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Transduction of Recombinant M3-p53-R12 Protein Enhances Human Leukemia Cell Apoptosis
Tsung Chi Lu1, Guan-Hao Zhao2, Yao Yun Chen3
11. Department of Life Sciences, National Central University, Jhongli 32001, Taiwan;; 2. Taiwan Advance Bio-Pharma Inc., New Taipei City 22180, Taiwan.
Abstract:
Tumor suppressor protein p53 plays important roles in initiating cell cycle arrest and promoting tumor cell apoptosis. Previous studies have shown that p53 is either mutated or defective in approximately 50% of human cancers; therefore restoring normal p53 activity in cancer cells might be an effective anticancer therapeutic approach. Herein, we designed a chimeric p53 protein flanked with the MyoD N-terminal transcriptional activation domain (amino acids 1-62, called M3) and a poly-arginine (R12) cell penetrating signal in its N-and C-termini respectively. This chimeric protein, M3-p53-R12, can be expressed in E. coli and purified using immobilized metal ion chromatography followed by serial refolding dialysis. The purified M3-p53-R12 protein retains DNA-binding activity and gains of cell penetrating ability. Using MTT assay, we demonstrated that M3-p53-R12 inhibited the growth of K562, Jurkat as well as HL-60 leukemia cells carrying mutant p53 genes. Results from FACS analysis also demonstrated that transduction of M3-p53-R12 protein induced cell cycle arrest of these leukemia cells. Of special note, M3-p53-R12 has no apoptotic effect on normal mesenchymal stem cells (MSC) and leukocytes, highlighting its differential effects on normal and tumor cells. To sum up, our results reveal that purified recombinant M3-p53-R12 protein has functions of suppressing the leukemia cell lines' proliferation and launching cell apoptosis, suggesting the feasibility of using M3-p53-R12 protein as an anticancer drug. In the future we will test whether this chimeric protein can preferentially trigger the death of malignant cancer cells without affecting normal cells in animals carrying endogenous or xenographic tumors.
Insights
Restoring tumor suppressor p53 function via a chimeric M3-p53-R12 protein effectively inhibited leukemia cell growth and induced cell cycle arrest. This novel protein shows promise as a targeted anticancer therapeutic with minimal impact on normal cells.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- The tumor suppressor protein p53 is crucial for cell cycle control and apoptosis.
- Mutations or defects in p53 occur in about 50% of human cancers, making p53 restoration a potential therapeutic strategy.
- Developing methods to restore p53 activity is vital for effective cancer treatment.
Purpose of the Study:
- To design and characterize a novel chimeric protein, M3-p53-R12, for restoring p53 function.
- To evaluate the efficacy of M3-p53-R12 in inhibiting the proliferation of leukemia cells with mutant p53.
- To assess the safety and specificity of M3-p53-R12 on normal cells.
Main Methods:
- Engineered a chimeric protein (M3-p53-R12) by fusing the MyoD N-terminal domain (M3) and a poly-arginine (R12) cell-penetrating signal to p53.
- Expressed and purified M3-p53-R12 using E. coli expression and chromatography.
- Assessed protein activity through DNA-binding assays, MTT assays for proliferation, and FACS analysis for cell cycle arrest.
Main Results:
- Purified M3-p53-R12 retained DNA-binding activity and demonstrated cell-penetrating ability.
- M3-p53-R12 significantly inhibited the growth of K562, Jurkat, and HL-60 leukemia cell lines.
- Transduction of M3-p53-R12 induced cell cycle arrest in leukemia cells without affecting normal mesenchymal stem cells or leukocytes.
Conclusions:
- The purified recombinant M3-p53-R12 protein effectively suppresses leukemia cell proliferation and induces apoptosis.
- M3-p53-R12 exhibits differential effects, targeting cancer cells while sparing normal cells, suggesting its potential as an anticancer drug.
- Further in vivo studies are warranted to confirm the therapeutic potential of M3-p53-R12 in animal models.
Related Concept Videos
Abnormal Proliferation
The Intrinsic Apoptotic Pathway

