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Trp53 loss during in vitro selection contributes to acquired Ara-C resistance in acute myeloid leukemia
Bin Yin1, Scott C Kogan, Ross A Dickins
1University of Minnesota Cancer Center, Department of Genetics, Cell Biology and Development, University of Minnesota, Minneapolis, MN 55455, USA.
Objective:
Chemoresistance remains a major clinical obstacle to curative chemotherapy of acute myeloid leukemia (AML), but the molecular mechanisms underlying resistance to chemotherapeutic agents used in AML are largely unknown. We have attempted to investigate genetic mechanisms causing resistance to Ara-C [1-beta-D-arabinofuranosyl-cytosine (cytarabine)], one mainstay in AML chemotherapy for decades.
Material And Methods:
Highly Ara-C-resistant murine BXH-2 strain AML cell lines were generated, and their molecular changes were compared to their sensitive parental lines. The causative changes were confirmed using a genetic approach.
Results:
We derived nine highly Ara-C-resistant murine BXH-2 strain AML sublines via in vitro selection. p21Cip1 was dramatically downregulated and p53 protein accumulation induced by Ara-C treatment was impaired in one resistant line. In this line, repeated Ara-C exposure had selected for cells that harbor a genomic deletion affecting the splicing of Trp53 mRNA. This deletion produces an aberrant Trp53 mRNA, in which exon 4 is skipped, producing a protein lacking parts of both the transactivation and DNA-binding domains. Retroviral transduction of the sensitive parental cells with a dominant-negative Trp53 cDNA caused changes in the protein levels of p21Cip1, BAX, and cleaved caspase-3, but not bcl-XL, and rendered the cells more resistant to Ara-C. Unexpectedly, we found that pifithrin-alpha (PFTalpha), a compound that has been proposed to regulate p53 protein activity, induced apoptosis in both Ara-C-sensitive and -resistant lines, and decreased Ara-C resistance in cells with either normal or mutant Trp53 genes.
Conclusions:
These data indicate that Trp53 loss-of-function could partly explain the acquisition of AML chemoresistance, and suggest that PFTalpha could be useful in treatment of relapsed AML.
Insights
Loss of Trp53 function, a key tumor suppressor, can lead to chemoresistance in acute myeloid leukemia (AML). Pifithrin-alpha may help overcome this resistance in relapsed AML.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- Chemoresistance to cytarabine (Ara-C) is a significant challenge in treating acute myeloid leukemia (AML).
- The molecular mechanisms driving Ara-C resistance in AML are not well understood.
- Understanding these mechanisms is crucial for developing more effective AML therapies.
Purpose of the Study:
- To investigate the genetic mechanisms underlying resistance to Ara-C in AML.
- To identify specific genetic alterations that confer resistance to this key chemotherapeutic agent.
- To explore potential therapeutic strategies to overcome Ara-C resistance.
Main Methods:
- Generation of highly Ara-C-resistant murine BXH-2 AML cell lines through in vitro selection.
- Comparative molecular analysis of resistant and sensitive cell lines.
- Genetic confirmation of causative alterations using retroviral transduction.
Main Results:
- A specific resistant AML subline exhibited downregulation of p21Cip1 and impaired p53-mediated apoptosis induction.
- This resistance was linked to a genomic deletion in Trp53, leading to aberrant mRNA and a non-functional p53 protein.
- Introducing a dominant-negative Trp53 cDNA into sensitive cells conferred Ara-C resistance.
- Pifithrin-alpha (PFTalpha) induced apoptosis and reduced Ara-C resistance in both sensitive and resistant AML cells.
Conclusions:
- Loss-of-function mutations in Trp53 contribute to the development of chemoresistance in AML.
- Pifithrin-alpha demonstrates potential as a therapeutic agent to enhance chemotherapy efficacy in relapsed AML.
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