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Microfluidic Giant Polymer Vesicles Equipped with Biopores for High‐Throughput Screening of Bacteria

微流控 小泡 细菌 生物膜 纳米技术 化学 生物物理学 材料科学 生物 生物化学 遗传学
作者
Lukas Heuberger,Daniel Messmer,Elena C. dos Santos,Dominik Scherrer,Emanuel Lörtscher,Cora‐Ann Schoenenberger,Cornelia G. Palivan
出处
期刊:Advanced Science [Wiley]
卷期号:11 (11): e2307103-e2307103 被引量:16
标识
DOI:10.1002/advs.202307103
摘要

Abstract Understanding the mechanisms of antibiotic resistance is critical for the development of new therapeutics. Traditional methods for testing bacteria are often limited in their efficiency and reusability. Single bacterial cells can be studied at high throughput using double emulsions, although the lack of control over the oil shell permeability and limited access to the droplet interior present serious drawbacks. Here, a straightforward strategy for studying bacteria‐encapsulating double emulsion‐templated giant unilamellar vesicles (GUVs) is introduced. This microfluidic approach serves to simultaneously load bacteria inside synthetic GUVs and to permeabilize their membrane with the pore‐forming peptide melittin. This enables antibiotic delivery or the influx of fresh medium into the GUV lumen for highly parallel cultivation and antimicrobial efficacy testing. Polymer‐based GUVs proved to be efficient culture and analysis microvessels, as microfluidics allow easy selection and encapsulation of bacteria and rapid modification of culture conditions for antibiotic development. Further, a method for in situ profiling of biofilms within GUVs for high‐throughput screening is demonstrated. Conceivably, synthetic GUVs equipped with biopores can serve as a foundation for the high‐throughput screening of bacterial colony interactions during biofilm formation and for investigating the effect of antibiotics on biofilms.
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