TY - CONF A1 - Oberbeckmann, Sonja T1 - The Microplastic Microbiome N2 - Microplastics represent man-made and newly emerging surfaces in our ecosystems, where they interact with microorganisms. The ecosystem in focus of this presentation will be the aquatic environment. It will be portrayed, which microorganisms use microplastics as a habitat, how environmental factors shape this colonization, and why the biodegradation of plastics in the ocean is an overall unlikely process. We will also discuss whether potentially pathogenic microorganisms use microplastics as a raft. Finally, possible adaptation mechanisms of plastic-colonizing microorganisms will be presented, such as the production of photoreactive molecules. The microplastic microbiome has a large potential to harbor so far unknown species with curious traits, representing an exciting research topic for the future. T2 - Geomicrobiological and Geochemical Colloquium, GFZ CY - Potsdam, Germany DA - 20.02.2024 KW - Microplastics KW - Microbiome KW - Biofilm PY - 2024 AN - OPUS4-60203 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Fuentes, Elsa A1 - Prieto, Beatriz T1 - Effect of climate change on phototrophic biofilms colonizing granitic rocks and their biodeteriogenic activity. N2 - Material cultural heritage from NW of the Iberian Peninsula is linked to the use or presence of granite, whether in historical buildings, sculptures, archaeological sites or any other artistic manifestation. This resistant material has the ideal physical characteristics that favor its longevity, but, like any material exposed to the environment, it is susceptible to deterioration. To this respect, environmental changes due to climate change and global change may modify biological colonization-substrate interactions. The main objective of the present research was to analyse the effects of Climate Change, more specifically changes in water availability, increased temperature, increased CO2 concentrations and changes in UV-B radiation patterns, on the survival and biodeteriogenic activity of phototrophic biofilms on granite heritage and the consequences for the built heritage. Both field and laboratory work were carried out. Field studies were conducted on three rural churches to characterise the current biological colonization. A higher proportion of algae than cyanobacteria was identified, with the genera Trentepohlia and Desmococcus standing out among the former. The most common current fungi are lichenised fungi, but black fungal genera such as Catenulostroma, Rhinocladiella and Knufia were also identified. Bacterial genera related to the production of sphinganes, EPS, carotenoids and some causing the so-called pink discolouration are also present. The effect of climate change on the growth and physiological state of the organisms was analysed in the laboratory. For this purpose, mixed biofilms were developed in the laboratory and exposed to changing conditions of temperature, water availability, CO2 and UV-B. A reduction in growth was observed with increasing water restriction, although in the initial colonization process, rock bioreceptivity was shown to be a more important aspect in favoring anchorage and retention of organisms. Temperature was shown to have a growth-enhancing effect when water availability was low, whereas an increase in CO2 only resulted in increased growth under conditions of high-water availability. Increased UV-B produced a reduction in growth, especially at the highest dose (equivalent to the current dose of a west-facing wall in southern Portugal, which is considered as high), while little difference in the physiological state of the organisms was observed at the current doses in Galicia (considered as medium) and southern Ireland (considered as low). Clear changes in microbial composition were observed, with a trend towards increased or greater resistance of cyanobacteria to higher temperature, lower water availability and higher UV-B doses. In addition, all these changes in development, physiological and microbial composition had an effect on the predominant pigments, tending towards more yellowish-brownish colourations, and on the ability of the organisms to generate biodeterioration by affecting ion concentrations on water solutions by enhancing their consumption or adhesion which lead to granite deterioration. Future work should take into account the combination of a greater number of climatic parameters simultaneously and also the possible resistances associated with the nature of the SAB community studied. T2 - 19th International Biodeterioration and Biodegradation Symposium CY - Berlin, Germany DA - 09.09.2024 KW - Biofilm KW - Granite KW - Climate change KW - Biodeterioration KW - Cultural heritage PY - 2024 AN - OPUS4-62271 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Razkin Bartolomé, Malen T1 - Bacterial adhesion on fs-laser processed laser-induced periodic surface structures N2 - Bacteria are ubiquitous and colonize all types of surfaces, including those in close proximity to humans, such as skin, food, and everyday objects. This raises the question of whether their presence represents a problem to be mitigated or a potential source of benefit to be harnessed, thereby stimulating scientific inquiry into the role of surface-associated bacteria in diverse domains ranging fromhuman health to industrial biotechnology. Aim: The objective of this project is to explore the impact of modifying surface topography on bacterial adhesion behavior. By manipulating the physical characteristics of the substrate, the attachment and detachment dynamics of bacteria can potentially be modified, leading to novel strategies for controlling bacterial colonization in various applications, such as medical devices. Escherichia coli (E. coli) and Staphylococcus aureus (S. aureus) were tested on LIPSS-covered Fused Silica samples. T2 - 2023 Spring Meeting · , 2023 · Strasbourg CY - Strasbourg, France DA - 29.05.2023 KW - LIPSS KW - Biofilm KW - fs-laser processing PY - 2023 AN - OPUS4-58456 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Oberbeckmann, Sonja T1 - The microplastic microbiome – an example for the intersection of biology and material research N2 - Biofilms live on the interface between human-made materials and the environment. Using aquatic plastics as an example, we explore their composition, their interactions with the plastic substrate, and their potentially useful functional roles. The presentation will further discuss the importance of considering plastic-associated pollutants in the investigation of such biofilms. T2 - Microbiological Colloquium ICBM CY - Oldenburg, Germany DA - 10.07.2025 KW - Microplastics KW - Microbiome KW - Biofilm PY - 2025 AN - OPUS4-63836 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Fuentes, Elsa A1 - Prieto, Beatriz A1 - Gorbushina, Anna T1 - Mixed model biofilm: interactions between algae, fungi and cyanobacteria and their effects on granite biodeterioration N2 - Granite, despite being one of the most widely used rocks for building material cultural heritage, is also one of the least studied. Previous works have shown that environmental parameters modulated by climate change will lead to changes in the microbial composition of biofilms grown on stone, but also to changes in the production of EPS, in the composition of pigments and, as a consequence, in the biodeterioration processes that this rock undergoes (Fuentes, 2023). Considering that the colonisation process is highly dynamic, small changes in climatic conditions can lead to the formation of different types of biofilms and diverse interactions between species. Knowing the contribution of the different organisms to the deterioration process is important both to anticipate the consequences that climate change will have on the deterioration of the granite, but also when addressing the processes of recolonization after cleaning, to ensure an improvement of the present situation. So, in order to continue my line of research on granite biodeterioration, the aim of this new project is to study the contribution of each type of organism (green algae, cyanobacteria and fungi) to the process of granite deterioration as well as the specific effect on each mineral, in addition to its role in the resilience and response of biofilms to environmental changes. With this main objective, the effect of the type of substrate on the composition of a model mixed biofilm formed by the fungus Knufia petricola, the algae Jaagichlorella sp. and the cyanobacterium Synechocystis sp. will be studied. The results obtained on granite will be compared with those obtained with other lithic types such as marble or limestone. Furthermore, it will be observed if the different ratios between organisms lead to changes in the capacity of these organisms to generate biodeterioration and to buffer climatic changes. Finally, the susceptibility of each mineral that makes up the granite - quartz, feldspars, micas - to biodeterioration mediated by each type of organism will be analysed. To address these questions, on the one hand, the response of the mixed biofilms as a whole will be evaluated by means of confocal microscopy, PAM, as well as the quantification of pigments and EPS, and on the other hand, the effect of these organisms on the deterioration of the substrates, through the use of SEM and TEM, which will allow the assessment of both the changes in porosity and the appearance of deterioration in the surface layers of the rock. This research will deepen the knowledge of the processes of granite deterioration, which have been limitedly studied in relation to microorganisms; but also aims to provide the scientific community with a model mixed biofilm to increase the reproducibility between experiments, one of the main limitations of this field of study. T2 - 19th International Biodeterioration and Biodegradation Symposium CY - Berlin, Germany DA - 09.09.2024 KW - Biofilm KW - Stone KW - Algae KW - Fungi KW - Cyanobacteria KW - Cultural heritage PY - 2024 AN - OPUS4-62272 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Wen, Keqing T1 - In situ analysis of biofilm formation under different flow regimes with the help of a microfluidic platform N2 - Bacteria often live in habitats characterized by fluid flow, which is ubiquitous in a diverse range of environments such as surface waters, wastewater treatment facilities, pipelines, and medical implants. Bacterial adhesion on surfaces may lead to biocorrosion and biodegradation. In comparison to traditional static and macro flow chamber assays for biofilm formation studies, microfluidic chips allow in situ monitoring of biofilm formation and biofilm related gene expression under various flow regimes. We developed a complete microfluidic platform to investigate biofilms under precisely controlled flow conditions. This platform central unit is a single-inlet microfluidic flow cell with a 5 mm wide chamber tested and analyzed by imaging tracking velocimetry (PIV) to achieve ultra-homogenous flow in the central area of the chamber. Additionally, dedicated microstructures were introduced to the chamber’s center to favor and localize bacterial adhesion and biofilm formation pattern. The flows and vortices induced by the structure were analyzed by computational fluid dynamics (CFD) and related to shape and dimension of the biofilm formed by Escherichia coli TG1. The major proteinaceous component of E. coli biofilms are extracellular amyloid fibers (curli) consisting of major (CsgA) and minor (CsgB) subunits. We used the promotor probe plasmid pRU1701 to monitor csgB-promotor activity under different flow regimes in complex and minimal medium. For comparison, csgB promotor activity in a batch liquid culture and curli production on LB and M9 agar plates were assessed. The microfluidic platform represents a powerful and versatile tool for studying biofilm in flow. The setup shows great potential for the yet not too much explored in flow monitoring of biofilm formation and related gene expression under hydrodynamic stresses. T2 - International Biodeterioration and Biodegradation Symposium (IBBS) 19 CY - Berlin, Germany DA - 09.09.2024 KW - Microfluidics KW - Biofilm KW - Escherichia coli KW - Curli PY - 2024 AN - OPUS4-61911 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 - TY - CONF A1 - Dehkohneh, Abolfazl T1 - Fungal biofilms on materials: describing and modelling growth of the black fungus Knufia petricola N2 - Fungi that grow as biofilms are associated with clinical settings as well as various cases of material fouling and material damage. Black fungi as biofilm formers have been rarely studied so far. Their conspicuous dark pigmentation, EPS production, adhesion capabilities and adaptations to stresses allow black fungi to develop biofilms on materials under harsh conditions. For example, rock-inhabiting black fungi withstand sun irradiation and dehydration and are therefore ubiquitous on arid surfaces like solar panels and marble monuments. To understand and control their ability to colonise and deteriorate materials, one should assess and model black fungi’s growth patterns. But so far, no mathematical model has been developed to describe their growth. Knufia petricola A95, representing rock-inhabiting fungi from Chaetothyriales, is genetically amenable and can serve as a model for biofilm studies in black fungi. The primary objective of this project is to develop a growth model for K. petricola A95 which will enable to define and predict material colonisation of black fungi. Dedicated experimental work with K. petricola will allow the quantitative assessment of the impact of environmental conditions (e.g. pH, nutrients, etc.) on the growth behaviour at the biofilm and single cells level. Data which will be used to validate and develop an individual-based model (based on the iDynoMICS modelling platform) that explains how fungal biofilms form, colonise materials, and cause deterioration. Thus far, research has been conducted on the impact of different concentrations and sources of major elements (e.g. C, N, …), as well as trace elements (e.g. Cu, Mg, …), on the colony shape and biomass of Knufia petricola A95 biofilms. To study the behaviour of single cells, the length of the cell cycle in different growth media has been determined via the combined use of microfluidic devices and confocal microscopy. T2 - IUBMB Focused Meeting on Extremophilic Fungi (FUN-EX) CY - Ljubljana, Slovenia DA - 19.09.2023 KW - Biofilm KW - Rock-inhabiting fungus KW - Mathematical modelling PY - 2023 AN - OPUS4-58438 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Oberbeckmann, Sonja T1 - On the intersection of microbiome and material research: what can be achieved? N2 - Any surface in the environment acts as hotspot for microbial attachment and activity. These biofilms represent the interface between humans and the environment. While in the past biofilms were often seen as disturbance, we now start to understand the enormous potential of beneficial biofilms. They can be used in a broad range of applications and are sources for new microorganisms and traits. After all, biofilms represent a great example for a collaborative lifestyle. T2 - Bioeconomy Changemakers Festival, Hereon CY - Teltow, Germany DA - 14.03.2024 KW - Biofilm KW - Microbiome KW - Sustainability KW - Biosphere KW - Microplastics PY - 2024 AN - OPUS4-60202 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 - CONF A1 - von Werder, Julia T1 - Bioreceptive Building Facades: Codesigning with nature N2 - Building envelopes represent a key interface between solid substrates, the biosphere, and the atmosphere, and consequently serve as natural habitats for subaerial biofilms. This study investigates strategies to enhance the bioreceptivity of concrete cladding to support microalgae‑rich biofilms as a sustainable alternative to biocide‑dependent facade systems. Using a controlled dual‑species biofilm model and assessing algal vitality via PAM fluorometry, we examined how concrete composition and surface properties influence colonization dynamics. The results demonstrate that substrate pH and carbonation state are primary determinants of both biofilm establishment and organismal vitality, whereas nutrient supplementation exerts comparatively minor effects. Adhesion assays indicate that moderate mechanical stress can increase biofilm robustness, and laboratory rain simulations show that surface texture and near‑surface porosity promote water retention and enhance biofilm attachment. A synergistic interaction between the algal and fungal components was observed under specific stress conditions, offering a potential explanation for the reduced performance of biofilms when transitioning from ideal laboratory settings to outdoor environments. Overall, the findings highlight that the development of stable, photosynthetically active biofilm facades requires careful optimization of organism growth, physiological performance, and long‑term adhesion to the substrate. T2 - SASBE 2025: Smart and Sustainable Built Environment CY - Lille, France DA - 03.11.2025 KW - Concrete KW - Bioreceptivity KW - Laboratory test KW - Biofilm KW - Fluorometry PY - 2025 AN - OPUS4-65446 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - von Werder, Julia T1 - Greening Concrete with biofilms: Codesigning with nature N2 - uilding envelopes act as artificial lithic surfaces and natural substrates for subaerial biofilms, whose establishment depends on surface bioreceptivity. This study investigates how concrete cladding can be engineered to support microalgae‑dominated biofilms. A multi‑stage experimental framework—ranging from petri‑dish cultivation and adhesion testing to laboratory weathering simulations and outdoor exposure—was applied. A reproducible dual alga–fungus model biofilm enabled controlled assessment, with algal vitality quantified using PAM fluorometry. Results identify pH and carbonation as primary determinants of successful colonization, while nutrient addition has only minor influence. Adhesion tests show that moderate stress can enhance resilience to hydrodynamic forces. Rain‑simulation experiments highlight the importance of surface texture and near‑surface porosity for water retention, microbial attachment, and sustained growth. A synergistic interaction between algae and fungi under stress conditions may explain the poor outdoor performance of biofilms cultivated under ideal laboratory conditions. Overall, optimizing photosynthetic efficiency, organismal growth, and adhesion strength is essential for developing durable algal biofilm‑based façade systems. T2 - 4th International Conference of Sustainable Building Materials CY - Eindhoven, The Netherlands DA - 10.08.2025 KW - Concrete KW - Bioreceptivity KW - Laboratory test KW - Biofilm KW - Fluorometry PY - 2025 AN - OPUS4-65447 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Bonse, Jörn T1 - Bacterial adhesion on ultrashort pulse laser processed surfaces ― more than size matters! N2 - Bacterial biofilms are aggregates of bacterial cells, often attached to a surface and enclosed by a self-produced extracellular matrix which confers increased stress tolerance and resistance to cleaning. Biofilm formation leads to biofouling which gives rise to high costs in numerous technical settings due to biocorrosion and biodegradation. However, biofilms can also be attractive for industrial settings such as wastewater treatment systems or for soil bioremediation processes. Hence, the control of bacterial adhesion to a surface is of major concern. Surface topography strongly influences bacterial adhesion. Therefore, one promising way to achieve bacteria-guiding surfaces lies in the contactless and aseptic large-area laser processing of technical surfaces. We used short and ultrashort pulsed laser systems to generate different surface textures, mainly high-spatial-frequency and low-spatial-frequency laser-induced periodic surface structures, LIPSS (HFSL and LFSL), on Ti, Ti-alloy, steel, and polymers (PET and PE). Pristine (polished) and laser processed samples were subjected to bacterial adhesion experiments with two different Escherichia coli strains and Staphylococcus aureus as test organisms. The bacterial strains differed in their cell wall structure (grampositive vs. gramnegative strains), in size, shape, the occurrence of cell appendages, and in their biofilm forming capabilities. Adhesion patterns were analyzed microscopically and compared regarding the respective test strain and surface topography. Our results revealed that adhesion behavior strongly depends not only on the material’s topography and chemistry, but also on the specific bacterial strain, the presence of cell appendages, and ambient growth conditions. T2 - 13th International Conference on Photoexcited Processes and Applications, ICPEPA-13 CY - Lecce, Italy DA - 14.09.2025 KW - Biofilm KW - Bacterial adhesion KW - Laser-induced periodic surface structures (LIPSS) KW - Ultrashort laser pulses PY - 2025 AN - OPUS4-64166 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Bonse, Jörn T1 - Bacterial adhesion on ultrashort pulse laser processed surfaces ― more than size matters! N2 - Bacterial biofilms are aggregates of bacterial cells, often attached to a surface, and enclosed by a self-produced extracellular matrix which confers increased stress tolerance and resistance to cleaning. Biofilm formation leads to biofouling which gives rise to high costs in numerous technical settings due to biocorrosion and biodegradation. However, biofilms can also be attractive for industrial settings such as wastewater treatment systems or for soil bioremediation processes. Hence, the control of bacterial adhesion to a surface is of major concern. Surface topography strongly influences bacterial adhesion. Therefore, one promising way to achieve bacteria-guiding surfaces lies in the contactless and aseptic large-area laser processing of technical surfaces. We used short and ultrashort pulsed laser systems to generate different surface textures, mainly high-spatial-frequency and low-spatial-frequency laser-induced periodic surface structures, LIPSS (HFSL and LFSL), on Ti, Ti-alloy, steel, and polymers (PET and PE). Pristine (polished) and laser processed samples were subjected to bacterial adhesion experiments with two different Escherichia coli strains and Staphylococcus aureus as test organisms. The bacterial strains differed in their cell wall structure (grampositive vs. gramnegative strains), in size, shape, the occurrence of cell appendages, and in their biofilm forming capabilities. Adhesion patterns were analyzed microscopically and compared regarding the respective test strain and surface topography. Our results revealed that adhesion behavior strongly depends not only on the material’s topography and chemistry, but also on the specific bacterial strain, the presence of cell appendages, and ambient growth conditions. T2 - 13th International LIPSS Workshop CY - Enschede, Netherlands DA - 29.10.2025 KW - Bacterial adhesion KW - Biofilm KW - Laser-induced periodic surface structures (LIPSS) KW - Ultrashort laser pulses PY - 2025 AN - OPUS4-64632 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 - UNA Workshop CY - Berlin, Germany DA - 29.01.2024 KW - Antibiotic KW - Biofilm KW - Tolerance KW - Efflux PY - 2024 AN - OPUS4-61280 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - von Werder, Julia T1 - Living Concrete Walls: Engineering Bioreceptivity and Biofilms N2 - Building envelopes are a natural habitat of subaerial biofilms and can be more or less prone to be colonized (i.e. to be bioreceptive). Focusing on the added value of biofilms on manmade substrates represents new aesthetic frontiers and reduces the use of biocides. Moreover, the metabolic processes of photosynthetic biofilms can positively influence human health and life quality in densely populated cities by converting or absorbing pollutants. In the presented research the bioreceptivity of concrete claddings for building facades is engineered to sustain either natural or artificial establishment of microalgae-dominated biofilms. To be able to differentiate between the intrinsic material properties and the climatic boundary conditions, the experimental design in the first step comprised different analyses with model mono- and multi-species biofilms in sterile conditions and a high control of the environmental parameters. Growth and vitality of the algal component of the biofilms has been assessed with Pulse-amplitude modulation (PAM) fluorometry. T2 - 78th RILEM Annual Week & RILEM International Conference on Sustainable Materials & Structures: Meeting the major challenges of the 21st century - SMS 2024 CY - Toulouse, France DA - 25.08.2024 KW - Bioreceptivity KW - Biofilm KW - Weathering KW - Concrete KW - PAM fluorometry KW - Carbonation PY - 2024 AN - OPUS4-62224 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -