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Mangiferin induces cell cycle arrest at G2/M phase through ATR-Chk1 pathway in HL-60 leukemia cells
1Department of Hematology, The First Affiliated Hospital, Guangxi Medical University, Nanning, China zhigangpengcn@126.com.
Abstract:
This study aimed to determine the effect of mangiferin on the cell cycle in HL-60 leukemia cells and expression of the cell cycle-regulatory genes Wee1, Chk1 and CDC25C and to further investigate the molecular mechanisms of the antileukemic action of mangiferin. The inhibitory effect of mangiferin on HL-60 leukemia cell proliferation was determined by the MTT assay. The impact of mangiferin on the HL-60 cell cycle was evaluated by flow cytometry. After the cells were treated with different concentrations of mangiferin, the expression levels of Wee1, Chk1 and CDC25C mRNA were determined by RT-PCR, and Western blot was used to evaluate the expression levels of cdc25c, cyclin B1, and Akt proteins. The inhibition of HL-60 cell growth by mangiferin was dose- and time-dependent. After treatment for 24 h, cells in G2/M phase increased, and G2/M phase arrest appeared with increased mRNA expression of Wee1, Chk1 and CDC25C. Mangiferin inhibited Chk1 and cdc25c mRNA expression at high concentrations and induced Wee1 mRNA expression in a dose-dependent manner. It significantly inhibited ATR, Chk1, Wee1, Akt, and ERK1/2 phosphorylation but increased cdc2 and cyclin B1 phosphorylation. Furthermore, mangiferin reduced cdc25c, cyclin B1, and Akt protein levels while inducing Wee1 protein expression. It also antagonized the phosphorylation effect of vanadate on ATR, and the phosphorylation effect of EGF on Wee1. These findings indicated that mangiferin inhibits cell cycle progression through the ATR-Chk1 stress response DNA damage pathway, leading to cell cycle arrest at G2/M phase in leukemia cells.
Insights
Mangiferin effectively inhibits leukemia cell growth by causing cell cycle arrest at the G2/M phase. This natural compound targets the ATR-Chk1 DNA damage pathway, offering a potential new strategy for antileukemic therapies.
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- Leukemia remains a significant health challenge, necessitating novel therapeutic agents.
- Mangiferin, a natural polyphenol, has demonstrated potential anticancer properties.
- Understanding mangiferin's mechanism of action in leukemia is crucial for therapeutic development.
Purpose of the Study:
- To investigate the effect of mangiferin on the cell cycle progression of HL-60 leukemia cells.
- To examine the impact of mangiferin on cell cycle-regulatory genes (Wee1, Chk1, CDC25C).
- To elucidate the molecular mechanisms underlying mangiferin's antileukemic activity.
Main Methods:
- MTT assay for proliferation inhibition.
- Flow cytometry for cell cycle analysis.
- RT-PCR and Western blot for gene and protein expression analysis of cell cycle regulators (Wee1, Chk1, CDC25C, cdc25c, cyclin B1, Akt, ATR, ERK1/2).
Main Results:
- Mangiferin inhibited HL-60 cell growth in a dose- and time-dependent manner.
- Mangiferin induced G2/M phase arrest, increasing the proportion of cells in this phase.
- Mangiferin modulated the expression and phosphorylation of key cell cycle regulators, including Wee1, Chk1, CDC25C, Akt, and ATR, via the DNA damage response pathway.
Conclusions:
- Mangiferin exhibits antileukemic effects by inducing G2/M cell cycle arrest in HL-60 cells.
- The mechanism involves the activation of the ATR-Chk1 DNA damage response pathway.
- Mangiferin represents a promising candidate for further investigation as a novel antileukemic agent.
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