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Masters-Clark, E.

Publications and source records attributed to Masters-Clark, E..

2 recordsLinked to original sources

A microfluidic platform for the observation and quantification of fungal highways

Soil is a complex system characterised by intra- and inter-kingdom interactions among microbial communities. While many different types of fungal-bacterial interactions have been described, hyphal-mediated transport of bacteria via the so-called "fungal highway" (FH) has not been mechanistically described. Bacteria require a liquid film for active movement; therefore, liquid saturation is a significant limiting factor for their dispersal in soil. Hyphal networks contribute to the connectivity between discrete soil microbial populations by providing a physical network through the unsaturated soil matrix. This network serves as a scaffold for liquid transport, thus allowing bacteria to migrate further or access previously isolated spaces. Studying these interactions is challenging due to the complex and stochastic nature of the soil environment; this "black box" aspect makes it difficult to visualise interactions at the microbial scale. Microfluidic technology can provide a solution by offering precise imaging at a high resolution in a physically and chemically controlled environment. We designed a microfluidic device, the Fungal Highways Device (FHD), that allows us to culture filamentous organisms in unsaturated environments and visualise and quantify bacterial dispersal along hyphal networks at the single-cell level. We showed that Pythium ultimum is essential for Pseudomonas putida movement across an unsaturated environment, and we identified mycelial biomass and hyphal front length as key factors influencing the bacterias movement towards the outlet. We propose that the liquid transport facilitated by P. ultimum mycelium influences the FH behaviour during its interaction with P. putida.

bioengineering↗

Visualizing Liquid Distribution Across Hyphal Networks with Cellular Resolution

Filamentous fungi and fungal-like organisms contribute to a wide range of important ecosystem functions. Evidence has shown the movement of liquid across mycelial networks in unsaturated environments, such as soil. However, tools to investigate liquid movement along hyphae at the level of the single cell are still lacking. Microfluidic devices permit the study of fungal and fungal-like organisms with cellular resolution as they can confine hyphae to a single optical plane, which is compatible with microscopy imaging over longer timescales and allows for precise control of the microchannel environment. The aim of this study was to develop a method that enables the visualization and quantification of liquid movement on hyphae of fungal and fungal-like microorganisms. For this, the Fungal-Fungal Interaction (FFI) microfluidic device was modified to allow for the maintenance of unsaturated microchannel conditions. Fluorescein-containing growth medium solidified with agar was used to track liquid transported by hyphae via fluorescence microscopy. Our key findings highlight the suitability of this novel methodology for the visualization of liquid movement by hyphae over varying time scales and the ability to quantify the movement of liquid along hyphae. Furthermore, we showed that at the cellular level, extracellular hyphal liquid movement can be bidirectional and highly dynamic, uncovering a possible link between liquid movement and hyphal growth characteristics. We envisage that this method can be applied to facilitate future research probing the parameters contributing to hyphal liquid movement and is an essential step for studying the phenomenon of fungal highways.

microbiology↗