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Rapid and Efficient Generation of Recombinant Human Pluripotent Stem Cells by Recombinase-mediated Cassette Exchange in the AAVS1 Locus
Published on: November 20, 2016
High-fidelity large-diversity monoclonal mammalian cell libraries by cell cycle arrested recombinase-mediated
Chuan Chen1, Zening Wang1,2, Minhyo Kang1
1Department of Chemical and Environmental Engineering, University of California Riverside, Riverside, CA 92521, USA.
Abstract:
Mammalian cells carrying defined genetic variations have shown great potentials in both fundamental research and therapeutic development. However, their full use was limited by lack of a robust method to construct large monoclonal high-quality combinatorial libraries. This study developed cell cycle arrested recombinase-mediated cassette exchange (aRMCE), able to provide monoclonality, precise genomic integration and uniform transgene expression. Via optimized nocodazole-mediated mitotic arrest, 20% target gene replacement efficiency was achieved without antibiotic selection, and the improved aRMCE efficiency was applicable to a variety of tested cell clones, transgene targets and transfection methods. As a demonstration of this versatile method, we performed directed evolution of fragment crystallizable (Fc), for which error-prone libraries of over 107 variants were constructed and displayed as IgG on surface of CHO cells. Diversities of constructed libraries were validated by deep sequencing, and panels of novel Fc mutants were identified showing improved binding towards specific Fc gamma receptors and enhanced effector functions. Due to its large cargo capacity and compatibility with different mutagenesis approaches, we expect this mammalian cell platform technology has broad applications for directed evolution, multiplex genetic assays, cell line development and stem cell engineering.
Insights
A new method, cell cycle arrested recombinase-mediated cassette exchange (aRMCE), enables high-quality combinatorial libraries in mammalian cells. This advances genetic engineering for research and therapeutic development.
Area of Science:
- Biotechnology
- Molecular Biology
- Genetic Engineering
Background:
- Mammalian cells with defined genetic variations are crucial for research and therapeutics.
- Limitations exist in constructing large, monoclonal, high-quality combinatorial libraries.
Purpose of the Study:
- To develop a robust method for constructing large monoclonal high-quality combinatorial libraries in mammalian cells.
- To demonstrate the versatility of the developed method for directed evolution applications.
Main Methods:
- Developed cell cycle arrested recombinase-mediated cassette exchange (aRMCE) using nocodazole-mediated mitotic arrest.
- Achieved 20% target gene replacement efficiency without antibiotic selection.
- Constructed and displayed error-prone libraries of over 10^7 variants for fragment crystallizable (Fc) directed evolution on CHO cells.
Main Results:
- Demonstrated monoclonality, precise genomic integration, and uniform transgene expression.
- Validated library diversity using deep sequencing.
- Identified novel Fc mutants with enhanced binding to Fc gamma receptors and improved effector functions.
Conclusions:
- aRMCE is a versatile mammalian cell platform technology for creating large combinatorial libraries.
- The method offers broad applications in directed evolution, genetic assays, cell line development, and stem cell engineering.

