TY - JOUR A1 - Schumacher, Julia T1 - CRISPR-Cas9 in der Materialforschung - Den gesteinsbesiedelnden Pilzen auf der Spur T1 - CRISPR-Cas9 in materials research - On the trail of rock-inhabiting fungi N2 - Das mikroskopische Leben auf exponierten Oberflächen ist genügsam und kooperativ. Gesteinsbesiedelnde schwarze Pilze, Grünalgen und Cyanobakterien unterstützen einander in der Eroberung von Felsen, Mauern, Denkmälern, Dächern, Fassaden und Sonnenkollektoren. Bedeutend sind die schwarzen Pilze als Gesteinszerstörer und Biofilmbildner. Ihre massiven Zellwände und ihr langsames Wachstum machen sie stresstolerant und fordern zugleich die experimentelle Forschung heraus. In der Materialforschung können Biofilme erwünscht oder unerwünscht sein. Biofilme auf Fassaden können das Innenstadtklima positiv beeinflussen, während sie auf einem Marmordenkmal unwillkommen sind. Ohne tieferes Verständnis der angepassten Mikroben ist weder ihre Bekämpfung noch ihre gezielte Förderung auf Materialien möglich. Hier treffen sich Genetik und Materialforschung: Die CRISPR-Cas9-Technologie ermöglicht es, die Genome der Pilze für funktionale Analysen zu editieren, um die Mechanismen der Materialbesiedlung und Materialschädigung zu entschlüsseln. N2 - Rock-inhabiting black fungi are adapted to the harsh life on rocks in deserts and release minerals from the rocks. The same adaptations enable these fungi to colonize man-made surfaces such as monuments, building facades and solar systems. Black fungi are often associated with phototrophic microorganisms. The slow growth and the melanized cell walls, which protect the fungi from extreme environmental infuences, render molecular biological and genetic engineering methods diffcult, which is why little is known about the biology of these fungi. Knufa petricola was selected to understand the processes of material colonization and damage with the help of adapted methods such as CRISPR-Cas9-mediated genome editing. KW - Knufia petricola KW - Schwarze Pilze KW - Bioflme KW - Genomeditierung KW - Pigmente KW - Multiplexing KW - Resistenzkassette KW - Transformanten KW - Knufia petricola KW - Black fungi KW - Biofilms KW - Pigments KW - Genome editing KW - Multiplexing KW - Resistance cassette KW - Transformants PY - 2024 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-620500 DO - https://doi.org/10.11576/biuz-7595 SN - 0045-205X SN - 1521-415X N1 - Volltext (PDF) in deutsch und englisch - Full text (PDF) in German and English VL - 54 SP - 41 EP - 50 PB - Verband Biologie, Biowissenschaften und Biomedizin in Deutschland (VBiO) CY - München AN - OPUS4-62050 LA - mul AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Schumacher, Julia T1 - Schwarze Pilze: Robuste Multitalente für die Biotechnologie T1 - Black fungi: Robust all-rounders for biotechnology N2 - Knufia petricola ist ein gesteinsbesiedelnder Pilz aus der polyphyletischen Gruppe der schwarzen Pilze. Diese Pilze entwickelten außergewöhnliche – und bisher kaum erforschte – Fähigkeiten, in verschiedenen extremen Umgebungen zu gedeihen. Die Nutzung der genetischen Vielfalt des Genoms von schwarzen Pilzen und die Nutzung von K. petricola als alternativer Wirt für die Produktion von Enzymen und Sekundärmetaboliten eröffnen Perspektiven für die Nutzung dieser bislang wenig bekannten Pilze für biotechnologische Anwendungen. N2 - Knufia petricola is a rock-inhabiting fungus belonging to the polyphyletic group of black fungi. These fungi developed extraordinary – and so far hardly studied – capabilities to thrive in different extreme environments. Accessing the genetic diversity of black fungal genomes and using K. petricola as an alternative host for producing enzymes and secondary metabolites opens perspectives for utilizing these so far little recognized fungi for biotechnological applications. KW - Knufia petricola KW - Fungal pigments KW - Genetic engineering KW - Knufia petricola KW - Pilzpigmente KW - Gentechnik PY - 2025 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-628150 DO - https://doi.org/10.1007/s12268-025-2442-8 SN - 0947-0867 SN - 1868-6249 VL - 31 IS - 2 SP - 159 EP - 162 PB - Springer CY - Heidelberg AN - OPUS4-62815 LA - mul AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schumacher, Julia T1 - How does light affect rock-inhabiting fungi? N2 - Sunlight is an almost unavoidable environmental cue and plays a fundamental role in the biology of pro- and eukaryotic organisms. To cope with sunlight-associated stresses e.g., high temperatures, UV radiation with associated DNA damage, accumulation of reactive oxygen species (ROS), desiccation and osmotic stresses, it is important for organisms to accurately sense and respond to changes in light. The benefits of light are obvious for green organisms such as cyanobacteria, algae and plants which use light as an energy source (photosynthesis). Less apparent are other light-dependent processes such as light-driven DNA repair by photolyases (photoreactivation) or ion pumping by microbial opsins. Fungi that can share light-flooded habitats with phototrophs may profit from their excess photosynthetic products. Rock-inhabiting Dothideomycetes and Eurotiomycetes including Knufia petricola possess many proteins for absorbing UV/blue, green, red and far-red light, produce the black 1,8 dihydroxynaphthalene (DHN) melanin and orange-red carotenoids, and may live in multispecies biofilms. Here, we are addressing the question to which extent constitutive pigment formation (melanin and carotenoids) and responses mediated by the stress-activated mitogen-activated protein (MAP) kinase contribute to the observed light (UV-B) tolerance of K. petricola. T2 - 32nd Fungal Genetics Conference CY - Pacific Grove, CA, USA DA - 12.03.2024 KW - Knufia petricola KW - Black fungi KW - Light-induced stress PY - 2024 AN - OPUS4-59732 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schumacher, Julia T1 - Iron Acquisition in Black Fungi: Genomic Insights & Mitigation N2 - Iron is an essential micronutrient for all organisms, driving intense competition for its acquisition. This competition is particularly evident in parasitic interactions, where hosts actively restrict iron availability to inhibit the growth of fungal invaders (nutritional immunity). Saprobic fungi, on the other hand, acquire iron by digesting dead organic material and may protect their nutrient sources from competitors through efficient iron uptake, rapid growth, and the production of toxic secondary metabolites. Rock-inhabiting black fungi colonize – alone or within microbial communities (subaerial biofilms) – oligotrophic, exposed surfaces such as rocks, stone monuments, and photovoltaic panels, where competition from fast-growing saprobes is minimal. To understand how these fungi acquire iron, we combined comparative genomics with targeted gene deletions in the model species Knufia petricola. Genome analysis revealed a reduced repertoire of iron acquisition-related genes compared to those of pathogenic relatives: a single reductive iron assimilation (RIA) complex, one non-ribosomal peptide synthetase (NRPS) for siderophore biosynthesis, and absence of vacuolar iron transporters. Functional assays demonstrated that K. petricola primarily relies on RIA, mediated by FTR1–FET1, and secondarily on siderophore-mediated iron acquisition (SIA) via NPS1. Mutants lacking both systems were nearly non-viable under iron limitation, confirming that RIA and SIA are the only relevant uptake routes under laboratory conditions, that simulate the free-living lifestyle. Cross-feeding and chemotropism assays indicated secretion of an extracellular siderophore enabling growth toward the iron-containing mineral olivine. This siderophore, however, failed to mobilize iron from strong chelators such as BPS and EDTA, and its chemical nature remains unknown. Although melanin adsorbs and reduces iron, results on deletion mutants showed that melanin does not contribute to iron uptake or chelator resistance, functioning instead as a passive iron sink. Sensitivity assays revealed unusually low minimal inhibitory concentrations (MICs) for these chelators in K. petricola and other rock-inhabiting fungi, suggesting limited iron acquisition and storage capacity. These findings highlight the vulnerability of rock-inhabiting fungi to iron depletion and suggest that strong iron chelators could serve as an effective strategy to inhibit fungal colonization of human-made surfaces. T2 - Annual Conference of the Association for General and Applied Microbiology (VAAM) 2026 CY - Berlin, Germany DA - 22.03.2026 KW - Material colonization KW - Knufia petricola KW - Iron chelation PY - 2026 AN - OPUS4-65751 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -