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Updated: Nov 30, 2025

Use of a Caspase Multiplexing Assay to Determine Apoptosis in a Hypothalamic Cell Model
Published on: April 16, 2014
Caspase-7 deficiency in Chinese hamster ovary cells reduces cell proliferation and viability
Fatemeh Safari1,2, Safar Farajnia3,4, Abbas Behzad Behbahani2
1Department of Medical Biotechnology, Faculty of Advanced Medical Sciences, Tabriz University of Medical Sciences, Tabriz, Iran.
Background:
Chinese hamster ovary (CHO) cells are the most commonly used mammalian host cell in the commercial-scale production of biopharmaceutical proteins. Modification of genes involved in apoptosis may improve the productivity of CHO cells. Executive caspases, including caspases 3 and 7, play critical roles in apoptosis. The effects of the ablation of the caspase 7 gene on proliferation and viability of CHO cells remains unknown. In this study, we applied clustered regularly interspaced short palindromic repeat (CRISPR/Cas9) to target caspase 7 gene of CHO K1 cell via all in one and homology targeted integration strategies. Consequently, the effect of caspase 7 deficiency on cell proliferation, viability, and apoptosis was studied by MTT assay and flow cytometry.
Results:
Findings of gel electrophoresis, western blotting, and sequencing confirmed the caspase 7 gene silencing in CHO cells (CHO-KO). Proliferation assay revealed that caspase 7 deficiency in CHO cells resulted in the reduction of proliferation in various CHO-KO clones. Besides, the disruption of caspase 7 had negative effects on cell viability in exposure with NaBu which confirmed by MTT assay. Results of flow cytometry using Anexin V/PI demonstrated that Nabu treatment (11 mM) declined the percentage of live CHO-K1 and CHO-KO cells to 70.3% and 5.79%. These results verified that the CHO-K1 cells were more resistant to apoptosis than CHO-KO, however most of CHO-KO cells undergone early apoptosis (91.9%) which seems to be a fascinating finding.
Conclusion:
These results reveal that caspase 7 may be involved in the cell cycle progression of CHO cells. Furthermore, it seems that targeting caspase 7 is not the ideal route as it had previously been imagined within the prevention of apoptosis but the relation between caspase 7 deficiency, cell cycle arrest, and the occurrence of early apoptosis will require more investigation.
Insights
Targeting caspase 7 in Chinese hamster ovary (CHO) cells reduced cell proliferation and viability, contrary to expectations for preventing apoptosis. Caspase 7 deficiency led to early apoptosis, indicating complex roles in cell cycle progression.
Area of Science:
- Biotechnology
- Cell Biology
- Molecular Biology
Background:
- Chinese hamster ovary (CHO) cells are crucial for biopharmaceutical production.
- Modulating apoptosis-related genes can enhance CHO cell productivity.
- Caspase 7 plays a key role in apoptosis, but its function in CHO cells is unclear.
Purpose of the Study:
- To investigate the effect of caspase 7 gene ablation on CHO K1 cell proliferation, viability, and apoptosis.
- To utilize CRISPR/Cas9 technology for targeted gene modification in CHO cells.
Main Methods:
- CRISPR/Cas9 gene editing was used to create caspase 7-deficient CHO cells (CHO-KO).
- Cell proliferation was assessed using proliferation assays.
- Cell viability and apoptosis were analyzed by MTT assay and flow cytometry (Anexin V/PI staining).
Main Results:
- Caspase 7 gene silencing was confirmed via gel electrophoresis, western blotting, and sequencing.
- Caspase 7 deficiency led to reduced proliferation and impaired viability under stress (NaBu exposure).
- CHO-KO cells showed increased susceptibility to apoptosis, with a high percentage undergoing early apoptosis.
Conclusions:
- Caspase 7 appears to influence cell cycle progression in CHO cells.
- Targeting caspase 7 may not be an effective strategy for preventing apoptosis in these cells.
- Further research is needed to understand the link between caspase 7 deficiency, cell cycle arrest, and early apoptosis.
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