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Updated: Jan 29, 2026

Modeling Paracrine Noncanonical Wnt Signaling In Vitro
Published on: December 10, 2021
Aberrant Wnt signaling in multiple myeloma: molecular mechanisms and targeting options
Harmen van Andel1,2, Kinga A Kocemba1,2, Marcel Spaargaren1,2
1Department of Pathology, Academic Medical Center, University of Amsterdam, Amsterdam, The Netherlands.
Abstract:
Aberrant activation of Wnt/β-catenin signaling plays a central role in the pathogenesis of a wide variety of malignancies and is typically caused by mutations in core Wnt pathway components driving constitutive, ligand-independent signaling. In multiple myelomas (MMs), however, these pathway intrinsic mutations are rare despite the fact that most tumors display aberrant Wnt pathway activity. Recent studies indicate that this activation is caused by genetic and epigenetic lesions of Wnt regulatory components, sensitizing MM cells to autocrine Wnt ligands and paracrine Wnts emanating from the bone marrow niche. These include deletion of the tumor suppressor CYLD, promotor methylation of the Wnt antagonists WIF1, DKK1, DKK3, and sFRP1, sFRP2, sFRP4, sFRP5, as well as overexpression of the co-transcriptional activator BCL9 and the R-spondin receptor LGR4. Furthermore, Wnt activity in MM is strongly promoted by interaction of both Wnts and R-spondins with syndecan-1 (CD138) on the MM cell-surface. Functionally, aberrant canonical Wnt signaling plays a dual role in the pathogenesis of MM: (I) it mediates proliferation, migration, and drug resistance of MM cells; (II) MM cells secrete Wnt antagonists that contribute to the development of osteolytic lesions by impairing osteoblast differentiation. As discussed in this review, these insights into the causes and consequences of aberrant Wnt signaling in MM will help to guide the development of targeting strategies. Importantly, since Wnt signaling in MM cells is largely ligand dependent, it can be targeted by drugs/antibodies that act upstream in the pathway, interfering with Wnt secretion, sequestering Wnts, or blocking Wnt (co)receptors.
Insights
Aberrant Wnt/β-catenin signaling drives multiple myeloma (MM) through genetic and epigenetic changes, not intrinsic mutations. Targeting this ligand-dependent pathway offers new therapeutic strategies for MM treatment.
Area of Science:
- Oncology
- Molecular Biology
- Cell Signaling
Background:
- Aberrant Wnt/β-catenin signaling is key in many cancers.
- Multiple myeloma (MM) shows Wnt pathway activation despite rare intrinsic mutations.
- Activation in MM stems from genetic/epigenetic alterations in Wnt regulators.
Purpose of the Study:
- To review the causes and consequences of aberrant Wnt signaling in MM.
- To explore how Wnt pathway dysregulation contributes to MM pathogenesis.
- To identify potential therapeutic targets within the Wnt pathway for MM.
Main Methods:
- Review of recent studies on Wnt signaling in multiple myeloma.
- Analysis of genetic and epigenetic modifications affecting Wnt pathway components.
- Examination of the functional roles of Wnt signaling in MM cell behavior and bone lesions.
Main Results:
- MM Wnt activation results from lesions like CYLD deletion and epigenetic silencing of antagonists (WIF1, DKK1, etc.).
- Overexpression of BCL9 and LGR4, plus syndecan-1 interaction, further promotes Wnt activity.
- Dysregulated Wnt signaling drives MM proliferation, migration, drug resistance, and osteolytic bone lesions.
Conclusions:
- Wnt signaling is largely ligand-dependent in MM, presenting therapeutic opportunities.
- Targeting upstream Wnt pathway components (secretion, ligands, receptors) is a promising strategy.
- Understanding Wnt dysregulation in MM aids in developing novel anti-myeloma therapies.
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