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CRISPR/Cas9-mediated Targeted Integration In Vivo Using a Homology-mediated End Joining-based Strategy
Published on: March 12, 2018
Targeted integration in CHO cells using CRIS-PITCh/Bxb1 recombinase-mediated cassette exchange hybrid system
Samaneh Ghanbari1, Elham Bayat1, Masoumeh Azizi2
1Department of Medical Biotechnology, Biotechnology Research Center, Pasteur Institute of Iran, Tehran, Iran.
Abstract:
Recombinant Chinese hamster ovary (CHO) cell line development for complex biotherapeutic production is conventionally based on the random integration (RI) approach. Due to the lack of control over the integration site and copy number, RI-generated cell pools are always coupled with rigorous screening to find clones that satisfy requirements for production titers, quality, and stability. Targeted integration into a well-defined genomic site has been suggested as a possible strategy to mitigate the drawbacks associated with RI. In this work, we employed the CRISPR-mediated precise integration into target chromosome (CRIS-PITCh) system in combination with the Bxb1 recombinase-mediated cassette exchange (RMCE) system to generate an isogenic transgene-expressing cell line. We successfully utilized the CRIS-PITCh system to target a 2.6 kb Bxb1 landing pad with homology arms as short as 30 bp into the upstream region of the S100A gene cluster, achieving a targeting efficiency of 10.4%. The platform cell line (PCL) with a single copy of the landing pad was then employed for the Bxb1-mediated landing pad exchange with an EGFP encoding cassette to prove its functionality. Finally, to accomplish the main goal of our cell line development method, the PCL was applied for the expression of a secretory glycoprotein, human recombinant soluble angiotensin-converting enzyme 2 (hrsACE2). Taken together, on-target, single-copy, and stable expression of the transgene over long-term cultivation demonstrated our CRIS-PITCh/RMCE hybrid approach might possibly improve the cell line development process in terms of timeline, specificity, and stability. KEY POINTS: • CRIS-PITCh system is an efficient method for single copy targeted integration of the landing pad and generation of platform cell line • Upstream region of the S100A gene cluster of CHO-K1 is retargetable by recombinase-mediated cassette exchange (RMCE) approach and provides a stable expression of the transgene • CRIS-PITCh/Bxb1 RMCE hybrid system has the potential to overcome some limitations of the random integration approach and accelerate the cell line development timeline.
Insights
We developed a new CRISPR-mediated targeted integration method for Chinese hamster ovary (CHO) cell line development. This CRIS-PITCh/RMCE hybrid system enables precise, single-copy transgene insertion, improving biotherapeutic production efficiency and stability.
Area of Science:
- Biotechnology
- Molecular Biology
- Cell Line Engineering
Background:
- Traditional Chinese hamster ovary (CHO) cell line development relies on random integration (RI), leading to unpredictable transgene copy number and integration sites.
- RI necessitates extensive screening to identify clones with adequate production titers, quality, and stability for biotherapeutic manufacturing.
- Targeted integration strategies offer a potential solution to overcome the limitations of random integration.
Purpose of the Study:
- To develop an efficient and precise method for generating isogenic transgene-expressing CHO cell lines.
- To utilize the CRISPR-mediated precise integration into target chromosome (CRIS-PITCh) and Bxb1 recombinase-mediated cassette exchange (RMCE) systems for targeted gene insertion.
- To demonstrate the capability of this hybrid system for stable expression of complex biotherapeutics.
Main Methods:
- Employed the CRIS-PITCh system for targeted integration of a Bxb1 landing pad into the S100A gene cluster region of CHO-K1 cells.
- Achieved high targeting efficiency (10.4%) with short homology arms (30 bp).
- Utilized Bxb1 RMCE for cassette exchange and expression of enhanced green fluorescent protein (EGFP) and human recombinant soluble angiotensin-converting enzyme 2 (hrsACE2).
Main Results:
- Successfully generated a platform cell line (PCL) with a single-copy, targeted landing pad.
- Demonstrated efficient Bxb1-mediated cassette exchange for transgene insertion.
- Achieved stable, single-copy expression of hrsACE2 in CHO-K1 cells over extended cultivation periods.
Conclusions:
- The CRIS-PITCh/RMCE hybrid system provides an efficient method for single-copy, targeted integration of transgenes in CHO cells.
- The S100A gene cluster region in CHO-K1 cells is amenable to RMCE, ensuring stable transgene expression.
- This approach has the potential to accelerate cell line development timelines and enhance specificity and stability compared to random integration methods.
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