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Updated: May 28, 2026

Modeling Paracrine Noncanonical Wnt Signaling In Vitro
Published on: December 10, 2021
Targeting the Wnt pathway in cancer: the emerging role of Dickkopf-3
1Division of Medical Oncology, Department of Internal Medicine, GROW - School for Oncology and Developmental Biology, Maastricht University Medical Centre, Maastricht, The Netherlands. juergen.veeck@rwth-aachen.de
Abstract:
Aberrant activation of the Wnt signaling pathway is a major trait of many human cancers. Due to its vast implications in tumorigenesis and progression, the Wnt pathway has attracted considerable attention at several molecular levels, also with respect to developing novel cancer therapeutics. Indeed, research in Wnt biology has recently provided numerous clues, and evidence is accumulating that the secreted Wnt antagonist Dickkopf-related protein 3 (Dkk-3) and its regulators may constitute interesting therapeutic targets in the most important human cancers. Based on the currently available literature, we here review the knowledge on the biological role of Dkk-3 as an antagonist of the Wnt signaling pathway, the involvement of Dkk-3 in several stages of tumor development, the genetic and epigenetic mechanisms disrupting DKK3 gene function in cancerous cells, and the potential clinical value of Dkk-3 expression/DKK3 promoter methylation as a biomarker and molecular target in cancer diseases. In conclusion, Dkk-3 rapidly emerges as a key player in human cancer with auspicious tumor suppressive capacities, most of all affecting apoptosis and proliferation. Its gene expression is frequently downregulated by promoter methylation in almost any solid and hematological tumor entity. Clinically, evidence is accumulating of Dkk-3 being both a potential tumor biomarker and effective anti-cancer agent. Although further research is needed, re-establishing Dkk-3 expression in cancer cells holds promise as novel targeted molecular tumor therapy.
Insights
Dickkopf-related protein 3 (Dkk-3) acts as a tumor suppressor by inhibiting Wnt signaling. Downregulation of Dkk-3 via promoter methylation is common in cancers, suggesting its potential as a biomarker and therapeutic target.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- Aberrant Wnt signaling pathway activation is a hallmark of numerous human cancers.
- The Wnt pathway's role in tumorigenesis and progression makes it a focus for cancer therapeutics.
- Dickkopf-related protein 3 (Dkk-3), a Wnt antagonist, is emerging as a significant factor in cancer biology.
Purpose of the Study:
- To review the biological role of Dkk-3 as a Wnt signaling antagonist.
- To examine Dkk-3's involvement in various stages of tumor development.
- To explore genetic/epigenetic mechanisms affecting DKK3 in cancer and its clinical potential.
Main Methods:
- Literature review of Dkk-3's function in Wnt signaling.
- Analysis of Dkk-3's role in tumor development stages.
- Investigation of genetic and epigenetic alterations of the DKK3 gene in cancer.
- Evaluation of Dkk-3 as a biomarker and therapeutic target.
Main Results:
- Dkk-3 exhibits tumor suppressive capacities, primarily influencing apoptosis and proliferation.
- DKK3 gene expression is frequently downregulated by promoter methylation across diverse solid and hematological tumors.
- Accumulating evidence supports Dkk-3's potential as a tumor biomarker and anti-cancer agent.
Conclusions:
- Dkk-3 is a key player in human cancer, demonstrating significant tumor suppressive functions.
- Re-establishing Dkk-3 expression in cancer cells offers a promising avenue for targeted molecular cancer therapy.
- Further research is warranted to fully elucidate and leverage Dkk-3's therapeutic potential.
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