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Published on: June 9, 2023
KCNN4 induces multiple chemoresistance in breast cancer by regulating BCL2A1
Peiyang Lin1,2, Junjing Li2, Fugui Ye1
1Key Laboratory of Breast Cancer in Shanghai, Department of Breast Surgery, Fudan University Shanghai Cancer Center Shanghai, China.
Abstract:
Multidrug chemoresistance is a major clinical obstacle in breast cancer treatment. We aimed to elucidate the sensitivity to therapeutics in gemcitabine-resistant breast cancer models. Pooled library screening combined with RNA-seq was conducted to explore the potential targets involved in gemcitabine resistance in breast cancer cells. Cytotoxicity and tumor xenograft assays were used to evaluate the effect of calcium-activated channel subfamily N member 4 (KCNN4) inhibitors on the cellular sensitivity of breast cancer cells to chemotherapeutic drugs both in vitro and in vivo. We found that KCNN4 is an important determinant for the cytotoxicity of gemcitabine. Elevated KCNN4 expression enhanced resistance to chemotherapeutic antimetabolites and promoted cell proliferation. Conversely, silencing KCNN4 or chemical inhibition of KCNN4 by the specific inhibitor TRAM-34 inhibited the chemoresistance and cell proliferation. Mechanistically, KCNN4 upregulated BCL2-related protein A1 (BCL2A1) to suppress apoptosis by activating RAS-MAPK and PI3K-AKT signaling. Moreover, high expression levels of KCNN4 and BCL2A1 were associated with shortened disease-free survival in the cohort studies. Collectively, our findings showed that KCNN4 is a key modulator of progression and drug resistance in breast cancer, indicating that targeting KCNN4 may serve as a promising therapeutic strategy to overcome multidrug chemoresistance in this disease.
Insights
Targeting calcium-activated channel subfamily N member 4 (KCNN4) may overcome gemcitabine resistance in breast cancer. Inhibiting KCNN4 reduces chemoresistance and proliferation by downregulating BCL2A1, offering a new therapeutic strategy.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Multidrug chemoresistance presents a significant challenge in breast cancer treatment.
- Understanding the mechanisms of gemcitabine resistance is crucial for developing effective therapies.
Purpose of the Study:
- To investigate the role of calcium-activated channel subfamily N member 4 (KCNN4) in gemcitabine resistance in breast cancer.
- To evaluate the therapeutic potential of KCNN4 inhibitors in overcoming chemoresistance.
Main Methods:
- Pooled library screening and RNA-sequencing to identify targets involved in gemcitabine resistance.
- In vitro cytotoxicity and in vivo tumor xenograft assays to assess the efficacy of KCNN4 inhibition.
- Analysis of signaling pathways (RAS-MAPK, PI3K-AKT) and apoptosis-related proteins (BCL2A1).
Main Results:
- KCNN4 expression is a key determinant of gemcitabine cytotoxicity; elevated KCNN4 confers resistance and promotes proliferation.
- Inhibition of KCNN4, using TRAM-34, reduced chemoresistance and cell proliferation.
- KCNN4 upregulates BCL2A1 via RAS-MAPK and PI3K-AKT signaling, suppressing apoptosis.
- High KCNN4 and BCL2A1 expression correlated with shorter disease-free survival.
Conclusions:
- KCNN4 is a critical regulator of breast cancer progression and chemoresistance.
- Targeting KCNN4 represents a promising strategy to enhance sensitivity to chemotherapy and overcome multidrug resistance in breast cancer.
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