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Updated: Jun 9, 2026

Construction and Characterization of a Novel Vocal Fold Bioreactor
Published on: August 1, 2014
Therapeutic Effects of BMSCs Stimulated by Low-Magnitude High-Frequency Vibration on TMJOA
Weiwei Hou1, Mingyue Yu2, Jie Han2
1Stomatology Hospital, School of Stomatology, Zhejiang University School of Medicine, Zhejiang Provincial Clinical Research Center for Oral Diseases, Key Laboratory of Oral Biomedical Research of Zhejiang Province, Cancer Center of Zhejiang University, Engineering Research Center of Oral Biomaterials and Devices of Zhejiang Province, Hangzhou, China.
Objective:
To investigate the therapeutic effects of bone marrow mesenchymal stem cells (BMSCs) preconditioned with low-magnitude high-frequency (LMHF) vibration on temporomandibular joint osteoarthritis (TMJOA).
Methods:
BMSCs with/without LMHF vibration were intra-articularly injected into TMJOA model rats. After 8 weeks, joint diameter was measured. Pathological alterations were observed through histological staining techniques (CXCR4, SOX9). In vitro, BMSCs and chondrocytes were co-cultured with LMHF vibration. Chondrocyte proliferation was assessed by CCK-8. In a tumor necrosis factor-α (TNF-α)-induced inflammatory microenvironment, signal transduction-related and autophagy-related proteins were detected by quantitative real-time polymerase chain reaction (qRT-PCR) and Western blotting.
Results:
The injection of LMHF vibrated BMSCs increases the joint diameter and alleviates TMJ tissue damage. The OA model led to an elevation in CXCR4 levels and a reduction in SOX9 in condyle cartilage, while vibrated BMSCs upregulated both. In vitro experiments, appropriate cyclic sinusoidal dynamic mechanical vibration enhanced the proliferative capacity of chondrocytes co-cultured with BMSCs. In inflammation, the vibration group downregulated chondrocyte MMP-13 and upregulated chondrocyte Collagen II/BMP7/β-catenin/Atg3, as well as BMSC Collagen X/BMP7/β-catenin/CXCR4/Beclin-1/Atg5-all protein levels exceeded those in the LiCl group.
Conclusion:
For cartilage tissue engineering, LMHF vibration serves as a promising strategy to rapidly expand cells with a reinforced chondrogenic phenotype.
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