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Browner, D.

Publications and source records attributed to Browner, D..

2 recordsLinked to original sources

Scanning Electron Microscopy Study of Bacterial Growth in Mycelial Extracellular Matrices

Fungi and bacteria are found living in a wide variety of environments and their interactions are important in many processes including soil health, human and animal physiology and in biotechnological applications. The specificity of interaction between these microorganisms in co-culture is difficult to establish. For example, differentiation between trivial processes as a result of stochastic mixing compared with mutualistic or antagonistic interactions. Here, we investigate a single morphological feature of co-cultures of planktonic bacterial growth within biofilm-forming liquid cultures of mycelium. Namely, the attachment of bacterial co-habitants of species Bacillus subtilis to fungal hyphae of species Hericium erinaceus. The bacteria-in-mycelial-biofilm method was developed and utilised to allow for attachment of bacteria to hyphae via containment within extracellular polymeric substances (EPS) and the overall extracellular matrix (ECM) of the mycelium. Attachment structures appear to result from the hyphal surface as a result of production of EPS. The mean biofilm area across T1-3 was 3.90 ({micro}m2) {+/-} 0.72 ({micro}m2) and the mean percentage coverage was 18.33 (%) {+/-} 5.52 (%). The bacterial biofilm components could not be ruled out as co-contributing to formation of attachment structures due to the structures being present connecting individual bacterium as well as to hyphae.

microbiology↗

Tuning electrical spiking of Schizophyllum commune with light

When studying the split-gill fungus Schizophyllum commune, we observed that the growing colonies displayed endogenous spikes of electrical potential similar to the action potentials of neurons. In order to investigate the impact of light on the electrical activities of these colonies, we exposed them to intermittent stimulation with cold light (5800k) and later with blue (c. 470nm), red (c. 642nm) and green (c. 538nm) light. Our findings revealed spiking activity can be influenced using this input including observable responses with patterns of spiking at relatively high average amplitudes (>1mV) appearing consistently upon illumination of the sample. The response is likely related to the activity of fungal photoreceptors, including potential sensitisation to blue light in the cellular signalling pathways facilitated by white collar proteins (WC-1, WC-2) in S. commune. Based on these findings, we suggest that fungal photosensors and photonic computing substrates have the potential to enable applications beyond the scope of conventional electronics via relatively fast spiking responses to light tuned by external input stimulation. Further work should focus on identifying the signal transduction pathway for responses to different wavelengths of light and its role in translation into engineered ELMs to extend existing studies in fungal photobiology.

bioengineering↗