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Updated: Feb 26, 2026

Modeling Paracrine Noncanonical Wnt Signaling In Vitro
Published on: December 10, 2021
Molecular genetics and targeted therapy of WNT-related human diseases (Review)
1M&M Medical BioInformatics, Tokyo 113-0033, Japan.
Abstract:
Canonical WNT signaling through Frizzled and LRP5/6 receptors is transduced to the WNT/β-catenin and WNT/stabilization of proteins (STOP) signaling cascades to regulate cell fate and proliferation, whereas non-canonical WNT signaling through Frizzled or ROR receptors is transduced to the WNT/planar cell polarity (PCP), WNT/G protein-coupled receptor (GPCR) and WNT/receptor tyrosine kinase (RTK) signaling cascades to regulate cytoskeletal dynamics and directional cell movement. WNT/β-catenin signaling cascade crosstalks with RTK/SRK and GPCR-cAMP-PKA signaling cascades to regulate β-catenin phosphorylation and β-catenin-dependent transcription. Germline mutations in WNT signaling molecules cause hereditary colorectal cancer, bone diseases, exudative vitreoretinopathy, intellectual disability syndrome and PCP-related diseases. APC or CTNNB1 mutations in colorectal, endometrial and prostate cancers activate the WNT/β-catenin signaling cascade. RNF43, ZNRF3, RSPO2 or RSPO3 alterations in breast, colorectal, gastric, pancreatic and other cancers activate the WNT/β-catenin, WNT/STOP and other WNT signaling cascades. ROR1 upregulation in B-cell leukemia and solid tumors and ROR2 upregulation in melanoma induce invasion, metastasis and therapeutic resistance through Rho-ROCK, Rac-JNK, PI3K-AKT and YAP signaling activation. WNT signaling in cancer, stromal and immune cells dynamically orchestrate immune evasion and antitumor immunity in a cell context-dependent manner. Porcupine (PORCN), RSPO3, WNT2B, FZD5, FZD10, ROR1, tankyrase and β-catenin are targets of anti-WNT signaling therapy, and ETC-159, LGK974, OMP-18R5 (vantictumab), OMP-54F28 (ipafricept), OMP-131R10 (rosmantuzumab), PRI-724 and UC-961 (cirmtuzumab) are in clinical trials for cancer patients. Different classes of anti-WNT signaling therapeutics are necessary for the treatment of APC/CTNNB1-, RNF43/ZNRF3/RSPO2/RSPO3- and ROR1-types of human cancers. By contrast, Dickkopf-related protein 1 (DKK1), SOST and glycogen synthase kinase 3β (GSK3β) are targets of pro-WNT signaling therapy, and anti-DKK1 (BHQ880 and DKN-01) and anti-SOST (blosozumab, BPS804 and romosozumab) monoclonal antibodies are being tested in clinical trials for cancer patients and osteoporotic post-menopausal women. WNT-targeting therapeutics have also been applied as reagents for in vitro stem-cell processing in the field of regenerative medicine.
Insights
WNT signaling pathways regulate cell fate and movement, with dysregulation linked to cancers and developmental disorders. Therapeutic targeting of WNT pathways shows promise for cancer treatment and regenerative medicine.
Area of Science:
- Molecular Biology
- Cell Biology
- Oncology
Background:
- Canonical and non-canonical WNT signaling pathways control crucial cellular processes like fate, proliferation, and migration.
- Dysregulation of WNT signaling, through mutations or alterations in key molecules, is implicated in various cancers and hereditary diseases.
- WNT signaling crosstalks with other pathways, influencing gene transcription and cellular behavior.
Purpose of the Study:
- To review the diverse roles of WNT signaling in normal physiology and disease.
- To highlight the therapeutic potential of targeting WNT signaling in cancer and regenerative medicine.
- To discuss current and emerging WNT-targeting therapies.
Main Methods:
- Literature review of WNT signaling pathways and their clinical relevance.
- Analysis of genetic mutations and molecular alterations associated with WNT pathway dysregulation in cancer.
- Overview of current anti-WNT and pro-WNT therapeutic strategies and clinical trials.
Main Results:
- WNT signaling cascades (WNT/β-catenin, WNT/STOP, WNT/PCP, WNT/GPCR, WNT/RTK) are critical for cell fate, proliferation, and cytoskeletal dynamics.
- Mutations in WNT pathway components (e.g., APC, CTNNB1, RNF43, ROR1) drive various cancers, affecting invasion, metastasis, and therapeutic resistance.
- WNT signaling orchestrates immune evasion and antitumor immunity in a context-dependent manner.
Conclusions:
- Targeting WNT signaling offers a promising therapeutic avenue for multiple human cancers, with specific strategies needed for different cancer types.
- Anti-WNT therapies (e.g., targeting PORCN, ROR1) and pro-WNT therapies (e.g., targeting DKK1, SOST) are under clinical investigation.
- WNT pathway modulation is also valuable for in vitro stem cell applications in regenerative medicine.
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