TY - CONF A1 - Noack-Schönmann, Steffi A1 - Broughton, William J. A1 - Nai, Corrado A1 - Schneider, Lucienn A1 - Banasiak, Ronald A1 - Gorbushina, Anna T1 - Genetic Characterisation of MCF A95, a Micro-colonial Fungus that colonises Bare Rocks T2 - Annual Conference of the Association for General and Applied Microbiology (VAAM) T2 - Annual Conference of the Association for General and Applied Microbiology (VAAM) CY - Karlsruhe, Germany DA - 2011-04-03 PY - 2011 N1 - Geburtsname von Noack-Schönmann, Steffi: Noack, S. - Birth name of Noack-Schönmann, Steffi: Noack, S. AN - OPUS4-23507 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Noack-Schönmann, Steffi A1 - Spagin, Olga A1 - Gründer, Klaus-Peter A1 - Breithaupt, Mathias A1 - Günther, Achim A1 - Muschik, Bernd A1 - Gorbushina, Anna T1 - Sub-aerial biofilms as blockers of solar radiation: spectral properties as tools to charcterise material-relevant microbial growth JF - International biodeterioration & biodegradation N2 - Sub-aerial biofilms (SABs) are ubiquitous microbial communities that develop at the interface between hard surfaces and the atmosphere. Inherent SAB 'core-settlers' include phototrophic algae, cyanobacteria, heterotrophic bacteria and microcolonial fungi (MCF). SABs do not simply cover hard surfaces; they interact with them in myriads of ways and bind to the underlying substrate. Secretion of extracellular mucilage aids adhesion, while organic acids and acidic polysaccharides weather the surface. As protection against solar radiation, many members of the SAB consortia produce shielding pigments while the phototrophic inhabitants are laden with photosynthetic pigments. All absorb light of many wavelengths and in addition, the cells themselves scatter light. Both effects change the spectra of incoming radiation (including wavelengths that are converted to electricity by photovoltaic cells) and decrease its intensity. To quantify these effects on SABs as complex entities of organisms and pigments, we measured the spectral properties of model and natural biofilms transferred to glass. Here we show that SABs growing on solar panels and other substrates scatter incident radiation between 250 nm up to 1800 nm and block up to 70% of its transmission. Model biofilms have the advantage that their microbial components can be 'tuned' to resemble natural ones of different compositions thus providing a novel materials-testing tool. KW - Material-colonising microorganisms KW - Microcolonial fungi KW - Glass biodeterioration KW - Solar panels KW - Biofilm-impaired transmittance of radiation PY - 2014 DO - https://doi.org/10.1016/j.ibiod.2013.09.020 SN - 0964-8305 VL - 86 SP - 286 EP - 293 PB - Elsevier CY - Barking AN - OPUS4-30128 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Noack-Schönmann, Steffi A1 - Nai, Corrado A1 - Seiffert, Franz A1 - Gorbushina, Anna A1 - Milke, Ralf T1 - Microcolonial fungi: suspended life on the air-rock interface T2 - Mikrobiologie-Konferenz "How dead is dead III" T2 - Mikrobiologie-Konferenz "How dead is dead III" CY - Berlin, Germany DA - 2013-06-06 PY - 2013 AN - OPUS4-30798 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Noack-Schönmann, Steffi A1 - Bus, T. A1 - Banasiak, Ronald A1 - Knabe, Nicole A1 - Broughton, William J. A1 - Dulk-Ras, H.D. A1 - Hooykaas, P.J.J. A1 - Gorbushina, Anna T1 - Genetic transformation of Knufia petricola A95 - a model organism for biofilm-material interactions JF - AMB express N2 - We established a protoplast-based system to transfer DNA to Knufia petricola strain A95, a melanised rock-inhabiting microcolonial fungus that is also a component of a model sub-aerial biofilm (SAB) system. To test whether the desiccation resistant, highly melanised cell walls would hinder protoplast formation, we treated a melanin-minus mutant of A95 as well as the type-strain with a variety of cell-degrading enzymes. Of the different enzymes tested, lysing enzymes from Trichoderma harzianum were most effective in producing protoplasts. This mixture was equally effective on the melanin-minus mutant and the type-strain. Protoplasts produced using lysing enzymes were mixed with polyethyleneglycol (PEG) and plasmid pCB1004 which contains the hygromycin B (HmB) phosphotransferase (hph) gene under the control of the Aspergillus nidulans trpC. Integration and expression of hph into the A95 genome conferred hygromycin resistance upon the transformants. Two weeks after plating out on selective agar containing HmB, the protoplasts developed cell-walls and formed colonies. Transformation frequencies were in the range 36 to 87 transformants per 10 µg of vector DNA and 106 protoplasts. Stability of transformation was confirmed by sub-culturing the putative transformants on selective agar containing HmB as well as by PCR-detection of the hph gene in the colonies. The hph gene was stably integrated as shown by five subsequent passages with and without selection pressure. KW - DNA transfer KW - Fungal cell-walls KW - Protoplasts KW - Hygromycin resistance KW - Black yeast KW - Sub-aerial biofilms KW - Stress-protective morphology KW - Ancestor of opportunistic pathogens & lichens PY - 2014 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-320840 UR - http://www.amb-express.com/content/4/1/80 DO - https://doi.org/10.1186/s13568-014-0080-5 SN - 2191-0855 VL - 4 SP - 80, 1 EP - 6 PB - Springer CY - Heidelberg AN - OPUS4-32084 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -