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Updated: Feb 14, 2026

Real-time Imaging and Quantification of Fungal Biofilm Development Using a Two-Phase Recirculating Flow System
Published on: October 18, 2018
Linking biofilm spatial structure to real-time microscopic oxygen decay imaging
S Rubol1, A Freixa2, X Sanchez-Vila3
1a Department of Energy Resources Engineering , Stanford University , Stanford , CA , USA.
Abstract:
Two non-destructive techniques, confocal laser scanning microscopy (CLSM) and planar optode (VisiSens imaging), were combined to relate the fine-scale spatial structure of biofilm components to real-time images of oxygen decay in aquatic biofilms. Both techniques were applied to biofilms grown for seven days at contrasting light and temperature (10/20°C) conditions. The geo-statistical analyses of CLSM images indicated that biofilm structures consisted of small (~100 μm) and middle sized (~101 μm) irregular aggregates. Cyanobacteria and EPS (extracellular polymeric substances) showed larger aggregate sizes in dark grown biofilms while, for algae, aggregates were larger in light-20°C conditions. Light-20°C biofilms were most dense while 10°C biofilms showed a sparser structure and lower respiration rates. There was a positive relationship between the number of pixels occupied and the oxygen decay rate. The combination of optodes and CLMS, taking advantage of geo-statistics, is a promising way to relate biofilm architecture and metabolism at the micrometric scale.
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