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Updated: Jul 23, 2025

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Published on: February 17, 2023
RNA-binding Protein QKI Inhibits Osteogenic Differentiation Via Suppressing Wnt Pathway
Zhao Yan1, Banjun Ruan2, Shan Wang2
1PLA Institute of Orthopaedics, Xijing Hospital, Fourth Military Medical University, Xi'an, China; Department of Anatomy, Histology and Embryology and K.K. Leung Brain Research Centre, Fourth Military Medical University, Xi'an, China.
Background:
Dysregulation of MSCs differentiation is associated with many pathophysiological processes. Genetically modified MSCs transplantation helps restore bone loss efficiently.
Methods:
BMSCs-specific QKI overexpressing and knockdown mice were built to explore QKI's role in bone formation and fat accumulation. Primary BMSCs with QKI overexpression and knockout were subjected to osteogenic and adipogenic differentiation. ALP staining and oil red O staining were performed to evaluate the differences between the groups. RNA immunoprecipitation was performed to identify the QKI-related pathway. QKI deficient BMSCs were transplanted into mice with glucocorticoid-induced osteoporosis to evaluate its therapeutic potential.
Results:
Mice harboring BMSC-specific transgenic QKI exhibited reduced bone mass, while BMSC-specific QKI-deficient mice showed an increase in bone mass. Osteogenic differentiation of QKI deficient BMSCs was promoted and adipogenic differentiation was inhibited, while QKI overexpression in BMSCs displayed the opposite effects. To define the underlying mechanisms, RIP sequencing was performed. Wnt pathway-related genes were the putative direct target mRNAs of QKI, Canonical Wnt pathway activation was involved in QKI's effects on osteogenic differentiation. RNA immunoprecipitation quantitative real-time Polymerase Chain Reaction (PCR) and RNA fluorescence in situ hybridization experiments further validated that QKI repressed the expressions of Wnt5b, Fzd7, Dvl3 and β-catenin via direct binding to their putative mRNA specific sites. Glucocorticoid-induced osteoporotic mice transplanted with QKI deficient BMSCs exhibited less bone loss compared with mice transplanted with control BMSCs.
Conclusions:
QKI suppressed BMSCs osteogenic differentiation by downregulating the expressions of Wnt5b, Fzd7, Dvl3 and β-catenin. Loss of QKI in BMSCs transplantation may provide a new strategy for the treatment of orthopedic diseases such as osteoporosis.
Insights
Loss of QKI in bone marrow mesenchymal stem cells (BMSCs) promotes bone formation and may treat osteoporosis. QKI deficiency enhances osteogenesis and reduces fat accumulation, offering a potential therapeutic strategy.
Area of Science:
- Biochemistry
- Cell Biology
- Orthopedics
Background:
- Dysregulation of mesenchymal stem cells (MSCs) differentiation contributes to various pathophysiological conditions.
- Transplantation of genetically modified MSCs shows promise in efficiently restoring bone loss.
Purpose of the Study:
- To investigate the role of QKI in bone formation and fat accumulation in bone marrow mesenchymal stem cells (BMSCs).
- To explore the therapeutic potential of QKI-deficient BMSCs in treating osteoporosis.
Main Methods:
- Generated BMSC-specific QKI overexpressing and knockdown mouse models.
- Assessed osteogenic and adipogenic differentiation of primary BMSCs with altered QKI levels.
- Utilized RNA immunoprecipitation (RIP) sequencing to identify QKI-targeted pathways.
- Evaluated the therapeutic efficacy of QKI-deficient BMSCs in a glucocorticoid-induced osteoporosis mouse model.
Main Results:
- BMSC-specific QKI deficiency increased bone mass, while QKI overexpression reduced it.
- QKI deficiency promoted osteogenic differentiation and inhibited adipogenic differentiation of BMSCs.
- QKI directly targets Wnt pathway genes (Wnt5b, Fzd7, Dvl3, β-catenin), suppressing osteogenic differentiation.
- Transplantation of QKI-deficient BMSCs attenuated bone loss in osteoporotic mice.
Conclusions:
- QKI suppresses BMSC osteogenic differentiation by downregulating key Wnt pathway components.
- QKI deficiency in BMSCs presents a novel therapeutic strategy for orthopedic diseases like osteoporosis.
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