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Updated: Mar 15, 2026

Describing a Transcription Factor Dependent Regulation of the MicroRNA Transcriptome
Published on: June 15, 2016
Transient resistance to DNA damaging agents is associated with expression of microRNAs-135b and -196b in human
Tsui-Ting Ho1, Xiaolong He2, Yin-Yuan Mo3
1Department of Biopharmaceutical Sciences, College of Pharmacy, University of Illinois at ChicagoChicago 60612, IL, USA; Cancer Institute, University of Mississippi Medical CenterJackson, 39216, MS, USA; Department of Radiation Oncology, University of Mississippi Medical CenterJackson, 39216, MS, USA.
Abstract:
The acquisition of resistance to anticancer drugs is widely viewed as a key obstacle to successful cancer therapy. However, detailed knowledge of the initial molecular events in the response of cancer cells to these chemotherapeutic and stress responses, and how these lead to the development of chemoresistance, remains incompletely understood. Using microRNA array and washout and rechallenge experiments, we found that short term treatment of leukemia cells with etoposide led a few days later to transient resistance that was associated with a corresponding transient increase in expression of ABCB1 mRNA, as well as microRNA (miR)-135b and miR-196b. This phenomenon was associated with short-term exposure to genotoxic agents, such as etoposide, topotecan, doxorubicin and ionizing radiation, but not agents that do not directly damage DNA. Further, this appeared to be histiotype-specific, and was seen in leukemic cells, but not in cell lines derived from solid tumors. Treatment of leukemic cells with either 5-aza-deoxycytidine or tricostatin A produced similar increased expression of ABCB1, miR-135b, and miR-196b, suggesting a role for epigenetic regulation of this phenomenon. Bioinformatics analyses revealed that CACNA1E, ARHGEF2, PTK2, SIAH1, ARHGAP6, and NME4 may be involved in the initial events in the development of drug resistance following the upregulation of ABCB1, miR-135b and miR-196b. In summary, we report herein that short-term exposure of cells to DNA damaging agents leads to transient drug resistance, which is associated with elevations in ABCB1, miR-135b and miR-196b, and suggests novel components that may be involved in the development of anticancer drug resistance.
Insights
Short-term exposure to DNA-damaging anticancer drugs can cause temporary chemoresistance in leukemia cells. This transient resistance is linked to increased ABCB1, miR-135b, and miR-196b expression, suggesting new targets for overcoming drug resistance.
Area of Science:
- Molecular Biology
- Cancer Research
- Genetics
Background:
- Acquired resistance to anticancer drugs is a major challenge in cancer therapy.
- The initial molecular mechanisms driving chemoresistance are not fully understood.
Purpose of the Study:
- To investigate the early molecular events in cancer cells responding to chemotherapeutic agents.
- To understand how these events lead to the development of transient chemoresistance.
Main Methods:
- MicroRNA array analysis
- Washout and rechallenge experiments
- Treatment with genotoxic and non-genotoxic agents
- Bioinformatics analysis
Main Results:
- Short-term exposure to DNA-damaging agents (etoposide, doxorubicin, etc.) induced transient chemoresistance in leukemia cells.
- This resistance correlated with increased expression of ABCB1 mRNA, miR-135b, and miR-196b.
- The phenomenon was histiotype-specific, observed in leukemia but not solid tumor cell lines.
- Epigenetic regulators (5-aza-deoxycytidine, tricostatin A) mimicked the expression changes, suggesting epigenetic involvement.
- Bioinformatics identified potential key genes (CACNA1E, ARHGEF2, PTK2, SIAH1, ARHGAP6, NME4) in the early resistance pathway.
Conclusions:
- Short-term exposure to DNA-damaging agents triggers transient drug resistance in leukemia.
- Elevated ABCB1, miR-135b, and miR-196b are key markers of this transient resistance.
- Epigenetic mechanisms and identified genes may play crucial roles in the development of anticancer drug resistance.
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