Related Experiment Video
Updated: Jan 5, 2026

The Soft Agar Colony Formation Assay
Published on: October 27, 2014
Secreted Wnt6 mediates diabetes-associated centrosome amplification via its receptor FZD4
Qin Ju He1, Pu Wang1, Qin Qin Liu1
1School of Life Sciences, Shanxi University, Taiyuan, People's Republic of China.
Abstract:
We recently published that type 2 diabetes promotes cell centrosome amplification via upregulation of Rho-associated protein kinase 1 (ROCK1) and 14-3-3 protein-σ (14-3-3σ). This study further investigates the molecular mechanisms underlying diabetes-associated centrosome amplification. We found that treatment of cells with high glucose, insulin, and palmitic acid levels increased the intracellular and extracellular protein levels of Wingless-type MMTV integration site family member 6 (Wnt6) as well as the cellular level of β-catenin. The treatment also activated β-catenin and promoted its nuclear translocation. Treatment of cells with siRNA species for Wnt6, Frizzled-4 (FZD4), or β-catenin as well as introduction of antibodies against Wnt6 or FZD4 to the cell culture medium could all attenuate the treatment-triggered centrosome amplification. Moreover, we showed that secreted Wnt6-FZD4-β-catenin was the signaling pathway that was upstream of ROCK1 and 14-3-3σ. We found that advanced glycation end products (AGEs) were also able to increase the cellular and extracellular levels of Wnt6, the cellular protein level of β-catenin, and centrosome amplification. Treatment of the cells with siRNA species for Wnt6 or FZD4 as well as introduction of antibodies against Wnt6 or FZD4 to the cell culture could all inhibit the AGEs-elicited centrosome amplification. In colon tissues from a diabetic mouse model, the protein levels of Wnt6 and 14-3-3σ were increased. In conclusion, our results showed that the pathophysiological factors in type 2 diabetes, including AGEs, were able to induce centrosome amplification. It is suggested that secreted Wnt6 binds to FZD4 to activate the canonical Wnt6 signaling pathway, which is upstream of ROCK1 and 14-3-3σ, and that this is the cell signaling pathway underlying diabetes-associated centrosome amplification.
Insights
Type 2 diabetes and advanced glycation end products (AGEs) induce cell centrosome amplification. This occurs via the Wnt6-FZD4-β-catenin pathway, which activates ROCK1 and 14-3-3σ, promoting abnormal cell division.
Area of Science:
- Cell Biology
- Molecular Biology
- Endocrinology
Background:
- Type 2 diabetes is linked to cell centrosome amplification.
- Rho-associated protein kinase 1 (ROCK1) and 14-3-3 protein-σ (14-3-3σ) are implicated in this process.
Purpose of the Study:
- To elucidate the molecular mechanisms of diabetes-associated centrosome amplification.
- To investigate the role of the Wnt signaling pathway in this phenomenon.
Main Methods:
- Cellular treatments with high glucose, insulin, palmitic acid, and advanced glycation end products (AGEs).
- ব্যবহার of siRNA and antibodies to inhibit Wnt6, Frizzled-4 (FZD4), and β-catenin.
- Western blotting to assess protein levels.
- Analysis of colon tissues from a diabetic mouse model.
Main Results:
- High glucose, insulin, and palmitic acid increased Wnt6 and β-catenin levels and activated β-catenin signaling.
- Inhibition of Wnt6, FZD4, or β-catenin attenuated high-glucose-induced centrosome amplification.
- AGEs also increased Wnt6 and β-catenin, leading to centrosome amplification.
- Wnt6-FZD4-β-catenin pathway activation was upstream of ROCK1 and 14-3-3σ.
- Increased Wnt6 and 14-3-3σ protein levels were observed in diabetic mouse colon tissues.
Conclusions:
- Pathophysiological factors in type 2 diabetes, including AGEs, induce centrosome amplification.
- Secreted Wnt6 binding to FZD4 activates the canonical Wnt6 signaling pathway.
- This pathway is upstream of ROCK1 and 14-3-3σ, explaining diabetes-associated centrosome amplification.
Related Concept Videos
Canonical Wnt Signaling Pathway
Non-Canonical Wnt Signaling Pathways
Cell Specific Gene Expression
Insulin Secretory Vesicles
Role of Ephrin-Eph Signalling in Intestinal Stem Cell Renewal
TGF - β Signaling Pathway

