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- Title
- Microfluidics-driven high-throughput phenotyping and screening in synthetic biology: from single cells to cell-free systems
- Author(s)
- Taeok Kim; Minji Ko; Eugene Rha; Haseong Kim; Hyewon Lee
- Bibliographic Citation
- Biotechnology and Bioprocess Engineering, vol. 29, pp. 25-33
- Publication Year
- 2024
- Abstract
- The interdisciplinary nature of synthetic biology merges engineering principles with biology and provides innovative solutions for issues in the biomanufacturing industry. To develop industrially applicable biocatalysts and/or microbial cell factories, a design-build-test-learn cycle-based iterative process is necessary, which is often time-consuming and labor-intensive. The integration of microfluidic technologies into synthetic biology can accelerate these processes, particularly for achieving high-throughput phenotyping and screening. In this review, we examine the potential of microfluidic technologies to revolutionize synthetic biology. Although commercial microfluidics demonstrate superior throughput for single-cell assays, their application can be limited, for example, in cases where products are retained inside the cells. Droplet microfluidics, on the other hand, is a rather flexible platform and shows high diversity in single-cell, cell-to-cell interaction-based, and cell-free reaction-based analyses. By examining previous studies, we have summarized the potential of microfluidic technologies to foster sustainable biomanufacturing and advanced biological engineering.
- Keyword
- MicrofuidicsSynthetic biologyHigh-throughput screeningBiofoundry
- ISSN
- 1226-8372
- Publisher
- Springer
- Full Text Link
- http://dx.doi.org/10.1007/s12257-024-00016-6
- Type
- Article
- Appears in Collections:
- Synthetic Biology and Bioengineering Research Institute > Synthetic Biology Research Center > 1. Journal Articles
Korea Biofoundry > 1. Journal Articles
- Files in This Item:
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