Automated construction of a yeast-based multigene library via homologous recombination in a biofoundry workflow

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Title
Automated construction of a yeast-based multigene library via homologous recombination in a biofoundry workflow
Author(s)
Min Jun Seong; Ye Rin Yoon; Kil Koang KwonHaseong KimSeung Goo LeeJonghyeok ShinDae Hee Lee
Bibliographic Citation
ACS Synthetic Biology, vol. 14, no. 5, pp. 1549-1556
Publication Year
2025
Abstract
Efficiently building metabolic pathways via multigene assembly has long been constrained by the limitations of traditional cloning techniques, necessitating a breakthrough in gene assembly methods. Notably, various in vitro gene assembly methods have been developed to simplify the construction of an expression-tunable library. However, in vitro gene assembly requires a tedious multistep construction process, making it time-consuming and labor-intensive. Therefore, in this study, we developed an automated one-step multigene assembly method for constructing an expression-tunable library based on in vivo homologous recombination. We optimized the shuttle vector for in vivo homologous recombination to improve the assembly efficiency. We also scaled down the whole assembly method for a high-throughput gene assembly. Finally, the developed method demonstrated the construction of the expression-tunable multigene library in the biofoundry. Therefore, this study offers a versatile strategy for parallel and high-throughput genetic engineering in synthetic biology.
Keyword
Multigene assemblyIn vivo homologous recombinationExpression-tunable libraryAutomated gene assemblyBiofoundryHigh-throughput gene assembly
ISSN
2161-5063
Publisher
Amer Chem Soc
Full Text Link
http://dx.doi.org/10.1021/acssynbio.4c00812
Type
Article
Appears in Collections:
Korea Biofoundry > 1. Journal Articles
Synthetic Biology and Bioengineering Research Institute > Synthetic Biology Research Center > 1. Journal Articles
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