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The Role of Extracellular Matrix and Hydrogels in Mesenchymal Stem Cell Chondrogenesis and Cartilage Regeneration

Overview
Journal Life (Basel)
Specialty Biology
Date 2022 Dec 23
PMID 36556431
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Abstract

Diseases associated with articular cartilage disintegration or loss are still therapeutically challenging. The traditional treatment approaches only alleviate the symptoms while potentially causing serious side effects. The limited self-renewal potential of articular cartilage provides opportunities for advanced therapies involving mesenchymal stem cells (MSCs) that are characterized by a remarkable regenerative capacity. The chondrogenic potential of MSCs is known to be regulated by the local environment, including soluble factors and the less discussed extracellular matrix (ECM) components. This review summarizes the process of chondrogenesis, and also the biological properties of the ECM mediated by mechanotransduction as well as canonical and non-canonical signaling. Our focus is also on the influence of the ECM's physical parameters, molecular composition, and chondrogenic factor affinity on the adhesion, survival, and chondrogenic differentiation of MSCs. These basic biological insights are crucial for a more precise fabrication of ECM-mimicking hydrogels to improve cartilage tissue reconstruction. Lastly, we provide an overview of hydrogel classification and characterization. We also include the results from preclinical models combining MSCs with hydrogels for the treatment of cartilage defects, to support clinical application of this construct. Overall, it is believed that the proper combination of MSCs, hydrogels, and chondrogenic factors can lead to complex cartilage regeneration.

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References
1.
Bhosale A, Richardson J . Articular cartilage: structure, injuries and review of management. Br Med Bull. 2008; 87:77-95. DOI: 10.1093/bmb/ldn025. View

2.
Liu M, Zeng X, Ma C, Yi H, Ali Z, Mou X . Injectable hydrogels for cartilage and bone tissue engineering. Bone Res. 2017; 5:17014. PMC: 5448314. DOI: 10.1038/boneres.2017.14. View

3.
Zeng G, Chen A, Li W, Song J, Gao C . High MMP-1, MMP-2, and MMP-9 protein levels in osteoarthritis. Genet Mol Res. 2015; 14(4):14811-22. DOI: 10.4238/2015.November.18.46. View

4.
Danisovic L, Varga I, Polak S . Growth factors and chondrogenic differentiation of mesenchymal stem cells. Tissue Cell. 2011; 44(2):69-73. DOI: 10.1016/j.tice.2011.11.005. View

5.
Jin E, Choi Y, Park E, Bang O, Kang S . MMP-2 functions as a negative regulator of chondrogenic cell condensation via down-regulation of the FAK-integrin beta1 interaction. Dev Biol. 2007; 308(2):474-84. DOI: 10.1016/j.ydbio.2007.06.003. View