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Published on: October 28, 2019
Depsipeptide-resistant KU812 cells show reversible P-glycoprotein expression, hyper-acetylated histones, and
Hisashi Yamada1, Yasuhiro Arakawa, Shinobu Saito
1Department of Molecular Genetics, Institute of DNA Medicine, Jikei University School of Medicine, Nishi-Shinbashi 3-25-8, Minato-ku, Tokyo 105-8461, Japan. hyamad@jikei.ac.jp
Abstract:
Depsipeptide (FK228), a histone deacetylase inhibitor, is a promising new anticancer agent. The mechanism of resistance to this agent was studied using KU812 cells. Depsipeptide-resistant KU812 cells expressed P-glycoprotein (P-gp) and their resistance was abolished by co-treatment with verapamil. P-gp expression returned to the parental cell level when resistant cells were cultured in depsipeptide-free medium, while resistant cells cultured in the medium containing 16 nM depsipeptide still showed hyper-acetylation of histones. Moreover, resistant cells showed erythroid differentiation. Microarray analysis revealed that 28 genes showed increased expression and three genes showed decreased expression in resistant cells compared with parental cells. These 31 genes had various functions relating to signal transduction, cell cycle, apoptosis, and control of cell morphology and differentiation. Among the 28 genes that were upregulated, 15 genes also showed an increased expression in parental cells treated with 4 nM depsipeptide for 48 h, while the other 13 genes including P-gp were different. Among the three genes with decreased expression, HEP27 was most dramatically downregulated. These findings suggest that continuous exposure to depsipeptide reversibly induces P-gp, which contributes to the onset of resistance, but the altered gene expression profile of resistant cells may also play a role.
Insights
Continuous exposure to depsipeptide (FK228) induces P-glycoprotein (P-gp) expression, leading to reversible anticancer drug resistance in KU812 cells. Altered gene expression also contributes to resistance mechanisms.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Depsipeptide (FK228) is a histone deacetylase inhibitor with anticancer potential.
- Understanding resistance mechanisms is crucial for optimizing cancer therapy.
Purpose of the Study:
- To investigate the mechanisms of resistance to depsipeptide in KU812 cells.
- To identify genetic alterations associated with depsipeptide resistance.
Main Methods:
- Generation of depsipeptide-resistant KU812 cell lines.
- Assessment of P-glycoprotein (P-gp) expression and function.
- Analysis of gene expression using microarrays.
- Evaluation of histone acetylation and cellular differentiation.
Main Results:
- Resistant cells exhibited P-gp expression, with resistance reversed by verapamil.
- P-gp expression was reversible upon removal of depsipeptide.
- Resistant cells showed erythroid differentiation and significant alterations in gene expression, including upregulation of 28 genes and downregulation of three genes.
- HEP27 was notably downregulated in resistant cells.
Conclusions:
- Reversible P-gp induction by depsipeptide contributes to anticancer drug resistance.
- Altered gene expression profiles in resistant cells also play a role in the overall resistance phenotype.
- These findings provide insights into depsipeptide resistance mechanisms and potential therapeutic strategies.
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