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Updated: May 30, 2026

Studying TGF-β Signaling and TGF-β-induced Epithelial-to-mesenchymal Transition in Breast Cancer and Normal Cells
Published on: October 27, 2020
BI 5700, a Selective Chemical Inhibitor of IκB Kinase 2, Specifically Suppresses Epithelial-Mesenchymal Transition
Margit A Huber1, Harald J Maier, Memetcan Alacakaptan
1Research Institute of Molecular Pathology (IMP), Vienna, Austria.
Abstract:
Increasing evidence suggests that processes termed epithelial-mesenchymal transitions (EMTs) play a key role in therapeutic resistance, tumor recurrence, and metastatic progression. NF-κB signaling has been previously identified as an important pathway in the regulation of EMT in a mouse model of tumor progression. However, it remains unclear whether there is a broad requirement for this pathway to govern EMT and what the relative contribution of IKK family members acting as upstream NF-κB activators is toward promoting EMT and metastasis. To address this question, we have used a novel, small-molecule inhibitor of IκB kinase 2 (IKK2/IKKβ), termed BI 5700. We investigated the role of IKK2 in a number of mouse models of EMT, including TGFβ-induced EMT in the mammary epithelial cell line EpRas, CT26 colon carcinoma cells, and 4T1 mammary carcinoma cells. The latter model was also used to evaluate in vivo activities of BI 5700.We found that BI 5700 inhibits IKK2 with an IC(50) of 9 nM and was highly selective as compared to other IKK family members (IKK1, IKKε, and TBK1) and other kinases. BI 5700 effectively blocks NF-κB activity in EpRas cells and prevents TGFβ-induced EMT. In addition, BI 5700 reverts EMT in mesenchymal CT26 cells and prevents EMT in the 4T1 model. Oral application of BI 5700 significantly interferes with metastasis after mammary fat-pad injection of 4T1 cells, yielding fewer, smaller, and more differentiated metastases as compared to vehicle-treated control animals. We conclude that IKK2 is a key regulator of both the induction and maintenance of EMT in a panel of mouse tumor progression models and that the IKK2 inhibitor BI 5700 constitutes a promising candidate for the treatment of metastatic cancers.
Insights
Inhibiting IκB kinase 2 (IKK2) with BI 5700 blocks epithelial-mesenchymal transitions (EMT) and metastasis in mouse cancer models. This IKK2 inhibitor shows promise for treating metastatic cancers.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Metastasis
Background:
- Epithelial-mesenchymal transitions (EMTs) are crucial in cancer progression, therapeutic resistance, and metastasis.
- NF-κB signaling is implicated in EMT regulation, but the specific roles of IKK family members remain unclear.
Purpose of the Study:
- To investigate the role of IκB kinase 2 (IKK2) in EMT and metastasis.
- To evaluate the efficacy of a novel IKK2 inhibitor, BI 5700, in preclinical cancer models.
Main Methods:
- Utilized mouse models including TGFβ-induced EMT in EpRas cells, CT26 colon carcinoma, and 4T1 mammary carcinoma.
- Administered the selective IKK2 inhibitor BI 5700 orally to assess in vivo efficacy against metastasis.
Main Results:
- BI 5700 selectively inhibited IKK2 (IC50 = 9 nM) and blocked NF-κB activity, preventing TGFβ-induced EMT.
- BI 5700 reverted EMT in CT26 cells and prevented EMT in 4T1 cells.
- Oral BI 5700 treatment significantly reduced metastasis in 4T1 tumor-bearing mice.
Conclusions:
- IKK2 is a critical regulator of EMT induction and maintenance across multiple cancer models.
- The IKK2 inhibitor BI 5700 demonstrates therapeutic potential for inhibiting cancer metastasis.
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