Fabrication of the Microfluidic Device for the Single Chemical-pulse Experiment
2:02
Fabrication of the 3D-printed Millifluidic Device for the Experiment with Multiple Pulses
5:28
Multiple Chemical-pulse Experiment
7:11
Results: Bacterial Responses to a Chemical Pulse and Swimming Statistics in the Absence of Chemical Gradients
8:50
Conclusion
필기록
This method allows to elucidate the microscale ecology and behavior of microorganisms navigating dynamic chemical gradients and to uncover their hidden trade-offs, nutrient kinetics, and population dynamics in ecologically relevant microenvironmen
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A protocol for the generation of dynamic chemical landscapes by photolysis within microfluidic and millifluidic setups is presented. This methodology is suitable to study diverse biological processes, including the motile behavior, nutrient uptake, or adaptation to chemicals of microorganisms, both at the single cell and population level.