Related Experiment Video
Updated: Jan 19, 2026
Real-Time Monitoring of Bacterial Growth Using a Microfluidic Microdroplet Culture System
Published on: October 30, 2025
Bacterial co-culture with cell signaling translator and growth controller modules for autonomously regulated culture
Kristina Stephens1,2, Maria Pozo1, Chen-Yu Tsao1,2
1Fischell Department of Bioengineering, University of Maryland, 8278 Paint Branch Drive, 5102 Clark Hall, College Park, MD, 20742, USA.
Abstract:
Synthetic biology and metabolic engineering have expanded the possibilities for engineered cell-based systems. The addition of non-native biosynthetic and regulatory components can, however, overburden the reprogrammed cells. In order to avoid metabolic overload, an emerging area of focus is on engineering consortia, wherein cell subpopulations work together to carry out a desired function. This strategy requires regulation of the cell populations. Here, we design a synthetic co-culture controller consisting of cell-based signal translator and growth-controller modules that, when implemented, provide for autonomous regulation of the consortia composition. The system co-opts the orthogonal autoinducer AI-1 and AI-2 cell-cell signaling mechanisms of bacterial quorum sensing (QS) to enable cross-talk between strains and a QS signal-controlled growth rate controller to modulate relative population densities. We further develop a simple mathematical model that enables cell and system design for autonomous closed-loop control of population trajectories.
More Related Videos
12:25Microfluidic Co-culture of Epithelial Cells and Bacteria for Investigating Soluble Signal-mediated Interactions
Published on: April 20, 2010
09:54A Small Volume Bioassay to Assess Bacterial/Phytoplankton Co-culture Using WATER-Pulse-Amplitude-Modulated WATER-PAM Fluorometry
Published on: March 11, 2015
Related Concept Videos
Real-Time Monitoring of Bacterial Growth Using a Microfluidic Microdroplet Culture System
Bacterial Signaling
04:17Proximal Culture System: An In Vitro Culture Technique to Study Paracrine Signaling Between Cells
12:25Microfluidic Co-culture of Epithelial Cells and Bacteria for Investigating Soluble Signal-mediated Interactions
09:54A Small Volume Bioassay to Assess Bacterial/Phytoplankton Co-culture Using WATER-Pulse-Amplitude-Modulated (WATER-PAM) Fluorometry
07:33Bacterial Cell Culture at the Single-cell Level Inside Giant Vesicles