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Updated: Jul 23, 2025

Assembly and Tracking of Microbial Community Development within a Microwell Array Platform
Published on: June 6, 2017
Spectroelectrochemical behavior of parallel arrays of single vertically oriented Pseudomonas aeruginosa cells
Allison R Cutri1, Vignesh Sundaresan2, Joshua D Shrout3,4
1Department of Chemistry and Biochemistry, University of Notre Dame, Notre Dame, IN 46556 USA.
Abstract:
Pseudomonas aeruginosa is a Gram-negative opportunistic human pathogen responsible for a number of healthcare-associated infection. It is currently difficult to assess single cell behaviors of P. aeruginosa that might contribute to acquisition of antibiotic resistance, intercellular communication, biofilm development, or virulence, because mechanistic behavior is inferred from ensemble collections of cells, thus averaging effects over a population. Here, we develop and characterize a device that can capture and trap arrays of single P. aeruginosa cells in individual micropores in order to study their behaviors using spectroelectrochemistry. Focused ion beam milling is used to fabricate an array of micropores in a Au/dielectric/Au/SiO2-containing multilayer substrate, in which individual micropores are formed with dimensions that facilitate the capture of single P. aeruginosa cells in a predominantly vertical orientation. The bottom Au ring is then used as a working electrode to explore the spectroelectrochemical behavior of parallel arrays of individual P. aeruginosa cells. Application of step-potential or swept-potential waveforms produces changes in the fluorescence emission that can be imaged and correlated with applied potential. Arrays of P. aeruginosa cells typically exhibit three characteristic fluorescence behaviors that are sensitive to nutritional stress and applied potential. The device developed here enables the study of parallel collections of single bacterial cells with well-defined orientational order and should facilitate efforts to elucidate methods of bacterial communication and multidrug resistance at the single cell level.
Insights
Researchers developed a new device to trap single Pseudomonas aeruginosa cells for studying their behavior. This allows for detailed analysis of antibiotic resistance and virulence at the single-cell level.
Area of Science:
- Microbiology
- Biotechnology
- Analytical Chemistry
Background:
- Pseudomonas aeruginosa is a major cause of healthcare-associated infections.
- Studying individual bacterial behaviors is crucial for understanding antibiotic resistance and virulence.
- Current methods average behaviors across cell populations, masking single-cell dynamics.
Purpose of the Study:
- To develop and characterize a novel device for trapping and studying single P. aeruginosa cells.
- To enable spectroelectrochemical analysis of individual bacterial cells.
- To investigate single-cell behaviors related to antibiotic resistance and virulence.
Main Methods:
- Fabrication of a micropore array device using focused ion beam milling on a multilayer substrate.
- Capture and trapping of single P. aeruginosa cells in individual micropores.
- Spectroelectrochemical analysis of trapped cells using a gold ring electrode and fluorescence imaging.
Main Results:
- The device successfully captures single P. aeruginosa cells in a defined orientation.
- Applied electrical potentials induce measurable changes in cell fluorescence.
- Three distinct fluorescence behaviors sensitive to nutritional stress and potential were observed.
Conclusions:
- The developed device enables parallel study of single bacterial cells with controlled orientation.
- This platform facilitates research into bacterial communication and multidrug resistance at the single-cell level.
- The findings pave the way for deeper understanding of pathogen behavior and therapeutic strategies.

