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Published on: July 25, 2020
Targeting TACE-dependent EGFR ligand shedding in breast cancer
Paraic A Kenny1, Mina J Bissell
1Life Sciences Division, Lawrence Berkeley National Laboratory, University of California, Berkeley, California 94720, USA. pakenny@lbl.gov
Abstract:
The ability to proliferate independently of signals from other cell types is a fundamental characteristic of tumor cells. Using a 3D culture model of human breast cancer progression, we have delineated a protease-dependent autocrine loop that provides an oncogenic stimulus in the absence of proto-oncogene mutation. Targeting this protease, TNF-alpha-converting enzyme (TACE; also referred to as a disintegrin and metalloproteinase 17 [ADAM17]), with small molecular inhibitors or siRNAs reverted the malignant phenotype in a breast cancer cell line by preventing mobilization of 2 crucial growth factors, TGF-alpha and amphiregulin. We show that TACE-dependent ligand shedding was prevalent in a series of additional breast cancer cell lines and, in all cases examined, was amenable to inhibition. Using existing patient outcome data, we demonstrated a strong correlation between TACE and TGFA expression in human breast cancers that was predictive of poor prognosis. Tumors resulting from inappropriate activation of the EGFR were common in multiple tissues and were, for the most part, refractory to current targeted therapies. The data presented here delineate the molecular mechanism by which constitutive EGFR activity may be achieved in tumor progression without mutation of the EGFR itself or downstream pathway components and suggest that this important oncogenic pathway might usefully be targeted upstream of the receptor.
Insights
Tumor cells can proliferate without external signals via a protease-dependent loop. Inhibiting TNF-alpha-converting enzyme (TACE) blocks growth factors, reverting malignancy and offering a new therapeutic target for breast cancer.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Tumor cells exhibit uncontrolled proliferation, a hallmark of cancer.
- This study investigates a novel mechanism driving tumor cell growth independent of common oncogenic mutations.
Purpose of the Study:
- To delineate a protease-dependent autocrine loop driving breast cancer progression.
- To evaluate the therapeutic potential of targeting TNF-alpha-converting enzyme (TACE) in breast cancer.
Main Methods:
- Utilized a 3D culture model of human breast cancer.
- Employed small molecular inhibitors and siRNAs to target TACE (ADAM17).
- Analyzed patient outcome data correlating TACE and TGFA expression.
Main Results:
- Identified a TACE-dependent autocrine loop promoting oncogenic stimulus without proto-oncogene mutation.
- Inhibition of TACE prevented the shedding of TGF-alpha and amphiregulin, reverting the malignant phenotype.
- TACE inhibition was effective across multiple breast cancer cell lines.
- Found a significant correlation between TACE and TGFA expression and poor prognosis in human breast cancers.
Conclusions:
- TACE-dependent ligand shedding represents a key mechanism for constitutive EGFR activity in cancer progression.
- Targeting TACE upstream of the receptor offers a potential therapeutic strategy for EGFR-driven tumors, including those refractory to current therapies.
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