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Published on: March 20, 2020
A miR-26a/E2F7 feedback loop contributes to tamoxifen resistance in ER-positive breast cancer
Jian Liu1, Xiang Li1, Meng Wang1
1The Second Department of Thoracic Surgery, The First Affiliated Hospital of Xi'an Jiaotong University, Xi'an, Shaanxi 710061, P.R. China.
Abstract:
Tamoxifen (TAM) resistance is a substantial challenge in the treatment of estrogen receptor (ER)-positive breast cancer. Previous studies have revealed an important role of microRNA (miRNA/miR)-26a in TAM resistance in breast cancer. However, the mechanism underlying the regulatory effects of miR-26a on TAM resistance remains to be elucidated. The expression levels of miR-26a in ER-positive breast cancer were detected by reverse transcription-quantitative polymerase chain reaction. E2F transcription factor 7 (E2F7) and MYC proto-oncogene, bHLH transcription factor (MYC) levels were detected by western blotting. The present study demonstrated that miR-26a expression was reduced in ER-positive breast cancer compared with in normal breast tissues, whereas E2F7 expression was significantly elevated. Furthermore, an inverse correlation between miR-26a and E2F7 expression was detected in ER-positive breast cancer. The results indicated that miR-26a directly inhibited E2F7 expression through translational inhibition and indirectly inhibited MYC expression partly via E2F7 repression. E2F7, in turn, decreased miR-26a expression via MYC-induced transcriptional inhibition of miRNAs. Furthermore, transfection with miR-26a mimics increased the expression of its host genes (CTD small phosphatase like and CTD small phosphatase 2), whereas ectopic E2F7 expression abrogated the effects of miR-26a. These findings indicated that miR-26a and E2F7 may form a double-negative feedback loop, resulting in downregulation of miR-26a and upregulation of E2F7 in ER-positive breast cancer. Both miR-26a knockdown and E2F7 overexpression conferred resistance to TAM in MCF-7 cells. Conversely, miR-26a overexpression and E2F7 silencing resensitized MCF-7 resistant cells to TAM. These findings revealed that a feedback loop between miR-26a and E2F7 may promote TAM resistance in ER-positive breast cancer.
Insights
MicroRNA-26a (miR-26a) downregulation and E2F7 upregulation promote tamoxifen resistance in ER-positive breast cancer by forming a feedback loop. Restoring miR-26a or inhibiting E2F7 can resensitize cells to tamoxifen.
Area of Science:
- Molecular Biology
- Oncology
- Genetics
Background:
- Tamoxifen (TAM) resistance is a major clinical challenge in estrogen receptor (ER)-positive breast cancer treatment.
- MicroRNA (miRNA/miR)-26a has been implicated in TAM resistance, but the underlying mechanisms require further investigation.
Purpose of the Study:
- To elucidate the regulatory mechanism of miR-26a in tamoxifen resistance in ER-positive breast cancer.
- To investigate the relationship between miR-26a, E2F transcription factor 7 (E2F7), and MYC proto-oncogene, bHLH transcription factor (MYC) in TAM resistance.
Main Methods:
- Quantitative reverse transcription-polymerase chain reaction (RT-qPCR) to measure miR-26a expression.
- Western blotting to detect E2F7 and MYC protein levels.
- Transfection experiments with miR-26a mimics and ectopic E2F7 expression in MCF-7 cells.
Main Results:
- miR-26a expression was reduced, while E2F7 expression was elevated in ER-positive breast cancer tissues, showing an inverse correlation.
- miR-26a directly inhibited E2F7 and indirectly inhibited MYC; E2F7, via MYC, repressed miR-26a, forming a double-negative feedback loop.
- miR-26a knockdown or E2F7 overexpression induced TAM resistance in MCF-7 cells, whereas miR-26a overexpression or E2F7 silencing resensitized cells to TAM.
Conclusions:
- A feedback loop between miR-26a and E2F7, involving MYC, contributes to tamoxifen resistance in ER-positive breast cancer.
- Targeting this miR-26a/E2F7 feedback loop presents a potential therapeutic strategy to overcome TAM resistance.
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