TY - JOUR A1 - Martin-Sanchez, Pedro Maria A1 - Miller, A. Z. A1 - Garcia-Sanchez, A. M. A1 - Martin-Sanchez, Pedro Maria A1 - F.C. Pereira, M. A1 - Afonso, M. J. A1 - Saiz-Jimenez, C. A1 - Spangenberg, J. E. A1 - Jurado, V. A1 - Dionísio, A. A1 - Chaminé, H. I. A1 - Hermosin, B. T1 - Origin of abundant moonmilk deposits in a subsurface granitic environment N2 - Subsurface granitic environments are scarce and poorly investigated. A multi-disciplinary approach was used to characterize the abundant moonmilk deposits and associated microbial communities coating the granite walls of the 16th Century Paranhos spring water tunnel in Porto city (north-west Portugal). It is possible that this study is the first record of moonmilk in an urban subsurface granitic environment. The morphology and texture, mineralogical composition, stable isotope composition and microbial diversity of moonmilk deposits have been studied to infer the processes of moonmilk formation. These whitish secondary mineral deposits are composed of very fine needle fibre calcite crystals with different morphologies and density. Calcified filaments of fungal hyphae or bacteria were distinguished by field emission scanning electron microscopy. Stable isotope analysis revealed a meteoric origin of the needle fibre calcite, with an important contribution of atmospheric CO2, soil respiration and HCO3 − from weathering of Ca-bearing minerals. The DNA-based analyses revealed the presence of micro-organisms related to urban contamination, including Actinobacteria, mainly represented by Pseudonocardia hispaniensis, Thaumarchaeota and Ascomycota, dominated by Cladosporium. This microbial composition is consistent with groundwater pollution and contamination sources of the overlying urban area, including garages, petrol stations and wastewater pipeline leakage, showing that the Paranhos tunnel is greatly perturbed by anthropogenic activities. Whether the identified micro-organisms are involved in the formation of the needle fibre calcite or not is difficult to demonstrate, but this study evidenced both abiotic and biogenic genesis for the calcite moonmilk in this subsurface granitic environment. KW - Biomineralization KW - Carbonate precipitation KW - Granite KW - Moonmilk KW - Needle fibre calcite PY - 2017 UR - https://onlinelibrary.wiley.com/doi/full/10.1111/sed.12431 DO - https://doi.org/10.1111/sed.12431 SN - 1365-3091 VL - 65 IS - 2 SP - 1482 EP - 1503 PB - Wiley AN - OPUS4-43622 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Martin-Sanchez, Pedro Maria A1 - Gorbushina, Anna A1 - Kunte, Hans-Jörg A1 - Toepel, Jörg T1 - A novel qPCR protocol for the specific detection and quantification of the fuel-deteriorating fungus Hormoconis resinae N2 - A wide variety of fungi and bacteria are known to contaminate fuels and fuel systems. These microbial contaminants have been linked to fuel system fouling and corrosion. The fungus Hormoconis resinae, a common jet fuel contaminant, is used in this study as a model for developing innovative risk assessment methods. A novel qPCR protocol to detect and quantify H. resinae in, and together with, total fungal contamination of fuel systems is reported. Two primer sets, targeting the markers RPB2 and ITS, were selected for their remarkable specificity and sensitivity. These primers were successfully applied on fungal cultures and diesel samples demonstrating the validity and reliability of the established qPCR protocol. This novel tool allows clarification of the current role of H. resinae in fuel contamination cases, as well as providing a technique to detect fungal outbreaks in fuel systems. This tool can be expanded to other well-known fuel-deteriorating microorganisms. KW - Microbial contamination KW - Real-time quantitative PCR KW - Microbiologically influenced corrosion; KW - Diesel biodeterioration KW - Fouling KW - Indicator PY - 2016 DO - https://doi.org/10.1080/08927014.2016.1177515 SN - 0892-7014 VL - 32 IS - 6 SP - 635 EP - 644 PB - Taylor & Francis Group CY - Abingdon AN - OPUS4-37337 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Coutinho, M.L. A1 - Miller, A. Z. A1 - Martin-Sanchez, Pedro Maria A1 - Mirao, J. A1 - Gomez-Bolea, A. A1 - Machado-Moreira, B. A1 - Cerqueira-Alves, L. A1 - Jurado, V. A1 - Saiz-Jimenez,, C. A1 - Lima, A. A1 - Phillips, A. J. L. A1 - Pina, F. A1 - Macedo, M. F. T1 - A multiproxy approach to evaluate biocidal treatments on biodeteriorated majolica glazed tiles N2 - The Fishing House located on the grounds of the Marquis of Pombal Palace, Oeiras, Portugal, was built in the 18th century. During this epoch, Portuguese gardens, such as the one surrounding the Fishing House, were commonly ornamented with glazed wall tile claddings. Currently, some of these outdoor tile panels are covered with dark colored biofilms, contributing to undesirable aesthetic changes and eventually inducing chemical and physical damage to the tile surfaces. Phylogenetic analyses revealed that the investigated biofilms are mainly composed of green algae, cyanobacteria and dematiaceous fungi. With the aim of mitigating biodeterioration, four different biocides (TiO2 nanoparticles, Biotin® T, Preventol® RI 80 and Albilex Biostat®) were applied in situ to the glazed wall tiles. Their efficacy was monitored by visual examination, epifluorescence microscopy and DNA-based analysis. Significant changes in the microbial community composition were observed 4 months after treatment with Preventol® RI 80 and Biotin® T. Although the original community was inactivated after these treatments, an early stage of re-colonization was detected 6 months after the biocide application. TiO2 nanoparticles showed promising results due to their self-cleaning effect, causing the detachment of the biofilm from the tile surface, which remained clean 6 and even 24 months after biocide application. KW - Biofilm KW - Glazed tiles KW - Fungi PY - 2016 DO - https://doi.org/10.1111/1462-2920.13380 SN - 1462-2912 SN - 1462-2920 VL - 18 IS - 12 SP - 4794 EP - 4816 PB - Society for Applied Microbiology and John Wiley & Sons Ltd AN - OPUS4-37380 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Martin-Sanchez, Pedro Maria T1 - Contribution of culture-independent methods to the cave aerobiology; the case of Lascaux Cave T2 - International Workshop "The Conservation of Subterranean Cultural Heritage" CY - Seville, Spain DA - 2014-03-24 PY - 2014 AN - OPUS4-31623 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Martin-Sanchez, Pedro Maria T1 - Quantitative PCR Assays for Monitoring Microorganisms Associated with Biodeterioration Cases T2 - XXV Spanish Microbiology Society Congress CY - Logrono, Spain DA - 2015-07-06 PY - 2015 AN - OPUS4-34255 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Martin-Sanchez, Pedro Maria A1 - Gorbushina, Anna A1 - Toepel, Jörg A1 - Kunte, Hans-Jörg T1 - A novel qPCR protocol to the specific detection and quantification of Hormoconis resinae in fuel systems N2 - A novel qPCR protocol to the specific detection and quantification of Hormoconis resinae in fuel systems P.M. Martin-Sanchez1 , J. Toepel1, H.J. Kunte1, A.A. Gorbushina1, 2 1BAM Federal Institute for Materials Research and Testing, Department 4 Materials & Environment, Berlin, Germany 2 Free University of Berlin, Department of Earth Sciences & Biology, Chemistry & Pharmacy, Berlin, Germany Introduction. Microbial contamination of fuels is a phenomenon widely reported in the literature causing dramatic problems in fuel systems such as blockage of pipelines and filters, and corrosion of their metal components. A variety of microorganisms, fungi, yeasts and bacteria, can contaminate the distillate fuels. Between them, the filamentous fungus Hormoconis resinae, previously described as Cladosporium resinae and also known as "kerosene fungus" or "diesel bug", has traditionally been considered the main responsible of such troubles due to its great capacity to produce biomass and biofilms. Aim. The overarching goal of this study was to develop a novel real-time quantitative PCR (qPCR) method to detect and quantify the fungus H. resinae in samples from fuel systems. Materials and methods. Four specific primer sets targeting on two molecular markers, RNA polymerase II second largest subunit (RPB2) and internal transcribed spacers of rDNA (ITS), were designed using Primer Blast. The specificity of primer sets was evaluated by both conventional PCR and qPCR, analyzing the DNA extracts from H. resinae strains and other fungi and yeasts previously described in fuels as well as four taxonomically closest related species. The efficiency and sensitivity of these protocols were assessed by constructing the corresponding standard curves for each primer sets. Results. Two primer sets, Hr556F/Hr814R (RPB2) and Hr101F/Hr408R (ITS), were selected according to their remarkable specificity. Their standard curves showed a good correlation coefficient and efficiency. Additionally, the selected primer pairs showed a high sensitivity detecting a tiny amount of H. resinae DNA, 10 pg for RPB2 primers and 0.1 pg for ITS primers. Conclusions. The established qPCR protocol is a reliable and useful tool to the specific detection and quantification of H. resinae. Its subsequent implementation to analyze samples of fuels or biofilms covering fuel systems will allow the early detection of fungal outbreaks in order to apply the appropriated control procedures. Moreover, these analyses will determine the current incidence of this species in the cases of biological fuel contamination. Keywords. Hormoconis resinae, real-time qPCR, diesel bug, kerosene fungus T2 - XVI International Biodeterioration and Biodegradation Symposium; International Biodeterioration & Biodegradation Society CY - Lodz, Poland DA - 2014-09-03 PY - 2014 AN - OPUS4-32165 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Martin-Sanchez, Pedro Maria T1 - Detection and quantification methods for material-colonizing microorganisms by pPCR: from rock paintings in Lascaux to photovoltaic panels T2 - DECHEMA /GfKORR-Fachgruppensitzung "Mikrobielle Materialzerstörung und Materialschutz" CY - Frankfurt am Main, Deutschland DA - 2014-10-17 PY - 2014 AN - OPUS4-33172 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Martin-Sanchez, Pedro Maria A1 - Toepel, Jörg A1 - Kunte, Hans-Jörg A1 - Gorbushina, Anna T1 - Fast and reliable qPCR-based detection of microbial contamination in fuel systems T2 - 5th International Symposium on Applied Microbiology and Molecular Biology in Oil Systems (ISMOSS) CY - Stavanger, Norway DA - 2015-06-02 PY - 2015 AN - OPUS4-33589 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Martin-Sanchez, Pedro Maria A1 - Gebhardt, Christopher A1 - Toepel, Jörg A1 - Barry, J. A1 - Munzke, N. A1 - Günster, Jens A1 - Gorbushina, Anna T1 - Monitoring microbial soiling in photovoltaic systems: A qPCR-based approach N2 - Soiling of photovoltaic (PV) systems compromises their performance causing a significant power loss and demanding periodical cleaning actions. This phenomenon raises great concerns in the solar energy field, thus leading to notable research efforts over the last decades. Soiling is caused by a dual action of dust deposition and biofouling. However, surprisingly, the microbiological contribution to PV soiling is often overlooked or underestimated. In this study, a variety of qPCR-based methods have been developed to quantify the microbial load of fungi, bacteria and phototrophs on PV panels. These protocols were evaluated by comparison with culturedependent methods, and were implemented with real solar plants for two years. The results show that the developed molecular methods are highly sensitive and reliable to monitor the microbial component of the soiling. Fungal biomass was clearly dominant in all analysed PV modules, while bacteria and phototrophs showed much lower abundance. Light microscopy and qPCR results revealed that melanised microcolonial fungi and phototrophs are the main biofilm-forming microorganisms on the studied solar panels. In particular, the fungal qPCR protocol is proposed as a useful tool for monitoring of PV soiling, and investigating the microbial contribution to specific soiling cases. KW - Solar panels KW - PV modules KW - Real-time qPCR KW - Bacteria KW - Fungi KW - Phototrophs PY - 2018 DO - https://doi.org/10.1016/j.ibiod.2017.12.008 SN - 0964-8305 VL - 129 SP - 13 EP - 22 PB - Elsevier Science AN - OPUS4-43892 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Nilsson, R. H. A1 - Taylor, A. F. S. A1 - Adams, R. I. A1 - Baschien, C. A1 - Bengtsson-Palme, J. A1 - Cangren, P. A1 - Coleine, C. A1 - Iršėnaitė, R. A1 - Martin-Sanchez, Pedro Maria A1 - Meyer, W. A1 - Oh, S.-Y. A1 - Sampaio, J. P. A1 - Seifert, K. A. A1 - Sklenář, F. A1 - Stubbe, D. A1 - Suh, S.-O. A1 - Summerbell, R. A1 - Svantesson, S. A1 - Unterseher, M. A1 - Visagie, C. M. A1 - Weiss, M. A1 - Woudenberg, J. HC. A1 - Wurzbacher, C. A1 - Van den Wyngaert, S. A1 - Yilmaz, N. A1 - Yurkov, A. A1 - Kõljalg, U. A1 - Abarenkov, K. A1 - Daniel, H.-M. A1 - Glassman, S. I. A1 - Hirooka, H. A1 - Irinyi, L. T1 - Taxonomic annotation of public fungal ITS sequences from the built environment – a report from an April 10–11, 2017 workshop (Aberdeen, UK) N2 - Recent DNA-based studies have shown that the built environment is surprisingly rich in fungi. These indoor fungi – whether transient visitors or more persistent residents – may hold clues to the rising levels of human allergies and other medical and building-related health problems observed globally. The taxo¬nomic identity of these fungi is crucial in such pursuits. Molecular identification of the built mycobiome is no trivial undertaking, however, given the large number of unidentified, misidentified, and technically compromised fungal sequences in public sequence databases. In addition, the sequence metadata required to make informed taxonomic decisions – such as country and host/substrate of collection – are often lacking even from reference and ex-type sequences. Here we report on a taxonomic annotation workshop (April 10–11, 2017) organized at the James Hutton Institute/University of Aberdeen (UK) to facilitate reproducible studies of the built mycobiome. The 32 participants went through public fungal ITS bar¬code sequences related to the built mycobiome for taxonomic and nomenclatural correctness, technical quality, and metadata availability. A total of 19,508 changes – including 4,783 name changes, 14,121 metadata annotations, and the removal of 99 technically compromised sequences – were implemented in the UNITE database for molecular identification of fungi (https://unite.ut.ee/) and shared with a range of other databases and downstream resources. Among the genera that saw the largest number of changes were Penicillium, Talaromyces, Cladosporium, Acremonium, and Alternaria, all of them of significant importance in both culture-based and culture-independent surveys of the built environment. KW - Indoor mycobiome KW - Built environment KW - Molecular identification KW - Fungi KW - Taxonomy KW - Systematics KW - Sequence annotation KW - Metadata KW - Open data PY - 2018 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-438949 DO - https://doi.org/10.3897/mycokeys.28.20887 SN - 1314-4049 SN - 1314-4057 VL - 28 SP - 65 EP - 82 PB - Pensoft Publishers CY - Washington, DC AN - OPUS4-43894 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - C., Ruibal A1 - L., Selbmann A1 - Serap, Avci A1 - Martin-Sanchez, Pedro Maria A1 - Gorbushina, Anna ED - Gorbushina, Anna T1 - Roof-Inhabiting Cousins of Rock-Inhabiting Fungi: Novel Melanized Microcolonial Fungal Species from Photocatalytically Reactive Subaerial Surfaces N2 - Subaerial biofilms (SAB) are an important factor in weathering, biofouling, and biodeterioration of bare rocks, building materials, and solar panel surfaces. The realm of SAB is continually widened by modern materials, and the settlers on these exposed solid surfaces always include melanized, stress-tolerant microcolonial ascomycetes. After their first discovery on desert rock surfaces, these melanized chaetothyrialean and dothidealean ascomycetes have been found on Mediterranean monuments after biocidal treatments, Antarctic rocks and solar panels. New man-made modifications of surfaces (e.g., treatment with biocides or photocatalytically active layers) accommodate the exceptional stress-tolerance of microcolonial fungi and thus further select for this well-protected ecological group. Melanized fungal strains were isolated from a microbial community that developed on highly photocatalytic roof tiles after a long-term environmental exposure in a maritime-influenced region in northwestern Germany. Four of the isolated strains are described here as a novel species, Constantinomyces oldenburgensis, based on multilocus ITS, LSU, RPB2 gene phylogeny. Their closest relative is a still-unnamed rock-inhabiting strain TRN431, here described as C. patonensis. Both species cluster in Capnodiales, among typical melanized microcolonial rock fungi from different stress habitats, including Antarctica. These novel strains flourish in hostile conditions of highly oxidizing material surfaces, and shall be used in reference procedures in material testing. KW - Microcolonial fungi KW - Multilocus phylogeny KW - Photocatalytic surfaces KW - Subaerial biofilms KW - Stress tolerance KW - Constantinomyces PY - 2018 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-455182 DO - https://doi.org/10.3390/life8030030 VL - 8 IS - 3 SP - 30 EP - 44 PB - MDPI CY - Basel, Schweiz AN - OPUS4-45518 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Climent Terol, Estela A1 - Gotor, Raul A1 - Tobias, Charlie A1 - Bell, Jérémy A1 - Martin-Sanchez, Pedro A1 - Rurack, Knut T1 - Dip Sticks Embedding Molecular Beacon-Functionalized Core−Mesoporous Shell Particles for the Rapid On-Site Detection of Microbiological Fuel Contamination N2 - Microbial contamination of fuels by fungi and bacteria presents risks of corrosion and fuel system fouling. In this work, a rapid test for the determination of microbial genomic DNA from aqueous fuel extracts is presented. It combines test strips coated with polystyrene core/mesoporous silica shell particles, to the surface of which modified fluorescent molecular beacons are covalently grafted, with a smartphone detection system. In the hairpin loop, the beacons incorporate a target sequence highly conserved in all bacteria, corresponding to a fragment of the 16S ribosomal RNA gene, which is also present to a significant extent in the 18S rRNA gene of fungi, allowing for broadband microbial detection. In the developed assay, the presence of genomic DNA extracts from bacteria and fungi down to ca. 20−50 μg L−1 induced a distinct fluorescence response. The optical read-out was adapted for on-site monitoring by combining a 3D-printed case with a conventional smartphone, taking advantage of the sensitivity of contemporary complementary metal oxide semiconductor (CMOS) detectors. Such an embedded assembly allowed to detect microbial genomic DNA in aqueous extracts down to ca. 0.2−0.7 mg L−1 and presents an important step toward the on-site uncovering of fuel contamination in a rapid and simple fashion. KW - Bacteria KW - Fungi KW - Rapid test KW - Fluorescence KW - Smartphone KW - Biofouling PY - 2020 DO - https://doi.org/10.1021/acssensors.0c01178 SN - 2379-3694 VL - 6 IS - 1 SP - 27 EP - 34 PB - American Chemical Society CY - Washington, DC AN - OPUS4-51956 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - De la Rosa, J. M. A1 - Martin-Sanchez, Pedro Maria A1 - Santiago-Cortes, S. A1 - Hermosin, B. A1 - Knicker, H. A1 - Saiz-Jimenez, C. ED - De la Rosa, J. M. T1 - Structure of melanins from the fungi Ochroconis lascauxensis and Ochroconis anomala contaminating rock art in the Lascaux Cave N2 - Two novel species of the fungal genus Ochroconis, O. lascauxensis and O. anomala have been isolated from the walls of the Lascaux Cave, France. The interest in these fungi and their melanins lies in the formation of black stains on the walls and rock art which threatens the integrity of the paintings. Here we report solid-state cross polarization magic-angle spinning 13C and 15N nuclear magnetic resonance (NMR) spectroscopy and surface-enhanced Raman spectroscopy (SERS) of the melanins extracted from the mycelia of O. lascauxensis and O. anomala in order to known their chemical structure. The melanins from these two species were compared with those from other fungi. The melanins from the Ochroconis species have similar SERS and 13C and 15N NMR spectra. Their chemical structures as suggested by the data are not related to 3,4-dihydroxyphenylalanine, 5,6-dihydroxyindole or 1,8-dihydroxynaphthalene precursors and likely the building blocks from the melanins have to be based on other phenols that react with the N-terminal amino acid of proteins. The analytical pyrolysis of the acid hydrolysed melanin from O. lascauxensis supports this assumption. KW - Microbiology KW - Biodeterioration KW - Melanins KW - Fungi PY - 2017 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-435345 DO - https://doi.org/10.1038/s41598-017-13862-7 SN - 2045-2322 VL - 7 SP - 13441, 1 EP - 13441, 11 PB - Nature AN - OPUS4-43534 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Mitova, M. A1 - Iliev, M. A1 - Nováková, A. A1 - Gorbushina, Anna A1 - Groudeva, V.I. A1 - Martin-Sanchez, Pedro Maria T1 - Diversity and biocide susceptibility of fungal assemblages dwelling in the Art Gallery of Magura Cave, Bulgaria N2 - Magura Cave, north-western Bulgaria, possesses valuable rock-art paintings made with bat guano and dated from the period between the Eneolithic and Bronze Ages. Since 2008, the Art Gallery is closed to the general public in order to protect the paintings from vandalism, microclimatic changes caused by visitors and artificial illumination, and the consequent growth of fungi and phototrophs. Nevertheless, some tourist visits are allowed under the supervision of cave managers. This study provides the first scientific report on cultivable fungal assemblages dwelling different substrata in the Art Gallery. A total of 78 strains, belonging to 37 OTUs (Ascomycota 81%, Zygomycota 13%, Basidiomycota 5%), were isolated in the study. This fungal diversity was clearly dominated by Penicillium (50% of strains) and Aspergillus (13%). The most relevant visible fungal colonies were detected in sediments rich in bat guano, where, besides Penicillium, other guanophilic fungi such as Mucor, Mortierella, Trichosporon and Trichoderma were dominant. Conversely, scarce fungi were detected on rock surface of painted walls. Based on the biocide susceptibility assay, octylisothiazolinone (OIT) and benzalkonium chloride (BAC) were effective inhibiting the in vitro growth of dominant fungal species in Magura Cave, when applied at concentrations ranged from 100 to 1,000 mg/L. These data provide a valuable knowledge about Magura fungi, and exemplify a type of preliminary test that may be conducted before planning any biocide treatment. However, considering the irreversible effects of biocides on the ecological balance in caves, and the low fungal contamination in painted walls of Magura Cave, there is no reason to use conventional biocides in this cave. Further studies, monitoring microbial communities and microclimatic parameters, should be conducted to improve the knowledge on microbial ecology in Magura Cave and possible human impacts, as well as to allow the early detection of potential microbial outbreaks. KW - Fungi KW - Rock-art caves KW - Biocides PY - 2017 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-397436 DO - https://doi.org/10.5038/1827-806X.46.1.2061 SN - 0392-6672 VL - 46 IS - 1 SP - 67 EP - 80 PB - Scholar Commons CY - Tampa, FL, USA AN - OPUS4-39743 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Martin-Sanchez, Pedro Maria A1 - Gorbushina, Anna A1 - Toepel, Jörg T1 - Quantification of microbial load in diesel storage tanks using culture- and qPCR-based approaches N2 - Microbial contamination of fuels, associated with a wide variety of bacteria and fungi, leads to decreased product quality and can compromise equipment performance by biofouling and microbiologically influenced corrosion of pipelines and storage tanks. Detection and quantification of biomass are critical in monitoring fuel systems for an early detection of microbial outbreaks. The aims of this study are (i) to quantify bacterial and fungal contamination in samples from diesel storage tanks of petrol stations, using both culture dependent- and culture independent (qPCR) approaches, and (ii) to analyse the diversity of cultivable diesel-contaminating microorganisms with the purpose to create a strain collection for further use in biodeterioration experiments. Both methodological approaches revealed a high microbial contamination in all studied samples, with the bacterial load being much higher than the fungal load. The diversity of cultivable microorganisms was rather low. Based on criteria of abundance and fuel degradation potential, the most relevant microorganisms were identified as bacteria of genera Bacillus, Citrobacter, Burkholderia and Acetobacter, the filamentous fungi Paecilomyces variotii and Pseudallescheria boydii, and a Dipodascaceae yeast. Furthermore the validity and utility of qPCR-based methods are discussed. KW - Fuel contamination KW - Biofouling KW - Cultivation KW - Real-time qPCR KW - Bacteria KW - Fungi PY - 2016 DO - https://doi.org/10.1016/j.ibiod.2016.04.009 SN - 0964-8305 SN - 1879-0208 VL - 126 SP - 216 EP - 223 PB - Elsevier Ltd. AN - OPUS4-41260 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Bell, Jérémy A1 - Climent, Estela A1 - Gotor, Raúl A1 - Tobias, Charlie A1 - Martin-Sanchez, Pedro M. A1 - Rurack, Knut T1 - Dipstick coated with polystyrene-silica core-shell particles for the detection of microbiological fuel contamination N2 - Microbial contamination of fuels by fungi or bacteria poses risks such as corrosion and fuel system fouling, which can lead to critical problems in refineries and distribution systems and has a significant economic impact at every stage of the process. Many factors have been cited as being responsible for microbial growth, like the presence of water in the storage tanks. In fact, only 1 % water in a storage system is sufficient for the growth of microorganisms like bacteria or yeasts, as well as for the development of fungal biomass at the oil/water interface. This work presents a rapid test for the accurate determination of genomic DNA from aqueous fuel extracts. The detection is based on the use of polystyrene-mesoporous silica core-shell particles onto which modified fluorescent molecular beacons are covalently grafted. These beacons contain in the hairpin loop a target sequence highly conserved in all bacteria, corresponding to a fragment of the 16S ribosomal RNA subunit. The designed single-stranded molecular beacon contained fluorescein as an internal indicator and a quencher in its proximity when not hybridized. Upon hybridization in presence of the target sequence, the indicator and the quencher are spatially separated, resulting in fluorescence enhancement. To perform the assay the developed particles were deposited on different glass fibre strips to obtain a portable and sensitive rapid test. The assays showed that the presence of genomic DNA extracts from bacteria down to 50–70 μg L–1 induced a fluorescence response. The optical read-out was adapted for on-site monitoring by fitting a 3D-printed case to a conventional smartphone, taking advantages of the sensitivity of the CMOS detector. Such embedded assembly enabled the detection of genomic DNA in aqueous extracts down to the mg L–1 range and represents an interesting step toward on-site monitoring of fuel contamination. T2 - IMA 2023 CY - Chania, Greece DA - 18.09.2023 KW - Teststreifen KW - Test strip KW - Microbial KW - Mikrobiell KW - Smartphone KW - Particles KW - Partikeln PY - 2023 AN - OPUS4-58526 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -