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Published on: December 26, 2016
A S100A14-CCL2/CXCL5 signaling axis drives breast cancer metastasis
Xukun Li1, Minjie Wang2, Tongyang Gong1
1The State Key Laboratory of Molecular Oncology, National Cancer Center/National Clinical Research Center for Cancer/Cancer Hospital, Chinese Academy of Medical Sciences and Peking Union Medical College, Beijing, 100021, China.
Abstract:
Rationale: Chemokines contribute to cancer metastasis and have long been regarded as attractive therapeutic targets for cancer. However, controversy exists about whether neutralizing chemokines by antibodies promotes or inhibits tumor metastasis, suggesting that the approach to directly target chemokines needs to be scrutinized. Methods: Transwell assay, mouse metastasis experiments and survival analysis were performed to determine the functional role of S100A14 in breast cancer. RNA-Seq, secreted proteomics, ChIP, Western blot, ELISA, transwell assay and neutralizing antibody experiments were employed to investigate the underlying mechanism of S100A14 in breast cancer metastasis. Immunohistochemistry and ELISA were performed to examine the expression and serum levels of S100A14, CCL2 and CXCL5, respectively. Results: Overexpression of S100A14 significantly enhanced migration, invasion and metastasis of breast cancer cells. In contrast, knockout of S100A14 exhibited the opposite effects. Mechanistic studies demonstrated that S100A14 promotes breast cancer metastasis by upregulating the expression and secretion of CCL2 and CXCL5 via NF-κB mediated transcription. The clinical sample analyses showed that S100A14 expression is strongly associated with CCL2/CXCL5 expression and high expression of these three proteins is correlated with worse clinical outcomes. Notably, the serum levels of S100A14, CCL2/CXCL5 have significant diagnostic value for discerning breast cancer patients from healthy individuals. Conclusions: S100A14 is significantly upregulated in breast cancer, it can promote breast cancer metastasis by increasing the expression and secretion of CCL2/CXCL5 via RAGE-NF-κB pathway. And S100A14 has the potential to serve as a serological marker for diagnosis of breast cancer. Collectively, we identify S100A14 as an upstream regulator of CCL2/CXCL5 signaling and a metastatic driver of breast cancer.
Insights
S100A14 promotes breast cancer metastasis by increasing CCL2 and CXCL5 via the NF-κB pathway. High levels of S100A14, CCL2, and CXCL5 indicate poor outcomes and can diagnose breast cancer.
Area of Science:
- Oncology
- Molecular Biology
- Immunology
Background:
- Chemokines are implicated in cancer metastasis, but their targeting remains controversial.
- Directly targeting chemokines requires careful scrutiny due to complex effects on tumor metastasis.
Purpose of the Study:
- To investigate the role of S100A14 in breast cancer metastasis.
- To elucidate the underlying molecular mechanisms by which S100A14 influences metastasis.
- To evaluate S100A14, CCL2, and CXCL5 as diagnostic biomarkers for breast cancer.
Main Methods:
- Functional assays including Transwell assays and mouse metastasis experiments.
- Molecular analyses such as RNA-Seq, proteomics, ChIP, Western blot, and ELISA.
- Clinical sample analysis using immunohistochemistry and serum level detection.
Main Results:
- S100A14 overexpression enhanced breast cancer cell migration, invasion, and metastasis, while knockout had opposite effects.
- S100A14 upregulates CCL2 and CXCL5 expression and secretion via the NF-κB pathway.
- High expression of S100A14, CCL2, and CXCL5 correlates with poor clinical outcomes and has diagnostic value.
Conclusions:
- S100A14 is upregulated in breast cancer and drives metastasis by promoting CCL2/CXCL5 secretion through the RAGE-NF-κB pathway.
- S100A14 acts as an upstream regulator of CCL2/CXCL5 signaling and a key driver of breast cancer metastasis.
- S100A14 shows potential as a serological biomarker for breast cancer diagnosis.
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