killing assays, computational modelling, and data analysis, integrating information from 3 types of multicellular assembly: colonies, cell-to-cell interactions in a monolayer microfluidic device, and 3D flow chamber biofilms. Building on our preliminary observations, we will experimentally characterize the link between colony structure and spatial patterns of efflux gene expression in strains that differ in their levels of efflux. We will develop a mathematical model to test whether local growth inhibition of neighbors due to effluxing cells, coupled with local environment-dependent regulation of efflux, can account qualitatively for these results. By including persister cell formation in our model we will predict, and measure, the emergent function of antimicrobial tolerance in our colonies. To fully understand how tolerance emerges from the interplay between efflux-mediated spatial interactions and efflux-linked persister cell formation, we need quantitative measurements at the single cell level. To this end, we will use a microfluidic setup with cells growing in a monolayer to qualify in detail the dependence of efflux expression and persister cell formation on nutrient conditions, the correlation between efflux and persister formation, and the spatial range of efflux-mediated neighbour growth inhibition. To predict and quantitatively understand the emergent multicellular function of tolerance, we will perform individual-based modelling of biofilm growth, using as input the parameters measured on the single-cell level with our microfluidics experiments. Our simulations will predict biofilm spatial structure development, patterns of efflux and persister formation and, ultimately, tolerance to antimicrobial challenge. These predictions will be directly tested in flow-cell biofilm experiments. We are currently generating acrAB-tolC knockout-strain, without efflux activity, and a strain with an inducible acrAB-tolC efflux pump. To distinguish the different strains under the microscope, they were labeled with genes encoding for different fluorescent proteins. All strains are currently characterized in terms of growth, minimum inhibitory concentration of different antimicrobial substances, colony morphology, and biofilm formation ability. On the theoretical side, we are currently working on modeling the system at various scales and degree of detail, ranging from coarse-grained continuum models to stochastic, individual-based models. Some exploratory work was doe to test existing software for individual-based modelling that may be adapted for our purpose. Furthermore, we are in the process of developing more coarse-grained models. This work involves some physiological modelling and literature search, focusing on working mechanisms of efflux pumps and kinetic models for import and export of antibiotics. T2 - SPP Meeting CY - Jena, Germany DA - 04.10.2023 KW - Antibiotic KW - Bioilm KW - Tolerance KW - Efflux PY - 2023 AN - OPUS4-59245 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Jaut, Valerie T1 - Antibiotic tolerance of biofilms emerging from multicellular effects of antibiotic efflux N2 - Biofilms are multicellular assemblies of bacteria living in a self-produced extracellular matrix. One characteristic of biofilms is that they are difficult to kill. Different mechanisms, like the development of persister cells or efflux pumps which pump some antimicrobials out of the cell, make them tolerant. Our central hypothesis is that efflux pump activity causes emergent antimicrobial tolerance of multicellular bacterial populations, through the interplay of efflux-mediated spatial interactions and efflux-linked persistence. To verify the hypothesis, we combine computational modelling with information gained from 3 types of multicellular assemblies. We are currently generating strains that differ in their levels of efflux activity, mixes are then cultivated together in the 3 model systems. In colonies the link between structure and spatial patterns of gene expression will be characterized. Using a microfluidic device, the interactions range of efflux as a response to different antimicrobials will be determined. In a flow chamber a 3D biofilm will be generated, to investigate the biofilm development over time and persister cell formation. All results will be compared with model predictions. T2 - EuroBioFilms2024 CY - Copenhagen, Denmark DA - 25.06.2024 KW - Antibiotic KW - Biofilm KW - Tolerance KW - Efflux PY - 2024 AN - OPUS4-61277 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -