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A precise and sustainable doxycycline-inducible cell line development platform for reliable mammalian cell engineering with gain-of-function mutationsoa mark
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Publication Year
2024-11-01
Publisher
Academic Press Inc.
Citation
Metabolic Engineering, Vol.86, pp.12-28
Keyword
Cell line developmentEpigenetic silencingGain-of-function mutationsMammalian synthetic biologySite-specific integrationTet-On3G inducible system
Mesh Keyword
Cell line developmentCell linesEpigenetic silencingGain-of functionGain-of-function mutationInducible systemsMammalian synthetic biologySite-specificSite-specific integrationSynthetic biologyTetracycline-on3g inducible systemAnimalsCell EngineeringCell LineCRISPR-Cas SystemsDoxycyclineGain of Function MutationHEK293 CellsHumans
All Science Classification Codes (ASJC)
BiotechnologyBioengineeringApplied Microbiology and Biotechnology
Abstract
For mammalian synthetic biology research, multiple orthogonal and tunable gene expression systems have been developed, among which the tetracycline (Tet)-inducible system is a key tool for gain-of-function mutations. Precise and long-lasting regulation of genetic circuits is necessary for the effective use of these systems in genetically engineered stable cell lines. However, current cell line development strategies, which depend on either random or site-specific integration along with antibiotic selection, are unpredictable and unsustainable, limiting their widespread use. To overcome these issues, we aimed to establish a Robust Overexpression via Site-specific integration of Effector (ROSE) system, a clustered regularly interspaced short palindromic repeats (CRISPR)/CRISPR-associated protein 9-mediated streamlined Tet-On3G-inducible master cell line (MCL) development platform. ROSE MCLs equipped with a landing pad facilitated the transcriptional regulation of various effector genes via recombinase-mediated cassette exchange. Long-term investigation revealed that the modular design of genetic payloads and integration sites significantly affected the induction capacity and stability, with ROSE MCLs exhibiting exceptional induction performance. To demonstrate the versatility of our platform, we explored its efficiency for the precise regulation of selection stringency, manufacturing of therapeutic antibodies with tunable expression levels and timing, and transcription factor engineering. Overall, this study demonstrated the effectiveness and reliability of the ROSE platform, highlighting its potential for various biological and biotechnological applications.
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/34451
DOI
https://doi.org/10.1016/j.ymben.2024.09.004
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Type
Article
Funding
This work was supported by the National Research Foundation of Korea (NRF) funded by the Korean government (Ministry of Science and ICT, MSIT) (Grant number NRF-2019R1A6A1A11051471), the Bio&Medical Technology Development Program of the NRF funded by the Korean government (MSIT) (RS-2024-00397714), and the Samsung Research Funding Center of Samsung Electronics under Project number SRFC-MA1901-09.
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Lee, Jae Seong Image
Lee, Jae Seong이재성
College of Bio-convergence Engineering
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