» Articles » PMID: 15486964

Wnt 3a Promotes Proliferation and Suppresses Osteogenic Differentiation of Adult Human Mesenchymal Stem Cells

Overview
Journal J Cell Biochem
Date 2004 Oct 16
PMID 15486964
Citations 229
Authors
Affiliations
Soon will be listed here.
Abstract

Multipotential adult mesenchymal stem cells (MSCs) are able to differentiate along several known lineages, and lineage commitment is tightly regulated through specific cellular mediators and interactions. Recent observations of a low/high bone-mass phenotype in patients expressing a loss-/gain-of-function mutation in LRP5, a coreceptor of the Wnt family of signaling molecules, suggest the importance of Wnt signaling in bone formation, possibly involving MSCs. To analyze the role of Wnt signaling in mesenchymal osteogenesis, we have profiled the expression of WNTs and their receptors, FRIZZLEDs (FZDs), and several secreted Wnt inhibitors, such as SFRPs, and examined the effect of Wnt 3a, as a representative canonical Wnt member, during MSC osteogenesis in vitro. WNT11, FZD6, SFRP2, and SFRP3 are upregulated during MSC osteogenesis, while WNT9A and FZD7 are downregulated. MSCs also respond to exogenous Wnt 3a, based on increased beta-catenin nuclearization and activation of a Wnt-responsive promoter, and the magnitude of this response depends on the MSC differentiation state. Wnt 3a exposure inhibits MSC osteogenic differentiation, with decreased matrix mineralization and reduced alkaline phosphatase mRNA and activity. Wnt 3a treatment of fully osteogenically differentiated MSCs also suppresses osteoblastic marker gene expression. The Wnt 3a effect is accompanied by increased cell number, resulting from both increased proliferation and decreased apoptosis, particularly during expansion of undifferentiated MSCs. The osteo-suppressive effects of Wnt 3a are fully reversible, i.e., treatment prior to osteogenic induction does not compromise subsequent MSC osteogenesis. The results also showed that sFRP3 treatment attenuates some of the observed Wnt 3a effects on MSCs, and that inhibition of canonical Wnt signaling using a dominant negative TCF1 enhances MSC osteogenesis. Interestingly, expression of Wnt 5a, a non-canonical Wnt member, appeared to promote osteogenesis. Taken together, these findings suggest that canonical Wnt signaling functions in maintaining an undifferentiated, proliferating progenitor MSC population, whereas non-canonical Wnts facilitate osteogenic differentiation. Release from canonical Wnt regulation is a prerequisite for MSC differentiation. Thus, loss-/gain-of-function mutations of LRP5 would perturb Wnt signaling and depress/promote bone formation by affecting the progenitor cell pool. Elucidating Wnt regulation of MSC differentiation is important for their potential application in tissue regeneration.

Citing Articles

Non-Canonical Wnt16 and microRNA-145 Mediate the Response of Human Bone Marrow Stromal Cells to Additively Manufactured Porous 3-Dimensional Biomimetic Titanium-Aluminum-Vanadium Constructs.

Cohen D, Berger M, Deng J, Jacobs T, Boyan B, Schwartz Z Cells. 2025; 14(3).

PMID: 39937002 PMC: 11816670. DOI: 10.3390/cells14030211.


Bone Marrow Stromal Cells Generate a Pro-Healing Inflammasome When Cultured on Titanium-Aluminum-Vanadium Surfaces with Microscale/Nanoscale Structural Features.

Cohen D, Van Duyn C, Deng J, Lodi M, Gallagher M, Sugar J Biomimetics (Basel). 2025; 10(1).

PMID: 39851782 PMC: 11759188. DOI: 10.3390/biomimetics10010066.


Mesenchymal stem cell-derived extracellular vesicles in periodontal bone repair.

Chen M, Huang B, Su X J Mol Med (Berl). 2025; 103(2):137-156.

PMID: 39821702 DOI: 10.1007/s00109-025-02513-4.


Effects of advanced glycation end products on stem cell.

Zheng Z, Zhou H, Zhang W, Wang T, Swamiappan S, Peng X Front Cell Dev Biol. 2025; 12():1532614.

PMID: 39777263 PMC: 11703976. DOI: 10.3389/fcell.2024.1532614.


The Effect of Nerve Growth Factor on Cartilage Fibrosis and Hypertrophy during Chondrogenesis Using Induced Pluripotent Stem Cells.

Jung S, Choi S, Kim J, Lim J, Rim Y, Ju J Int J Stem Cells. 2024; 18(1):59-71.

PMID: 39734065 PMC: 11867901. DOI: 10.15283/ijsc24097.