TY - CONF A1 - Dehkohneh, Abolfazl T1 - Effect of Carbon and Nitrogen on Growth of the Oligotrophic and Extremotolerant Fungus Knufia petricola N2 - Introduction: Rock-inhabiting black fungi are renowned for their constitutive melanin production, extremotolerance and ubiquitous colonization of oligotrophic, natural or anthropogenic subaerial surfaces, including marble monuments and solar panels. Knufia petricola is a model for these fungi as it is genetically amenable and has their typical characteristics. It is capable of colonizing and deteriorating minerals and produces extracellular polymeric substances that facilitate attachment. Objectives: The objective of this study is to understand how such an organism is able to grow in environments depleted of C and/or N. Method: K. petricola growth parameters (colony extension and thickness, biomass, CO2 respiration and carbon-use efficiency (CUE)) were analysed for different C to N ratios (C:N), changing both the C and N concentrations and sources. The study utilized a dual-scale approach, examining biofilm formation on agar (macroscale) and growth of a single cell into a microcolony in a microfluidic device (microscale). This methodology provided insights into the nutritional requirements and growth behaviours of K. petricola across different spatial scales. Findings: Our macroscale analysis indicated optimal growth at the C:N ratio of 60. The morphological analysis demonstrated that when nitrate is utilized as the N source, colonies tend to exhibit filamentous growth at their edges, especially when glucose is available as C source. In contrast, when ammonium is the N source, the colony surface appears smooth (Fig. 1A). Moreover, C or N depletion led to higher substrate penetration, mostly through filaments at the edge of the biofilm. Notably, the lowest carbon concentration yielded reduced biomass C:N ratio and the peak biomass C:N ratio was observed at the medium C:N ratio of 60, suggesting a potential correlation between C:N ratio and optimal growth (Fig. 1B). The CUE was however quite low, ca. 0.4-0.6, being lowest when C and N were limiting. Concurrently, microscale analyses of single cells revealed that increasing the C:N ratio from 0.6 to 60 caused (1) shorter cell cycles and (2) more branching, no branching formed without C and N (Fig. 1C). This led to a denser colony at optimal conditions and a rather extended morphology under C or N limitations. Conclusion: The findings demonstrate that the depletion of either carbon or nitrogen results in enhanced substrate penetration, predominantly through edge filaments. Notably, the optimal growth and peak biomass C:N ratio of 60 suggest both a correlation with and importance of the medium C:N ratio. Specifically, the lowest carbon input led to a reduced biomass C:N ratio, while the peak biomass C:N ratio was achieved at the medium C:N ratio of 60. T2 - FEMS MICRO conference CY - Milano, Italy DA - 14.07.2025 KW - Black fungi KW - Carbon-use efficiency KW - Polyextremotolerant KW - Oligotrophs KW - Rock-inhabiting fungi PY - 2025 AN - OPUS4-65038 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 - Dehkohneh, Abolfazl T1 - From microscale to macroscale: how environmental conditions impact the growth of the black fungus Knufia petricola N2 - Environmental, black fungi are known for their oligotrophic lifestyle and melanin production and ubiquitous colonisers of natural and anthropogenic subaerial surfaces like marble monuments, washing machine soap dispensers and solar panels. Even though their growth is generally unappreciated, prevention or inhibition thereof is still to be accomplished. We have chosen the black fungus Knufia petricola as a model species to study these organisms as it is genetically amenable, able to colonise and deteriorate minerals and produces extracellular polymeric substances allowing attachment. Our goal is simple: the quantitative description of its growth on various environmental conditions to create a mathematical model which could allow the development of a mitigation strategy. The conditions to be tested are the quantity and type of carbon and nitrogen sources, the pH and the presence of neighbouring colonies. The mathematical model is in development using the iDynoMiCS 2.0 platform. Our first results showed that the growth rate is negatively correlated to the colony forming units (i.e. the presence of a neighbouring colony). Although interesting with respect to mitigation, we therefore have chosen to track the growth of single colonies. On a macro-scale, the highest extension rates of colonies were at pH 5, 0.01M NO3, 0.01M NH4, 0.1M glucose, and 0.1M sucrose. Interesting are the similar rates in the range of 0.01M to 0.1M for carbon, and that CO2 production on similar conditions correlates well with these results. On a microscale, we have followed the growth of single cells using a custom-made microfluidic flow cell. Overall, first results show that medium containing more carbon not necessarily affected the growth rate but rather the quantity of branches produced by a single cell. This rapidly results in a more compact microcolony versus the more extended colonies on C-deficient media. This more profound knowledge on the growth of black fungi will allow to dissect their role in material deterioration and colonisation. T2 - International Biodeterioration & Biodegradation Society (IBBS) CY - Berlin, Germany DA - 09.09.2024 KW - Black fungi KW - Rock-inhabiting fungi KW - Fungal biofilm KW - Individual-based modelling PY - 2024 AN - OPUS4-62141 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Dehkohneh, Abolfazl T1 - From microscale to macroscale: environmental conditions and growth patterns of the black fungus Knufia petricola N2 - Environmental, black fungi are known for their oligotrophic lifestyle and melanin production and ubiquitous colonisers of natural and anthropogenic subaerial surfaces like marble monuments, washing machine soap dispensers and solar panels. Even though their growth is generally unappreciated, prevention or inhibition thereof is still to be accomplished. We have chosen the black fungus Knufia petricola as a model species to study these organisms as it is genetically amenable, able to colonise and deteriorate minerals and produces extracellular polymeric substances allowing attachment. Our goal is simple: the quantitative description of its growth on various environmental conditions to create a mathematical model which could allow the development of a mitigation strategy. The conditions to be tested are the quantity and type of carbon and nitrogen sources, the pH and the presence of neighbouring colonies. The mathematical model is in development using the iDynoMiCS 2.0 platform. Our first results showed that the growth rate is negatively correlated to the colony forming units (i.e. the presence of a neighbouring colony). Although interesting with respect to mitigation, we therefore have chosen to track the growth of single colonies. On a macro-scale, the highest extension rates of colonies were at pH 5, 0.01M NO3, 0.01M NH4, 0.1M glucose, and 0.1M sucrose. Interesting are the similar rates in the range of 0.01M to 0.1M for carbon, and that CO2 production on similar conditions correlates well with these results. On a microscale, we have followed the growth of single cells using a custom-made microfluidic flow cell. Overall, first results show that medium containing more carbon not necessarily affected the growth rate but rather the quantity of branches produced by a single cell. This rapidly results in a more compact microcolony versus the more extended colonies on C-deficient media. This more profound knowledge on the growth of black fungi will allow to dissect their role in material deterioration and colonisation. T2 - CurvoBio 2024 CY - Warsaw, Poland DA - 28.08.2024 KW - Black fungi KW - Rock-inhabiting fungi KW - Fungal biofilm KW - Individual-based modelling KW - Biocorrosion PY - 2024 AN - OPUS4-62270 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -