Design Strategies to Target Joint Resident Mesenchymal Stem Cells for Osteochondral Regeneration
Abstract
1. Introduction
2. Exogenous Mesenchymal Stem Cell Therapy
3. Joint Resident Stem Cells
4. Biophysical and Biological Drivers of Resident Stem Cell-Mediated Regeneration
5. Targeting Resident Stem Cells
6. Bioactive Factors for Osteochondral Regeneration
7. Spatial and Temporal Control in Osteochondral Tissue Regeneration
8. Niche-by-Design Framework for Endogenous MSC-Driven Osteochondral Regeneration
9. Challenges and Opportunities
10. Clinical Evidence
11. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| ATMP | Advanced therapy medicinal product |
| BMAC | Bone marrow aspirate concentrate |
| BM-MSCs | Bone marrow-derived mesenchymal stem cells |
| BMP(s) | Bone morphogenetic protein(s) |
| CDMP-1 | Cartilage-derived morphogenetic protein-1 |
| CXCR4 | CXC chemokine receptor 4 |
| DPP-IV | Dipeptidyl peptidase IV |
| ECM | Extracellular matrix |
| EGF | Epidermal growth factor |
| FGF(s) | Fibroblast growth factor(s) |
| FGF-2/FGF-18 | Fibroblast growth factor 2/18 |
| GAG | Glycosaminoglycan |
| GMP | Good manufacturing practice |
| HGF | Hepatocyte growth factor |
| HLA-DR | Human leukocyte antigen—DR isotype |
| HMGB1 | High mobility group box 1 |
| IFP | Infrapatellar fat pad |
| IGF/IGF-1 | Insulin-like growth factor/Insulin-like growth factor 1 |
| IHP | Intermittent hydrostatic pressure |
| LIPUS | Low-intensity pulsed ultrasound |
| MSC(s) | Mesenchymal stem cell(s) |
| OA | Osteoarthritis |
| OP-1 | Osteogenic protein-1 |
References
- Roelofs, A.J.; McClure, J.J.; Hay, E.A.; De Bari, C. Stem and Progenitor Cells in the Synovial Joint as Targets for Regenerative Therapy. Nat. Rev. Rheumatol. 2025, 21, 211–220. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Brobeil, J.; Alexander, D.; Umrath, F.; Danalache, M. Development of an Ex Vivo Osteochondral Biomimetic Platform for Mechanistic Investigation of Cartilage Regeneration. Int. J. Mol. Sci. 2025, 26, 11759. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zha, K.; Li, X.; Yang, Z.; Tian, G.; Sun, Z.; Sui, X.; Dai, Y.; Liu, S.; Guo, Q. Heterogeneity of Mesenchymal Stem Cells in Cartilage Regeneration: From Characterization to Application. npj Regen. Med. 2021, 6, 14. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Muthu, S.; Korpershoek, J.V.; Novais, E.J.; Tawy, G.F.; Hollander, A.P.; Martin, I. Failure of Cartilage Regeneration: Emerging Hypotheses and Related Therapeutic Strategies. Nat. Rev. Rheumatol. 2023, 19, 403–416. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kim, M.; Erickson, I.E.; Huang, A.H.; Garrity, S.T.; Mauck, R.L.; Steinberg, D.R. Donor Variation and Optimization of Human Mesenchymal Stem Cell Chondrogenesis in Hyaluronic Acid. Tissue Eng. Part A 2018, 24, 1693–1703. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Xu, W.; Wang, W.; Liu, D.; Liao, D. Roles of Cartilage-Resident Stem/Progenitor Cells in Cartilage Physiology, Development, Repair and Osteoarthritis. Cells 2022, 11, 2305. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Xu, X.; Xu, L.; Xia, J.; Wen, C.; Liang, Y.; Zhang, Y. Harnessing Knee Joint Resident Mesenchymal Stem Cells in Cartilage Tissue Engineering. Acta Biomater. 2023, 168, 372–387. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- McGonagle, D.; Baboolal, T.G.; Jones, E. Native Joint-Resident Mesenchymal Stem Cells for Cartilage Repair in Osteoarthritis. Nat. Rev. Rheumatol. 2017, 13, 719–730. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kan, C.; Tan, Z.; Wang, H.; Wang, W.; Yang, J.; Zhang, Y.; Lu, X.; Cheng, Q.; Chai, L.; Peng, C.; et al. Spatiotemporal Analysis of Mesenchymal Stem Cells Fate Determination by Inflammatory Niche Following Soft Tissue Injury at a Single-Cell Level. Adv. Sci. 2024, 11, e2310282. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Meng, J.; Lu, J.; Jiang, C.; Deng, L.; Xiao, M.; Feng, J.; Ren, T.; Qin, Q.; Guo, S.; Wang, H.; et al. Collagen Hydrogel-Driven Pyroptosis Suppression and Combined Microfracture Technique Delay Osteoarthritis Progression. Biomaterials 2025, 314, 122817. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Gudas, R.; Gudaite, A.; Pocius, A.; Gudiene, A.; Cekanauskas, E.; Monastyreckiene, E.; Basevicius, A. Ten-Year Follow-up of a Prospective, Randomized Clinical Study of Mosaic Osteochondral Autologous Transplantation versus Microfracture for the Treatment of Osteochondral Defects in the Knee Joint of Athletes. Am. J. Sports Med. 2012, 40, 2499–2508. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Steadman, J.R.; Rodkey, W.G.; Briggs, K.K. Microfracture to Treat Full-Thickness Chondral Defects: Surgical Technique, Rehabilitation, and Outcomes. J. Knee Surg. 2002, 15, 170–176. [Google Scholar] [PubMed]
- Dormer, N.H.; Singh, M.; Wang, L.; Berkland, C.J.; Detamore, M.S. Osteochondral Interface Tissue Engineering Using Macroscopic Gradients of Bioactive Signals. Ann. Biomed. Eng. 2010, 38, 2167–2182. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Lu, J.; Shen, X.; Sun, X.; Yin, H.; Yang, S.; Lu, C.; Wang, Y.; Liu, Y.; Huang, Y.; Yang, Z.; et al. Increased Recruitment of Endogenous Stem Cells and Chondrogenic Differentiation by a Composite Scaffold Containing Bone Marrow Homing Peptide for Cartilage Regeneration. Theranostics 2018, 8, 5039–5058. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Wang, Y.; Sun, X.; Lv, J.; Zeng, L.; Wei, X.; Wei, L. Stromal Cell-Derived Factor-1 Accelerates Cartilage Defect Repairing by Recruiting Bone Marrow Mesenchymal Stem Cells and Promoting Chondrogenic Differentiation. Tissue Eng. Part A 2017, 23, 1160–1168. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Tribe, H.C.; McEwan, J.; Taylor, H.; Oreffo, R.O.C.; Tare, R.S. Mesenchymal Stem Cells: Potential Role in the Treatment of Osteochondral Lesions of the Ankle. Biotechnol. J. 2017, 12, 1700070. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Huang, J.; Liu, Q.; Xia, J.; Chen, X.; Xiong, J.; Yang, L.; Liang, Y. Modification of Mesenchymal Stem Cells for Cartilage-Targeted Therapy. J. Transl. Med. 2022, 20, 515. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Nooeaid, P.; Salih, V.; Beier, J.P.; Boccaccini, A.R. Osteochondral Tissue Engineering: Scaffolds, Stem Cells and Applications. J. Cell. Mol. Med. 2012, 16, 2247–2270. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Xing, F.; Li, L.; Zhou, C.; Long, C.; Wu, L.; Lei, H.; Kong, Q.; Fan, Y.; Xiang, Z.; Zhang, X. Regulation and Directing Stem Cell Fate by Tissue Engineering Functional Microenvironments: Scaffold Physical and Chemical Cues. Stem Cells Int. 2019, 2019, 2180925. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Wu, H.; Wang, X.; Wang, G.; Yuan, G.; Jia, W.; Tian, L.; Zheng, Y.; Ding, W.; Pei, J. Advancing Scaffold-Assisted Modality for In Situ Osteochondral Regeneration: A Shift from Biodegradable to Bioadaptable. Adv. Mater. 2024, 36, e2407040. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Česnik, A.B.; Švajger, U. The Issue of Heterogeneity of MSC-Based Advanced Therapy Medicinal Products-a Review. Front. Cell Dev. Biol. 2024, 12, 1400347. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Marquez-Curtis, L.A.; Elliott, J.A.W. Mesenchymal Stromal Cells Derived from Various Tissues: Biological, Clinical and Cryopreservation Aspects: Update from 2015 Review. Cryobiology 2024, 115, 104856. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Turlo, A.J.; Hammond, D.E.; Ramsbottom, K.A.; Soul, J.; Gillen, A.; McDonald, K.; Peffers, M.J. Mesenchymal Stromal Cell Secretome Is Affected by Tissue Source and Donor Age. Stem Cells 2023, 41, 1047–1059. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Binato, R.; de Souza Fernandez, T.; Lazzarotto-Silva, C.; Du Rocher, B.; Mencalha, A.; Pizzatti, L.; Bouzas, L.F.; Abdelhay, E. Stability of Human Mesenchymal Stem Cells during in Vitro Culture: Considerations for Cell Therapy. Cell Prolif. 2013, 46, 10–22. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Hladik, D.; Höfig, I.; Oestreicher, U.; Beckers, J.; Matjanovski, M.; Bao, X.; Scherthan, H.; Atkinson, M.J.; Rosemann, M. Long-Term Culture of Mesenchymal Stem Cells Impairs ATM-Dependent Recognition of DNA Breaks and Increases Genetic Instability. Stem Cell Res. Ther. 2019, 10, 218. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kakroodi, F.A.; Khodadoust, E.; Alizadeh, M.; Hayaei Tehrani, R.S.; Sarabi, P.A.; Rahmanian, M.; Vosough, M. Current Challenges and Future Directions of ATMPs in Regenerative Medicine. Regen. Ther. 2025, 30, 358–370. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Pilgrim, C.R.; McCahill, K.A.; Rops, J.G.; Dufour, J.M.; Russell, K.A.; Koch, T.G. A Review of Fetal Bovine Serum in the Culture of Mesenchymal Stromal Cells and Potential Alternatives for Veterinary Medicine. Front. Vet. Sci. 2022, 9, 859025. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Lalu, M.M.; McIntyre, L.; Pugliese, C.; Fergusson, D.; Winston, B.W.; Marshall, J.C.; Granton, J.; Stewart, D.J.; Canadian Critical Care Trials Group. Safety of Cell Therapy with Mesenchymal Stromal Cells (SafeCell): A Systematic Review and Meta-Analysis of Clinical Trials. PLoS ONE 2012, 7, e47559. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Baranovskii, D.S.; Klabukov, I.D.; Arguchinskaya, N.V.; Yakimova, A.O.; Kisel, A.A.; Yatsenko, E.M.; Ivanov, S.A.; Shegay, P.V.; Kaprin, A.D. Adverse Events, Side Effects and Complications in Mesenchymal Stromal Cell-Based Therapies. Stem Cell Investig. 2022, 9, 7. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Moll, G.; Ankrum, J.A.; Olson, S.D.; Nolta, J.A. Improved MSC Minimal Criteria to Maximize Patient Safety: A Call to Embrace Tissue Factor and Hemocompatibility Assessment of MSC Products. Stem Cells Transl. Med. 2022, 11, 2–13. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Chang, C.; Yan, J.; Yao, Z.; Zhang, C.; Li, X.; Mao, H.-Q. Effects of Mesenchymal Stem Cell-Derived Paracrine Signals and Their Delivery Strategies. Adv. Healthc. Mater. 2021, 10, e2001689. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zhang, X.; Liu, T.; Ran, C.; Wang, W.; Piao, F.; Yang, J.; Tian, S.; Li, L.; Zhao, D. Immunoregulatory Paracrine Effect of Mesenchymal Stem Cells and Mechanism in the Treatment of Osteoarthritis. Front. Cell Dev. Biol. 2024, 12, 1411507. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ancans, J. Cell Therapy Medicinal Product Regulatory Framework in Europe and Its Application for MSC-Based Therapy Development. Front. Immunol. 2012, 3, 253. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Iglesias-López, C.; Agustí, A.; Obach, M.; Vallano, A. Regulatory Framework for Advanced Therapy Medicinal Products in Europe and United States. Front. Pharmacol. 2019, 10, 921. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Jayaraman, P.; Lim, R.; Ng, J.; Vemuri, M.C. Acceleration of Translational Mesenchymal Stromal Cell Therapy Through Consistent Quality GMP Manufacturing. Front. Cell Dev. Biol. 2021, 9, 648472. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Lechanteur, C.; Briquet, A.; Giet, O.; Delloye, O.; Baudoux, E.; Beguin, Y. Clinical-Scale Expansion of Mesenchymal Stromal Cells: A Large Banking Experience. J. Transl. Med. 2016, 14, 145. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zhang, Y.; Chen, J.; Sun, Y.; Wang, M.; Liu, H.; Zhang, W. Endogenous Tissue Engineering for Chondral and Osteochondral Regeneration: Strategies and Mechanisms. ACS Biomater. Sci. Eng. 2024, 10, 4716–4739. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Furuoka, H.; Endo, K.; Sekiya, I. Mesenchymal Stem Cells in Synovial Fluid Increase in Number in Response to Synovitis and Display More Tissue-Reparative Phenotypes in Osteoarthritis. Stem Cell Res. Ther. 2023, 14, 244. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- To, K.; Zhang, B.; Romain, K.; Mak, C.; Khan, W. Synovium-Derived Mesenchymal Stem Cell Transplantation in Cartilage Regeneration: A PRISMA Review of in Vivo Studies. Front. Bioeng. Biotechnol. 2019, 7, 314. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kozhemyakina, E.; Zhang, M.; Ionescu, A.; Ayturk, U.M.; Ono, N.; Kobayashi, A.; Kronenberg, H.; Warman, M.L.; Lassar, A.B. Identification of a Prg4-Expressing Articular Cartilage Progenitor Cell Population in Mice. Arthritis Rheumatol. 2015, 67, 1261–1273. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Mendelson, A.; Frank, E.; Allred, C.; Jones, E.; Chen, M.; Zhao, W.; Mao, J.J. Chondrogenesis by Chemotactic Homing of Synovium, Bone Marrow, and Adipose Stem Cells in Vitro. FASEB J. 2011, 25, 3496–3504. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Armiento, A.; Alini, M.; Stoddart, M. Articular Fibrocartilage—Why Does Hyaline Cartilage Fail to Repair? Adv. Drug Deliv. Rev. 2018, 146, 289–305. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kacprzak, B.; Stańczak, M.; Bielenda, B.; Yarmohammadi, A.A.; Hagner-Derengowska, M. Molecular Aspects of Cartilage Microfracturation: Rehabilitation Insights. Orthop. Rev. 2025, 17, 129917. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Duchamp de Lageneste, O.; Julien, A.; Abou-Khalil, R.; Frangi, G.; Carvalho, C.; Cagnard, N.; Cordier, C.; Conway, S.J.; Colnot, C. Periosteum Contains Skeletal Stem Cells with High Bone Regenerative Potential Controlled by Periostin. Nat. Commun. 2018, 9, 773. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Neubauer, M.; Otahal, A.; Kuten, O.; Sherman, S.L.; Moser, L.; Kramer, K.; DeLuna, A.; Neugebauer, J.; Dammerer, D.; Muellner, T.; et al. Infra-Patellar Fat Pad-Derived Mesenchymal Stem Cells Maintain Their Chondrogenic Differentiation Potential after Arthroscopic Harvest with Blood-Product Supplementation. Int. Orthop. 2024, 48, 279–290. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Manferdini, C.; Maumus, M.; Gabusi, E.; Piacentini, A.; Filardo, G.; Peyrafitte, J.-A.; Jorgensen, C.; Bourin, P.; Fleury-Cappellesso, S.; Facchini, A.; et al. Adipose-Derived Mesenchymal Stem Cells Exert Antiinflammatory Effects on Chondrocytes and Synoviocytes from Osteoarthritis Patients through Prostaglandin E2. Arthritis Rheum. 2013, 65, 1271–1281. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Toghraie, F.S.; Chenari, N.; Gholipour, M.A.; Faghih, Z.; Torabinejad, S.; Dehghani, S.; Ghaderi, A. Treatment of Osteoarthritis with Infrapatellar Fat Pad Derived Mesenchymal Stem Cells in Rabbit. Knee 2011, 18, 71–75. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Matsuta, S.; Endo, K.; Ozeki, N.; Nakagawa, Y.; Koga, H.; Sekiya, I. Synovial Mesenchymal Stem Cells Secrete More Lubricin than Adipose Mesenchymal Stem Cells after Injection into Rat Osteoarthritis Knees. Biochem. Biophys. Res. Commun. 2024, 729, 150354. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Mamachan, M.; Sharun, K.; Banu, S.A.; Muthu, S.; Pawde, A.M.; Abualigah, L.; Maiti, S.K. Mesenchymal Stem Cells for Cartilage Regeneration: Insights into Molecular Mechanism and Therapeutic Strategies. Tissue Cell 2024, 88, 102380. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Najar, M.; Martel-Pelletier, J.; Pelletier, J.-P.; Fahmi, H. Mesenchymal Stromal Cell Immunology for Efficient and Safe Treatment of Osteoarthritis. Front. Cell Dev. Biol. 2020, 8, 567813. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Li, J.; Gui, T.; Yao, L.; Guo, H.; Lin, Y.-L.; Lu, J.; Duffy, M.; Zgonis, M.; Mauck, R.; Dyment, N.; et al. Synovium and Infrapatellar Fat Pad Share Common Mesenchymal Progenitors and Undergo Coordinated Changes in Osteoarthritis. J. Bone Min. Res. 2024, 39, 161–176. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Altaie, A.; Baboolal, T.G.; Wall, O.; Pandit, H.; Jones, E.; McGonagle, D. Device-Based Enrichment of Knee Joint Synovial Cells to Drive MSC Chondrogenesis Without Prior Culture Expansion In Vitro: A Step Closer to 1-Stage Orthopaedic Procedures. Am. J. Sports Med. 2022, 50, 152–161. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Mazzotti, E.; Teti, G.; Falconi, M.; Chiarini, F.; Barboni, B.; Mazzotti, A.; Muttini, A. Age-Related Alterations Affecting the Chondrogenic Differentiation of Synovial Fluid Mesenchymal Stromal Cells in an Equine Model. Cells 2019, 8, 1116. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Neybecker, P.; Henrionnet, C.; Pape, E.; Grossin, L.; Mainard, D.; Galois, L.; Loeuille, D.; Gillet, P.; Pinzano, A. Respective Stemness and Chondrogenic Potential of Mesenchymal Stem Cells Isolated from Human Bone Marrow, Synovial Membrane, and Synovial Fluid. Stem Cell Res. Ther. 2020, 11, 316. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kohno, Y.; Mizuno, M.; Ozeki, N.; Katano, H.; Komori, K.; Fujii, S.; Otabe, K.; Horie, M.; Koga, H.; Tsuji, K.; et al. Yields and Chondrogenic Potential of Primary Synovial Mesenchymal Stem Cells Are Comparable between Rheumatoid Arthritis and Osteoarthritis Patients. Stem Cell Res. Ther. 2017, 8, 115. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Rikkers, M.; Korpershoek, J.V.; Levato, R.; Malda, J.; Vonk, L.A. The Clinical Potential of Articular Cartilage-Derived Progenitor Cells: A Systematic Review. npj Regen. Med. 2022, 7, 2. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Liu, W.; Feng, M.; Xu, P. From Regeneration to Osteoarthritis in the Knee Joint: The Role Shift of Cartilage-Derived Progenitor Cells. Front. Cell Dev. Biol. 2022, 10, 1010818. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Jiang, Y.; Cai, Y.; Zhang, W.; Yin, Z.; Hu, C.; Tong, T.; Lu, P.; Zhang, S.; Neculai, D.; Tuan, R.S.; et al. Human Cartilage-Derived Progenitor Cells From Committed Chondrocytes for Efficient Cartilage Repair and Regeneration. Stem Cells Transl. Med. 2016, 5, 733–744. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Liao, H.-J.; Chang, C.-H.; Huang, C.-Y.F.; Chen, H.-T. Potential of Using Infrapatellar-Fat-Pad-Derived Mesenchymal Stem Cells for Therapy in Degenerative Arthritis: Chondrogenesis, Exosomes, and Transcription Regulation. Biomolecules 2022, 12, 386. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Liu, Y.; Buckley, C.T.; Almeida, H.V.; Mulhall, K.J.; Kelly, D.J. Infrapatellar Fat Pad-Derived Stem Cells Maintain Their Chondrogenic Capacity in Disease and Can Be Used to Engineer Cartilaginous Grafts of Clinically Relevant Dimensions. Tissue Eng. Part A 2014, 20, 3050–3062. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Hindle, P.; Khan, N.; Biant, L.; Péault, B. The Infrapatellar Fat Pad as a Source of Perivascular Stem Cells with Increased Chondrogenic Potential for Regenerative Medicine. Stem Cells Transl. Med. 2017, 6, 77–87. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Wu, K.-C.; Chang, Y.-H.; Ding, D.-C.; Lin, S.-Z. Mesenchymal Stromal Cells for Aging Cartilage Regeneration: A Review. Int. J. Mol. Sci. 2024, 25, 12911. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Strecanska, M.; Danisovic, L.; Ziaran, S.; Cehakova, M. The Role of Extracellular Matrix and Hydrogels in Mesenchymal Stem Cell Chondrogenesis and Cartilage Regeneration. Life 2022, 12, 2066. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Cao, R.; Chen, B.; Song, K.; Guo, F.; Pan, H.; Cao, Y. Characterization and Potential of Periosteum-Derived Cells: An Overview. Front. Med. 2023, 10, 1235992. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Perrin, S.; Colnot, C. Periosteal Skeletal Stem and Progenitor Cells in Bone Regeneration. Curr. Osteoporos. Rep. 2022, 20, 334–343. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Jeyaraman, M.; Muthu, S.; Gangadaran, P.; Ranjan, R.; Jeyaraman, N.; Prajwal, G.S.; Mishra, P.C.; Rajendran, R.L.; Ahn, B.-C. Osteogenic and Chondrogenic Potential of Periosteum-Derived Mesenchymal Stromal Cells: Do They Hold the Key to the Future? Pharmaceuticals 2021, 14, 1133. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Seol, D.; McCabe, D.J.; Choe, H.; Zheng, H.; Yu, Y.; Jang, K.; Walter, M.W.; Lehman, A.D.; Ding, L.; Buckwalter, J.A.; et al. Chondrogenic Progenitor Cells Respond to Cartilage Injury. Arthritis Rheum. 2012, 64, 3626–3637. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Steinmetz, N.J.; Aisenbrey, E.A.; Westbrook, K.K.; Qi, H.J.; Bryant, S.J. Mechanical Loading Regulates Human MSC Differentiation in a Multi-Layer Hydrogel for Osteochondral Tissue Engineering. Acta Biomater. 2015, 21, 142–153. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Lin, Q.; Yang, Z.; Xu, H.; Niu, Y.; Meng, Q.; Xing, D. Advances in Shear Stress Stimulation of Stem Cells: A Review of the Last Three Decades. Biomedicines 2024, 12, 1963. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Jia, Y.; Le, H.; Wang, X.; Zhang, J.; Liu, Y.; Ding, J.; Zheng, C.; Chang, F. Double-Edged Role of Mechanical Stimuli and Underlying Mechanisms in Cartilage Tissue Engineering. Front. Bioeng. Biotechnol. 2023, 11, 1271762. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Bakhshandeh, B.; Sorboni, S.G.; Ranjbar, N.; Deyhimfar, R.; Abtahi, M.S.; Izady, M.; Kazemi, N.; Noori, A.; Pennisi, C.P. Mechanotransduction in Tissue Engineering: Insights into the Interaction of Stem Cells with Biomechanical Cues. Exp. Cell Res. 2023, 431, 113766. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Liu, Y.; Zhou, C.; Zhang, X.; Liu, W. Chirality Hydroxyapatite Gradient Scaffold Drives Osteochondral Regeneration via YAP/TAZ-Mediated Mechanotransduction. Adv. Healthc. Mater. 2025, 14, e2501668. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Burridge, K.; Monaghan-Benson, E.; Graham, D.M. Mechanotransduction: From the Cell Surface to the Nucleus via RhoA. Phil. Trans. R. Soc. B 2019, 374, 20180229. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Dieterle, M.P.; Husari, A.; Rolauffs, B.; Steinberg, T.; Tomakidi, P. Integrins, Cadherins and Channels in Cartilage Mechanotransduction: Perspectives for Future Regeneration Strategies. Expert. Rev. Mol. Med. 2021, 23, e14. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zarka, M.; Haÿ, E.; Cohen-Solal, M. YAP/TAZ in Bone and Cartilage Biology. Front. Cell Dev. Biol. 2021, 9, 788773. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Selig, M.; Lauer, J.C.; Hart, M.L.; Rolauffs, B. Mechanotransduction and Stiffness-Sensing: Mechanisms and Opportunities to Control Multiple Molecular Aspects of Cell Phenotype as a Design Cornerstone of Cell-Instructive Biomaterials for Articular Cartilage Repair. Int. J. Mol. Sci. 2020, 21, 5399. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Hallström, G.F.; Jones, D.L.; Locke, R.C.; Bonnevie, E.D.; Kim, S.Y.; Laforest, L.; Garcia, D.C.; Mauck, R.L. Microenvironmental Mechanoactivation through Yap/Taz Suppresses Chondrogenic Gene Expression. Mol. Biol. Cell 2023, 34, ar73. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Servin-Vences, M.R.; Moroni, M.; Lewin, G.R.; Poole, K. Direct Measurement of TRPV4 and PIEZO1 Activity Reveals Multiple Mechanotransduction Pathways in Chondrocytes. eLife 2017, 6, e21074. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Gao, W.; Hasan, H.; Anderson, D.E.; Lee, W. The Role of Mechanically-Activated Ion Channels Piezo1, Piezo2, and TRPV4 in Chondrocyte Mechanotransduction and Mechano-Therapeutics for Osteoarthritis. Front. Cell Dev. Biol. 2022, 10, 885224. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Steinecker-Frohnwieser, B.; Lohberger, B.; Toegel, S.; Windhager, R.; Glanz, V.; Kratschmann, C.; Leithner, A.; Weigl, L. Activation of the Mechanosensitive Ion Channels Piezo1 and TRPV4 in Primary Human Healthy and Osteoarthritic Chondrocytes Exhibits Ion Channel Crosstalk and Modulates Gene Expression. Int. J. Mol. Sci. 2023, 24, 7868. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Liu, S.; Deng, Z.; Chen, K.; Jian, S.; Zhou, F.; Yang, Y.; Fu, Z.; Xie, H.; Xiong, J.; Zhu, W. Cartilage Tissue Engineering: From Proinflammatory and Anti-Inflammatory Cytokines to Osteoarthritis Treatments. Mol. Med. Rep. 2022, 25, 99. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Caballero-Sánchez, N.; Alonso-Alonso, S.; Nagy, L. Regenerative Inflammation: When Immune Cells Help to Re-Build Tissues. FEBS J. 2024, 291, 1597–1614. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Bohaud, C.; Contreras-Lopez, R.; De La Cruz, J.; Terraza-Aguirre, C.; Wei, M.; Djouad, F.; Jorgensen, C. Pro-Regenerative Dialogue Between Macrophages and Mesenchymal Stem/Stromal Cells in Osteoarthritis. Front. Cell Dev. Biol. 2021, 9, 718938. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Chen, R.; Hao, Z.; Wang, Y.; Zhu, H.; Hu, Y.; Chen, T.; Zhang, P.; Li, J. Mesenchymal Stem Cell-Immune Cell Interaction and Related Modulations for Bone Tissue Engineering. Stem Cells Int. 2022, 2022, 7153584. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Stevens, A.L.; Wishnok, J.S.; White, F.M.; Grodzinsky, A.J.; Tannenbaum, S.R. Mechanical Injury and Cytokines Cause Loss of Cartilage Integrity and Upregulate Proteins Associated with Catabolism, Immunity, Inflammation, and Repair. Mol. Cell. Proteom. 2009, 8, 1475–1489. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Fülber, J.; Maria, D.A.; da Silva, L.C.L.C.; Massoco, C.O.; Agreste, F.; Baccarin, R.Y.A. Comparative Study of Equine Mesenchymal Stem Cells from Healthy and Injured Synovial Tissues: An in Vitro Assessment. Stem Cell Res. Ther. 2016, 7, 35. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Bolander, J.; Moviglia Brandolina, M.T.; Poehling, G.; Jochl, O.; Parsons, E.; Vaughan, W.; Moviglia, G.; Atala, A. The Synovial Environment Steers Cartilage Deterioration and Regeneration. Sci. Adv. 2023, 9, eade4645. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Deng, Z.; Yang, W.; Zhao, B.; Yang, Z.; Li, D.; Yang, F. Advances in Research on M1/M2 Macrophage Polarization in the Pathogenesis and Treatment of Osteoarthritis. Heliyon 2025, 11, e42881. [Google Scholar] [CrossRef] [Scilit]
- Zhang, K.; Wang, Z.; He, J.; Lu, L.; Wang, W.; Yang, A.; Xie, H.; Huang, L.; Huang, Y.; Zhang, K.; et al. Mechanisms of Synovial Macrophage Polarization in Osteoarthritis Pathogenesis and Their Therapeutic Implications. Front. Immunol. 2025, 16, 1637731. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Fahy, N.; de Vries-van Melle, M.L.; Lehmann, J.; Wei, W.; Grotenhuis, N.; Farrell, E.; van der Kraan, P.M.; Murphy, J.M.; Bastiaansen-Jenniskens, Y.M.; van Osch, G.J.V.M. Human Osteoarthritic Synovium Impacts Chondrogenic Differentiation of Mesenchymal Stem Cells via Macrophage Polarisation State. Osteoarthr. Cartil. 2014, 22, 1167–1175. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ye, J.; Xie, C.; Wang, C.; Huang, J.; Yin, Z.; Heng, B.C.; Chen, X.; Shen, W. Promoting Musculoskeletal System Soft Tissue Regeneration by Biomaterial-Mediated Modulation of Macrophage Polarization. Bioact. Mater. 2021, 6, 4096–4109. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zhang, S.; Hu, B.; Liu, W.; Wang, P.; Lv, X.; Chen, S.; Liu, H.; Shao, Z. Articular Cartilage Regeneration: The Role of Endogenous Mesenchymal Stem/Progenitor Cell Recruitment and Migration. Semin. Arthritis Rheum. 2020, 50, 198–208. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yu, B.; Sondag, G.R.; Malcuit, C.; Kim, M.-H.; Safadi, F.F. Macrophage-Associated Osteoactivin/GPNMB Mediates Mesenchymal Stem Cell Survival, Proliferation, and Migration Via a CD44-Dependent Mechanism. J. Cell Biochem. 2016, 117, 1511–1521. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zhu, H.; Mitsuhashi, N.; Klein, A.; Barsky, L.W.; Weinberg, K.; Barr, M.L.; Demetriou, A.; Wu, G.D. The Role of the Hyaluronan Receptor CD44 in Mesenchymal Stem Cell Migration in the Extracellular Matrix. Stem Cells 2006, 24, 928–935. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Corradetti, B.; Taraballi, F.; Martinez, J.O.; Minardi, S.; Basu, N.; Bauza, G.; Evangelopoulos, M.; Powell, S.; Corbo, C.; Tasciotti, E. Hyaluronic Acid Coatings as a Simple and Efficient Approach to Improve MSC Homing toward the Site of Inflammation. Sci. Rep. 2017, 7, 7991. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Fujita, T.; Azuma, Y.; Fukuyama, R.; Hattori, Y.; Yoshida, C.; Koida, M.; Ogita, K.; Komori, T. Runx2 Induces Osteoblast and Chondrocyte Differentiation and Enhances Their Migration by Coupling with PI3K-Akt Signaling. J. Cell Biol. 2004, 166, 85–95. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Vitale, E.; Manicardi, V.; Gugnoni, M.; Torricelli, F.; Donati, B.; Muccioli, S.; Salviato, E.; Rossi, T.; Manzotti, G.; Piana, S.; et al. Exploring the Transcriptional Cooperation between RUNX2 and Its Associated elncRNA RAIN. Cell Death Dis. 2024, 15, 673. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yoon, J.-K.; Kang, M.-L.; Park, J.H.; Lee, K.-M.; Shin, Y.M.; Lee, J.W.; Kim, H.O.; Sung, H.-J. Direct Control of Stem Cell Behavior Using Biomaterials and Genetic Factors. Stem Cells Int. 2018, 2018, 8642989. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Chen, Z.; Du, C.; Liu, S.; Liu, J.; Yang, Y.; Dong, L.; Zhao, W.; Huang, W. Progress in Biomaterials Inspired by the Extracellular Matrix. Giant 2024, 19, 100323. [Google Scholar] [CrossRef] [Scilit]
- Bumberger, A.; Homere, A.J.; Smith, R.D.; Lattermann, C. Microfracture and Microfracture Plus of the Knee Joint. Clin. Sports Med. 2025, 44, 513–525. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Lee, C.H.; Cook, J.L.; Mendelson, A.; Moioli, E.K.; Yao, H.; Mao, J.J. Regeneration of the Articular Surface of the Rabbit Synovial Joint by Cell Homing: A Proof of Concept Study. Lancet 2010, 376, 440–448. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Andreas, K.; Sittinger, M.; Ringe, J. Toward in Situ Tissue Engineering: Chemokine-Guided Stem Cell Recruitment. Trends Biotechnol. 2014, 32, 483–492. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Jia, Z.; Wang, S.; Liang, Y.; Liu, Q. Combination of Kartogenin and Transforming Growth Factor-Β3 Supports Synovial Fluid-Derived Mesenchymal Stem Cell-Based Cartilage Regeneration. Am. J. Transl. Res. 2019, 11, 2056–2069. [Google Scholar] [PubMed]
- Sundman, E.A.; Cole, B.J.; Karas, V.; Della Valle, C.; Tetreault, M.W.; Mohammed, H.O.; Fortier, L.A. The Anti-Inflammatory and Matrix Restorative Mechanisms of Platelet-Rich Plasma in Osteoarthritis. Am. J. Sports Med. 2014, 42, 35–41. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Banu, S.A.; Sharun, K.; Manjusha, K.M.; Kumar, R.; Vinodhkumar, O.R.; De, U.K.; Pawde, A.M.; Dhama, K.; Amarpal. Operator Impact Assessment on Qualitative and Quantitative Parameters of Canine Platelet-Rich Plasma. Acta Vet. Hung. 2024, 72, 99–108. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Tamaddon, M.; Blunn, G.; Tan, R.; Yang, P.; Sun, X.; Chen, S.-M.; Luo, J.; Liu, Z.; Wang, L.; Li, D.; et al. In Vivo Evaluation of Additively Manufactured Multi-Layered Scaffold for the Repair of Large Osteochondral Defects. Biodes Manuf. 2022, 5, 481–496. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kon, E.; Delcogliano, M.; Filardo, G.; Busacca, M.; Di Martino, A.; Marcacci, M. Novel Nano-Composite Multilayered Biomaterial for Osteochondral Regeneration: A Pilot Clinical Trial. Am. J. Sports Med. 2011, 39, 1180–1190. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Fonseca, L.N.; Bolívar-Moná, S.; Agudelo, T.; Beltrán, L.D.; Camargo, D.; Correa, N.; Del Castillo, M.A.; Fernández de Castro, S.; Fula, V.; García, G.; et al. Cell Surface Markers for Mesenchymal Stem Cells Related to the Skeletal System: A Scoping Review. Heliyon 2023, 9, e13464. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Li, Y.; Zhou, J.; Yang, X.; Jiang, Y.; Gui, J. Intermittent Hydrostatic Pressure Maintains and Enhances the Chondrogenic Differentiation of Cartilage Progenitor Cells Cultivated in Alginate Beads. Dev. Growth Differ. 2016, 58, 180–193. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Carluccio, S.; Martinelli, D.; Palamà, M.E.F.; Pereira, R.C.; Benelli, R.; Guijarro, A.; Cancedda, R.; Gentili, C. Progenitor Cells Activated by Platelet Lysate in Human Articular Cartilage as a Tool for Future Cartilage Engineering and Reparative Strategies. Cells 2020, 9, 1052. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Lee, M.J.; Jiang, J.; Kim, S.H.; Jo, C.H. Second Generation Multiple Channeling Using Platelet-Rich Plasma Enhances Cartilage Repair through Recruitment of Endogenous MSCs in Bone Marrow. Stem Cells Transl. Med. 2024, 13, 1213–1227. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Gobbi, A.; Scotti, C.; Karnatzikos, G.; Mudhigere, A.; Castro, M.; Peretti, G.M. One-Step Surgery with Multipotent Stem Cells and Hyaluronan-Based Scaffold for the Treatment of Full-Thickness Chondral Defects of the Knee in Patients Older than 45 Years. Knee Surg. Sports Traumatol. Arthrosc. 2017, 25, 2494–2501. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yan, S.; Wang, D.; Zhang, L.; Gan, T.; Yao, H.; Zhu, H.; He, Y.; Yang, K. LIPUS-S/B@NPs Regulates the Release of SDF-1 and BMP-2 to Promote Stem Cell Recruitment-Osteogenesis for Periodontal Bone Regeneration. Front. Bioeng. Biotechnol. 2023, 11, 1226426. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Liebesny, P.H.; Byun, S.; Hung, H.-H.; Pancoast, J.R.; Mroszczyk, K.A.; Young, W.T.; Lee, R.T.; Frisbie, D.D.; Kisiday, J.D.; Grodzinsky, A.J. Growth Factor-Mediated Migration of Bone Marrow Progenitor Cells for Accelerated Scaffold Recruitment. Tissue Eng. Part A 2016, 22, 917–927. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Awan, B.; Turkov, D.; Schumacher, C.; Jacobo, A.; McEnerney, A.; Ramsey, A.; Xu, G.; Park, D.; Kalomoiris, S.; Yao, W.; et al. FGF2 Induces Migration of Human Bone Marrow Stromal Cells by Increasing Core Fucosylations on N-Glycans of Integrins. Stem Cell Rep. 2018, 11, 325–333. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Dai, K.; Deng, S.; Yu, Y.; Zhu, F.; Wang, J.; Liu, C. Construction of Developmentally Inspired Periosteum-like Tissue for Bone Regeneration. Bone Res. 2022, 10, 1. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Luo, Y.; Cao, X.; Chen, J.; Gu, J.; Yu, H.; Sun, J.; Zou, J. Platelet-Derived Growth Factor-Functionalized Scaffolds for the Recruitment of Synovial Mesenchymal Stem Cells for Osteochondral Repair. Stem Cells Int. 2022, 2022, 2190447. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Shimomura, K.; Ando, W.; Hart, D.A.; Yonetani, Y.; Horibe, S.; Nakamura, N. Five-Year Outcomes After Implantation of a Scaffold-Free Tissue-Engineered Construct Generated From Autologous Synovial Mesenchymal Stromal Cells for Repair of Knee Chondral Lesions. Orthop. J. Sports Med. 2023, 11, 23259671231189474. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Altaie, A.; Baboolal, T.; Jones, E.; Wall, O.; McGonagle, D. FRI0001 All Stages of Synovial Mesenchymal Stem Cell Activity Including Adhesion, Proliferation, Migration and Chondrogenic Differentiation Are Supported by Human Platelet Lysate- Implications for Novel One Stage Joint Regenerative Procedures. Ann. Rheum. Dis. 2017, 76, 480. [Google Scholar] [CrossRef] [Scilit]
- Ye, K.; Felimban, R.; Traianedes, K.; Moulton, S.E.; Wallace, G.G.; Chung, J.; Quigley, A.; Choong, P.F.M.; Myers, D.E. Chondrogenesis of Infrapatellar Fat Pad Derived Adipose Stem Cells in 3D Printed Chitosan Scaffold. PLoS ONE 2014, 9, e99410. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Vahedi, P.; Moghaddamshahabi, R.; Webster, T.J.; Calikoglu Koyuncu, A.C.; Ahmadian, E.; Khan, W.S.; Jimale Mohamed, A.; Eftekhari, A. The Use of Infrapatellar Fat Pad-Derived Mesenchymal Stem Cells in Articular Cartilage Regeneration: A Review. Int. J. Mol. Sci. 2021, 22, 9215. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Lewis, J.A.; Nemke, B.; Lu, Y.; Sather, N.A.; McClendon, M.T.; Mullen, M.; Yuan, S.C.; Ravuri, S.K.; Bleedorn, J.A.; Philippon, M.J.; et al. A Bioactive Supramolecular and Covalent Polymer Scaffold for Cartilage Repair in a Sheep Model. Proc. Natl. Acad. Sci. USA 2024, 121, e2405454121. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kuo, A.C.; Rodrigo, J.J.; Reddi, A.H.; Curtiss, S.; Grotkopp, E.; Chiu, M. Microfracture and Bone Morphogenetic Protein 7 (BMP-7) Synergistically Stimulate Articular Cartilage Repair. Osteoarthr. Cartil. 2006, 14, 1126–1135. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zhen, G.; Wen, C.; Jia, X.; Li, Y.; Crane, J.L.; Mears, S.C.; Askin, F.B.; Frassica, F.J.; Chang, W.; Yao, J.; et al. Inhibition of TGF-β Signaling in Mesenchymal Stem Cells of Subchondral Bone Attenuates Osteoarthritis. Nat. Med. 2013, 19, 704–712. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zhou, L.; Gjvm, V.O.; Malda, J.; Stoddart, M.J.; Lai, Y.; Richards, R.G.; Ki-Wai Ho, K.; Qin, L. Innovative Tissue-Engineered Strategies for Osteochondral Defect Repair and Regeneration: Current Progress and Challenges. Adv. Healthc. Mater. 2020, 9, e2001008. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Chen, P.; Tao, J.; Zhu, S.; Cai, Y.; Mao, Q.; Yu, D.; Dai, J.; Ouyang, H. Radially Oriented Collagen Scaffold with SDF-1 Promotes Osteochondral Repair by Facilitating Cell Homing. Biomaterials 2015, 39, 114–123. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Lauer, A.; Wolf, P.; Mehler, D.; Götz, H.; Rüzgar, M.; Baranowski, A.; Henrich, D.; Rommens, P.M.; Ritz, U. Biofabrication of SDF-1 Functionalized 3D-Printed Cell-Free Scaffolds for Bone Tissue Regeneration. Int. J. Mol. Sci. 2020, 21, 2175. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ozaki, Y.; Nishimura, M.; Sekiya, K.; Suehiro, F.; Kanawa, M.; Nikawa, H.; Hamada, T.; Kato, Y. Comprehensive Analysis of Chemotactic Factors for Bone Marrow Mesenchymal Stem Cells. Stem Cells Dev. 2007, 16, 119–129. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zaruba, M.-M.; Theiss, H.D.; Vallaster, M.; Mehl, U.; Brunner, S.; David, R.; Fischer, R.; Krieg, L.; Hirsch, E.; Huber, B.; et al. Synergy between CD26/DPP-IV Inhibition and G-CSF Improves Cardiac Function after Acute Myocardial Infarction. Cell Stem Cell 2009, 4, 313–323. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- De Witte, T.-M.; Fratila-Apachitei, L.E.; Zadpoor, A.A.; Peppas, N.A. Bone Tissue Engineering via Growth Factor Delivery: From Scaffolds to Complex Matrices. Regen. Biomater. 2018, 5, 197–211. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Fu, X.; Liu, G.; Halim, A.; Ju, Y.; Luo, Q.; Song, G. Mesenchymal Stem Cell Migration and Tissue Repair. Cells 2019, 8, 784. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Vonau, R.L.; Bostrom, M.P.; Aspenberg, P.; Sams, A.E. Combination of Growth Factors Inhibits Bone Ingrowth in the Bone Harvest Chamber. Clin. Orthop. Relat. Res. 2001, 386, 243–251. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Peng, Y.; Zhuang, Y.; Liu, Y.; Le, H.; Li, D.; Zhang, M.; Liu, K.; Zhang, Y.; Zuo, J.; Ding, J. Bioinspired Gradient Scaffolds for Osteochondral Tissue Engineering. Exploration 2023, 3, 20210043. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Wee, A.-S.; Lim, C.-K.; Tan, S.-L.; Ahmad, T.S.; Kamarul, T. TGF-Β1 and -Β3 for Mesenchymal Stem Cells Chondrogenic Differentiation on Poly (Vinyl Alcohol)-Chitosan-Poly (Ethylene Glycol) Scaffold. Tissue Eng. Part C Methods 2022, 28, 501–510. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Li, X.; Yi, W.; Jin, A.; Duan, Y.; Min, S. Effects of Sequentially Released BMP-2 and BMP-7 from PELA Microcapsule-Based Scaffolds on the Bone Regeneration. Am. J. Transl. Res. 2015, 7, 1417–1428. [Google Scholar] [PubMed]
- Johnson, K.; Zhu, S.; Tremblay, M.S.; Payette, J.N.; Wang, J.; Bouchez, L.C.; Meeusen, S.; Althage, A.; Cho, C.Y.; Wu, X.; et al. A Stem Cell-Based Approach to Cartilage Repair. Science 2012, 336, 717–721. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Cai, J.-Y.; Zhang, L.; Chen, J.; Chen, S.-Y. Kartogenin and Its Application in Regenerative Medicine. Curr. Med. Sci. 2019, 39, 16–20. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Fang, C.-H.; Lin, Y.-W.; Sun, C.-K.; Sun, J.-S. Small-Molecule Loaded Biomimetic Biphasic Scaffold for Osteochondral Regeneration: An In Vitro and In Vivo Study. Bioengineering 2023, 10, 847. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Tong, Y.; Yuan, J.; Li, Z.; Deng, C.; Cheng, Y. Drug-Loaded Bioscaffolds for Osteochondral Regeneration. Pharmaceutics 2024, 16, 1095. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Wang, W.; Li, B.; Yang, J.; Xin, L.; Li, Y.; Yin, H.; Qi, Y.; Jiang, Y.; Ouyang, H.; Gao, C. The Restoration of Full-Thickness Cartilage Defects with BMSCs and TGF-Beta 1 Loaded PLGA/Fibrin Gel Constructs. Biomaterials 2010, 31, 8964–8973. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ressler, A.; Ohlsbom, R.; Gobbo, V.A.; Hannula, M.; Keck, K.; Swaminathan, H.; Pakarinen, T.-K.; Mohammadi, M.; Hyttinen, J.; Massera, J.; et al. Biomimetic Bone Calcium Phosphate-Based Scaffolds Fabricated via Ceramic Vat Photopolymerization: Effect of Porosity, Sintering Temperature, Mineralogical Phases and Trace Elements on the Osteogenic Potential. Mater. Today Bio 2026, 38, 103074. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Liang, X.; Duan, P.; Gao, J.; Guo, R.; Qu, Z.; Li, X.; He, Y.; Yao, H.; Ding, J. Bilayered PLGA/PLGA-HAp Composite Scaffold for Osteochondral Tissue Engineering and Tissue Regeneration. ACS Biomater. Sci. Eng. 2018, 4, 3506–3521. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Nie, X.; Shi, Y.; Wang, L.; Abudureheman, W.; Yang, J.; Lin, C. Study on the Mechanism of Magnesium Calcium Alloys/Mineralized Collagen Composites Mediating Macrophage Polarization to Promote Bone Repair. Heliyon 2024, 10, e30279. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Shan, Y.; Bai, Y.; Zhao, L.; Zhou, Q.; Yang, S.; Wang, G.; Lei, Y.; Lu, Y.; Wu, Y.; Wei, Y.; et al. Three-Dimensional-Printed Strontium-Incorporated β-TCP Bioceramic Triply Periodic Minimal Surface Scaffolds with Enhanced Angiogenic and Osteogenic Properties. Regen. Biomater. 2025, 12, rbaf080. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Nie, X.; Sun, X.; Wang, C.; Yang, J. Effect of Magnesium Ions/Type I Collagen Promote the Biological Behavior of Osteoblasts and Its Mechanism. Regen. Biomater. 2020, 7, 53–61. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zhang, X.; Chen, Q.; Mao, X. Magnesium Enhances Osteogenesis of BMSCs by Tuning Osteoimmunomodulation. Biomed. Res. Int. 2019, 2019, 7908205. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Hossen, S.M.M.; Khaleque, M.A.; Lim, M.-S.; Kang, J.-K.; Kim, D.-K.; Lee, H.-H.; Kim, Y.-Y. Biomimetic Strategies for Bone Regeneration: Smart Scaffolds and Multiscale Cues. Biomimetics 2025, 11, 12. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Husak, V.; Povelychenko, O.; Maltseva, V.; Romanenko, K.; Vorontsov, P.; Pazdnikov, R. Growth Factor and Cell Content in Platelet-Rich Plasma (PRP), Leukocyte- and Platelet-Rich Plasma (L-PRP), Platelet-Rich Fibrin (PRF) in Patients with Long Bone Defects from Combat Injuries. BMC Musculoskelet. Disord. 2025, 26, 1106. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Iseki, T.; Rothrauff, B.B.; Kihara, S.; Overholt, K.J.; Taha, T.; Lin, H.; Alexander, P.G.; Tuan, R.S. Enhanced Osteochondral Repair by Leukocyte-Depleted Platelet-Rich Plasma in Combination with Adipose-Derived Mesenchymal Stromal Cells Encapsulated in a Three-Dimensional Photocrosslinked Injectable Hydrogel in a Rabbit Model. Stem Cell Res. Ther. 2024, 15, 159. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zhang, H.; Li, D.; Zheng, W.; Hua, J.; Chen, Z.; Xu, W.; Zhu, J.; Wang, Y.; Chen, X.; Chen, H.; et al. Enhancing Cartilage Repair in Osteoarthritis Using Platelet Lysates and Arthroscopic Microfracture. Drug Des. Devel Ther. 2025, 19, 3827–3843. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Sharun, K.; Pawde, A.M.; Manjusha, K.M.; Banu S, A.; Kalaiselvan, E.; Kumar, R.; Kinjavdekar, P.; Amarpal; Verma, M.R. Classification and Coding of Platelet-Rich Plasma Derived from New Zealand White Rabbits for Tissue Engineering and Regenerative Medicine Applications. Expert. Opin. Biol. Ther. 2021, 21, 1473–1482. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Sharun, K.; Banu, S.A. Minimum Reporting Guidelines for Platelet-Rich Plasma in Veterinary Regenerative Medicine. Vet. Res. Commun. 2025, 49, 111. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Gadjanski, I.; Spiller, K.; Vunjak-Novakovic, G. Time-Dependent Processes in Stem Cell-Based Tissue Engineering of Articular Cartilage. Stem Cell Rev. Rep. 2012, 8, 863–881. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Tuli, R.; Tuli, S.; Nandi, S.; Huang, X.; Manner, P.A.; Hozack, W.J.; Danielson, K.G.; Hall, D.J.; Tuan, R.S. Transforming Growth Factor-Beta-Mediated Chondrogenesis of Human Mesenchymal Progenitor Cells Involves N-Cadherin and Mitogen-Activated Protein Kinase and Wnt Signaling Cross-Talk. J. Biol. Chem. 2003, 278, 41227–41236. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yoon, B.S.; Ovchinnikov, D.A.; Yoshii, I.; Mishina, Y.; Behringer, R.R.; Lyons, K.M. Bmpr1a and Bmpr1b Have Overlapping Functions and Are Essential for Chondrogenesis in Vivo. Proc. Natl. Acad. Sci. USA 2005, 102, 5062–5067. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Buxton, A.N.; Bahney, C.S.; Yoo, J.U.; Johnstone, B. Temporal Exposure to Chondrogenic Factors Modulates Human Mesenchymal Stem Cell Chondrogenesis in Hydrogels. Tissue Eng. Part A 2011, 17, 371–380. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Hellingman, C.A.; Koevoet, W.; Kops, N.; Farrell, E.; Jahr, H.; Liu, W.; Baatenburg de Jong, R.J.; Frenz, D.A.; van Osch, G.J.V.M. Fibroblast Growth Factor Receptors in in Vitro and in Vivo Chondrogenesis: Relating Tissue Engineering Using Adult Mesenchymal Stem Cells to Embryonic Development. Tissue Eng. Part A 2010, 16, 545–556. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Balcom, N.T.; Berg-Johansen, B.; Dills, K.J.; Van Donk, J.R.; Williams, G.M.; Chen, A.C.; Hazelwood, S.J.; Sah, R.L.; Klisch, S.M. In Vitro Articular Cartilage Growth with Sequential Application of IGF-1 and TGF-Β1 Enhances Volumetric Growth and Maintains Compressive Properties. J. Biomech. Eng. 2012, 134, 031001. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Futrega, K.; Robey, P.G.; Klein, T.J.; Crawford, R.W.; Doran, M.R. A Single Day of TGF-Β1 Exposure Activates Chondrogenic and Hypertrophic Differentiation Pathways in Bone Marrow-Derived Stromal Cells. Commun. Biol. 2021, 4, 29. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Santo, V.E.; Gomes, M.E.; Mano, J.F.; Reis, R.L. Controlled Release Strategies for Bone, Cartilage, and Osteochondral Engineering--Part II: Challenges on the Evolution from Single to Multiple Bioactive Factor Delivery. Tissue Eng. Part B Rev. 2013, 19, 327–352. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Hirai, T.; Chagin, A.S.; Kobayashi, T.; Mackem, S.; Kronenberg, H.M. Parathyroid Hormone/Parathyroid Hormone-Related Protein Receptor Signaling Is Required for Maintenance of the Growth Plate in Postnatal Life. Proc. Natl. Acad. Sci. USA 2011, 108, 191–196. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kim, Y.-J.; Kim, H.-J.; Im, G.-I. PTHrP Promotes Chondrogenesis and Suppresses Hypertrophy from Both Bone Marrow-Derived and Adipose Tissue-Derived MSCs. Biochem. Biophys. Res. Commun. 2008, 373, 104–108. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Monaco, G.; Qawasmi, F.; El Haj, A.J.; Forsyth, N.R.; Stoddart, M.J. Chondrogenic Differentiation of Human Bone Marrow MSCs in Osteochondral Implants under Kinematic Mechanical Load Is Dependent on the Underlying Osteo Component. Front. Bioeng. Biotechnol. 2022, 10, 998774. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Wu, D.; Zheng, K.; Yin, W.; Hu, B.; Yu, M.; Yu, Q.; Wei, X.; Deng, J.; Zhang, C. Enhanced Osteochondral Regeneration with a 3D-Printed Biomimetic Scaffold Featuring a Calcified Interfacial Layer. Bioact. Mater. 2024, 36, 317–329. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Höger, S.A.; Cong, T.; Hall, A.J.; Lane, J.; Runer, A. Subchondral Bone Contribution to Osteochondral Health and Injury. Ann. Jt. 2025, 10, 27. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zhou, S.; Cui, Z.; Urban, J.P.G. Factors Influencing the Oxygen Concentration Gradient from the Synovial Surface of Articular Cartilage to the Cartilage-Bone Interface: A Modeling Study. Arthritis Rheum. 2004, 50, 3915–3924. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Radin, E.L.; Rose, R.M. Role of Subchondral Bone in the Initiation and Progression of Cartilage Damage. Clin. Orthop. Relat. Res. 1986, 213, 34–40. [Google Scholar] [CrossRef] [Scilit]
- Rauck, R.C.; Wang, D.; Tao, M.; Williams, R.J. Chondral Delamination of Fresh Osteochondral Allografts after Implantation in the Knee: A Matched Cohort Analysis. Cartilage 2019, 10, 402–407. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Chen, R.; Pye, J.S.; Li, J.; Little, C.B.; Li, J.J. Multiphasic Scaffolds for the Repair of Osteochondral Defects: Outcomes of Preclinical Studies. Bioact. Mater. 2023, 27, 505–545. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Lu, J.; Gao, Y.; Cao, C.; Wang, H.; Ruan, Y.; Qin, K.; Liu, H.; Wang, Y.; Yang, P.; Liu, Y.; et al. 3D Bioprinted Scaffolds for Osteochondral Regeneration: Advancements and Applications. Mater. Today Bio 2025, 32, 101834. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Salerno, M.; Di Martino, A.; Galassi, E.; Grillini, L.; Dotti, A.; De Luca, C.; Filardo, G. Biomimetic Tri-Layered Osteochondral Scaffold: Study of Early Implant Stability in a Sheep Model. Bone Jt. Res. 2025, 14, 953–968. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Fang, L.; Lin, X.; Xu, R.; Liu, L.; Zhang, Y.; Tian, F.; Li, J.J.; Xue, J. Advances in the Development of Gradient Scaffolds Made of Nano-Micromaterials for Musculoskeletal Tissue Regeneration. Nano-Micro Lett. 2024, 17, 75. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Corrado, F.; Di Maio, L.; Palmero, P.; Coppola, B.; Abbas, Z.; La Gatta, A.; Schiraldi, C.; Scarfato, P. Vat Photo-Polymerization 3D Printing of Gradient Scaffolds for Osteochondral Tissue Regeneration. Acta Biomater. 2025, 200, 67–86. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Chen, Z.; Bo, Q.; Wang, C.; Xu, Y.; Fei, X.; Chen, R. Single BMSC-Derived Cartilage Organoids for Gradient Heterogeneous Osteochondral Regeneration by Leveraging Native Vascular Microenvironment. J. Nanobiotechnol. 2025, 23, 325. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Xu, J.; Cui, Y.; Sun, X.; Chen, Z.; Liu, M.; Wang, X.; Li, P.; Fan, Y. Continuous Magnetic-Gradient Hydrogel with Augmented Mechanical Span and Reverse-Directional Polysaccharides Distribution for Integrated Repair of Osteochondral Defects. Compos. Part B Eng. 2025, 298, 112361. [Google Scholar] [CrossRef] [Scilit]
- Haung, S.-M.; Lin, Y.-T.; Liu, S.-M.; Chen, J.-C.; Chen, W.-C. In Vitro Evaluation of a Composite Gelatin-Hyaluronic Acid-Alginate Porous Scaffold with Different Pore Distributions for Cartilage Regeneration. Gels 2021, 7, 165. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yang, T.; Tamaddon, M.; Jiang, L.; Wang, J.; Liu, Z.; Liu, Z.; Meng, H.; Hu, Y.; Gao, J.; Yang, X.; et al. Bilayered Scaffold with 3D Printed Stiff Subchondral Bony Compartment to Provide Constant Mechanical Support for Long-Term Cartilage Regeneration. J. Orthop. Transl. 2021, 30, 112–121. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Lima, E.G.; Mauck, R.L.; Han, S.H.; Park, S.; Ng, K.W.; Ateshian, G.A.; Hung, C.T. Functional Tissue Engineering of Chondral and Osteochondral Constructs. Biorheology 2004, 41, 577–590. [Google Scholar] [CrossRef] [PubMed]
- Camarero-Espinosa, S.; Beeren, I.; Liu, H.; Gomes, D.B.; Zonderland, J.; Lourenço, A.F.H.; van Beurden, D.; Peters, M.; Koper, D.; Emans, P.; et al. 3D Niche-Inspired Scaffolds as a Stem Cell Delivery System for the Regeneration of the Osteochondral Interface. Adv. Mater. 2024, 36, e2310258. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yamagata, K.; Nakayamada, S.; Tanaka, Y. Use of Mesenchymal Stem Cells Seeded on the Scaffold in Articular Cartilage Repair. Inflamm. Regen. 2018, 38, 4. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Christensen, B.B.; Foldager, C.B.; Jensen, J.; Jensen, N.C.; Lind, M. Poor Osteochondral Repair by a Biomimetic Collagen Scaffold: 1- to 3-Year Clinical and Radiological Follow-Up. Knee Surg. Sports Traumatol. Arthrosc. 2016, 24, 2380–2387. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Dell’Osso, G.; Bottai, V.; Bugelli, G.; Manisco, T.; Cazzella, N.; Celli, F.; Guido, G.; Giannotti, S. The Biphasic Bioresorbable Scaffold (Trufit®) in the Osteochondral Knee Lesions: Long-Term Clinical and MRI Assessment in 30 Patients. Musculoskelet. Surg. 2016, 100, 93–96. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Barron, V.; Neary, M.; Mohamed, K.M.S.; Ansboro, S.; Shaw, G.; O’Malley, G.; Rooney, N.; Barry, F.; Murphy, M. Evaluation of the Early In Vivo Response of a Functionally Graded Macroporous Scaffold in an Osteochondral Defect in a Rabbit Model. Ann. Biomed. Eng. 2016, 44, 1832–1844. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Sosio, C.; Di Giancamillo, A.; Deponti, D.; Gervaso, F.; Scalera, F.; Melato, M.; Campagnol, M.; Boschetti, F.; Nonis, A.; Domeneghini, C.; et al. Osteochondral Repair by a Novel Interconnecting Collagen-Hydroxyapatite Substitute: A Large-Animal Study. Tissue Eng. Part A 2015, 21, 704–715. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yang, J.; Zhang, Y.S.; Yue, K.; Khademhosseini, A. Cell-Laden Hydrogels for Osteochondral and Cartilage Tissue Engineering. Acta Biomater. 2017, 57, 1–25. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Engler, A.J.; Sen, S.; Sweeney, H.L.; Discher, D.E. Matrix Elasticity Directs Stem Cell Lineage Specification. Cell 2006, 126, 677–689. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Dupont, S.; Morsut, L.; Aragona, M.; Enzo, E.; Giulitti, S.; Cordenonsi, M.; Zanconato, F.; Le Digabel, J.; Forcato, M.; Bicciato, S.; et al. Role of YAP/TAZ in Mechanotransduction. Nature 2011, 474, 179–183. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Na, J.; Yang, Z.; Shi, Q.; Li, C.; Liu, Y.; Song, Y.; Li, X.; Zheng, L.; Fan, Y. Extracellular Matrix Stiffness as an Energy Metabolism Regulator Drives Osteogenic Differentiation in Mesenchymal Stem Cells. Bioact. Mater. 2024, 35, 549–563. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Huang, D.; Li, Y.; Ma, Z.; Lin, H.; Zhu, X.; Xiao, Y.; Zhang, X. Collagen Hydrogel Viscoelasticity Regulates MSC Chondrogenesis in a ROCK-Dependent Manner. Sci. Adv. 2023, 9, eade9497. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Chaudhuri, O.; Gu, L.; Klumpers, D.; Darnell, M.; Bencherif, S.A.; Weaver, J.C.; Huebsch, N.; Lee, H.-P.; Lippens, E.; Duda, G.N.; et al. Hydrogels with Tunable Stress Relaxation Regulate Stem Cell Fate and Activity. Nat. Mater. 2016, 15, 326–334. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Li, W.; Wu, D.; Hu, D.; Zhu, S.; Pan, C.; Jiao, Y.; Li, L.; Luo, B.; Zhou, C.; Lu, L. Stress-Relaxing Double-Network Hydrogel for Chondrogenic Differentiation of Stem Cells. Mater. Sci. Eng. C Mater. Biol. Appl. 2020, 107, 110333. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ho, S.S.; Keown, A.T.; Addison, B.; Leach, J.K. Cell Migration and Bone Formation from Mesenchymal Stem Cell Spheroids in Alginate Hydrogels Are Regulated by Adhesive Ligand Density. Biomacromolecules 2017, 18, 4331–4340. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Parmar, P.A.; St-Pierre, J.-P.; Chow, L.W.; Spicer, C.D.; Stoichevska, V.; Peng, Y.Y.; Werkmeister, J.A.; Ramshaw, J.A.M.; Stevens, M.M. Enhanced Articular Cartilage by Human Mesenchymal Stem Cells in Enzymatically Mediated Transiently RGDS-Functionalized Collagen-Mimetic Hydrogels. Acta Biomater. 2017, 51, 75–88. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Muran, A.C.; Schaffler, B.C.; Wong, A.; Neufeld, E.; Swami, P.; Pianka, M.; Grande, D. Effect of Increasing Hyaluronic Acid Content in Collagen Scaffolds on the Maintenance of Chondrogenic Phenotype in Chondrocytes and Mesenchymal Stem Cells. J. Cartil. Jt. Preserv. 2023, 3, 100099. [Google Scholar] [CrossRef] [Scilit]
- Intini, C.; Hodgkinson, T.; Casey, S.M.; Gleeson, J.P.; O’Brien, F.J. Highly Porous Type II Collagen-Containing Scaffolds for Enhanced Cartilage Repair with Reduced Hypertrophic Cartilage Formation. Bioengineering 2022, 9, 232. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ai, C.; Liu, L.; Wong, K.; Tan, X.H.; Goh, J.C.H. The Effect of Chondroitin Sulfate Concentration and Matrix Stiffness on Chondrogenic Differentiation of Mesenchymal Stem Cells. Biomater. Sci. 2023, 11, 4557–4573. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yaylaci, S.; Guler, M.O.; Tekinay, A.B. Sulfated GAG Mimetic Peptide Nanofibers Enhance Chondrogenic Differentiation of Mesenchymal Stem Cells in 3D in Vitro Models. Regen. Biomater. 2023, 10, rbac084. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Lv, X.; Sun, C.; Hu, B.; Chen, S.; Wang, Z.; Wu, Q.; Fu, K.; Xia, Z.; Shao, Z.; Wang, B. Simultaneous Recruitment of Stem Cells and Chondrocytes Induced by a Functionalized Self-Assembling Peptide Hydrogel Improves Endogenous Cartilage Regeneration. Front. Cell Dev. Biol. 2020, 8, 864. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Feng, Q.; Zhu, M.; Wei, K.; Bian, L. Cell-Mediated Degradation Regulates Human Mesenchymal Stem Cell Chondrogenesis and Hypertrophy in MMP-Sensitive Hyaluronic Acid Hydrogels. PLoS ONE 2014, 9, e99587. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Aisenbrey, E.A.; Bryant, S.J. A MMP7-Sensitive Photoclickable Biomimetic Hydrogel for MSC Encapsulation towards Engineering Human Cartilage. J. Biomed. Mater. Res. A 2018, 106, 2344–2355. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Manferdini, C.; Trucco, D.; Saleh, Y.; Gabusi, E.; Dolzani, P.; Lenzi, E.; Vannozzi, L.; Ricotti, L.; Lisignoli, G. RGD-Functionalized Hydrogel Supports the Chondrogenic Commitment of Adipose Mesenchymal Stromal Cells. Gels 2022, 8, 382. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Liu, J.; Fang, Q.; Yu, X.; Wan, Y.; Xiao, B. Chitosan-Based Nanofibrous Membrane Unit with Gradient Compositional and Structural Features for Mimicking Calcified Layer in Osteochondral Matrix. Int. J. Mol. Sci. 2018, 19, 2330. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Sun, Y.; You, Y.; Jiang, W.; Wang, B.; Wu, Q.; Dai, K. 3D Bioprinting Dual-Factor Releasing and Gradient-Structured Constructs Ready to Implant for Anisotropic Cartilage Regeneration. Sci. Adv. 2020, 6, eaay1422. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Di Luca, A.; Lorenzo-Moldero, I.; Mota, C.; Lepedda, A.; Auhl, D.; Van Blitterswijk, C.; Moroni, L. Tuning Cell Differentiation into a 3D Scaffold Presenting a Pore Shape Gradient for Osteochondral Regeneration. Adv. Healthc. Mater. 2016, 5, 1753–1763. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zhang, B.; Guo, L.; Chen, H.; Ventikos, Y.; Narayan, R.J.; Huang, J. Finite Element Evaluations of the Mechanical Properties of Polycaprolactone/Hydroxyapatite Scaffolds by Direct Ink Writing: Effects of Pore Geometry. J. Mech. Behav. Biomed. Mater. 2020, 104, 103665. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Tortorici, M.; Petersen, A.; Ehrhart, K.; Duda, G.N.; Checa, S. Scaffold-Dependent Mechanical and Architectural Cues Guide Osteochondral Defect Healing in Silico. Front. Bioeng. Biotechnol. 2021, 9, 642217. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Rashidi, N.; Tamaddon, M.; Liu, C.; Brand, D.D.; Czernuszka, J. A Bilayer Osteochondral Scaffold with Self-Assembled Monomeric Collagen Type-I, Type-II, and Polymerized Chondroitin Sulfate Promotes Chondrogenic and Osteogenic Differentiation of Mesenchymal Stem Cells. Adv. NanoBiomed Res. 2022, 2, 2100089. [Google Scholar] [CrossRef] [Scilit]
- Zhuang, Y.; Liu, E.; Gao, Y.; Ding, J.; Chen, X. Enzyme-Responsive Self-Evolving Hydrogel for Osteochondral Regeneration through Mechanosignaling Pathway. J. Am. Chem. Soc. 2025, 147, 46897–46912. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Gaharwar, A.K.; Singh, I.; Khademhosseini, A. Engineered Biomaterials for in Situ Tissue Regeneration. Nat. Rev. Mater. 2020, 5, 686–705. [Google Scholar] [CrossRef] [Scilit]
- de Sousa, E.B.; Casado, P.L.; Neto, V.M.; Duarte, M.E.L.; Aguiar, D.P. Synovial Fluid and Synovial Membrane Mesenchymal Stem Cells: Latest Discoveries and Therapeutic Perspectives. Stem Cell Res. Ther. 2014, 5, 112. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Dang, Y.; Liu, Y.; Zhang, B.; Zhang, X. Aging Microenvironment in Osteoarthritis Focusing on Early-Stage Alterations and Targeted Therapies. Bone Res. 2025, 13, 84. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Dong, Y.; Liu, Y.; Chen, Y.; Sun, X.; Zhang, L.; Zhang, Z.; Wang, Y.; Qi, C.; Wang, S.; Yang, Q. Spatiotemporal Regulation of Endogenous MSCs Using a Functional Injectable Hydrogel System for Cartilage Regeneration. NPG Asia Mater. 2021, 13, 71. [Google Scholar] [CrossRef] [Scilit]
- Zhang, H.; Li, X.; Li, J.; Zhong, L.; Chen, X.; Chen, S. SDF-1 Mediates Mesenchymal Stem Cell Recruitment and Migration via the SDF-1/CXCR4 Axis in Bone Defect. J. Bone Miner. Metab. 2021, 39, 126–138. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- van der Kraan, P.M.; van den Berg, W.B. Chondrocyte Hypertrophy and Osteoarthritis: Role in Initiation and Progression of Cartilage Degeneration? Osteoarthr. Cartil. 2012, 20, 223–232. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Jin, G.-Z. Molecular Mechanisms of Chondrocyte Hypertrophy Mediated by Physical Cues and Therapeutic Strategies in Osteoarthritis. Int. J. Mol. Sci. 2026, 27, 624. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Solorio, L.D.; Dhami, C.D.; Dang, P.N.; Vieregge, E.L.; Alsberg, E. Spatiotemporal Regulation of Chondrogenic Differentiation with Controlled Delivery of Transforming Growth Factor-Β1 from Gelatin Microspheres in Mesenchymal Stem Cell Aggregates. Stem Cells Transl. Med. 2012, 1, 632–639. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Vágó, J.; Takács, R.; Kovács, P.; Hajdú, T.; van der Veen, D.R.; Matta, C. Combining Biomechanical Stimulation and Chronobiology: A Novel Approach for Augmented Chondrogenesis? Front. Bioeng. Biotechnol. 2023, 11, 1232465. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Vágó, J.; Katona, É.; Takács, R.; Dócs, K.; Hajdú, T.; Kovács, P.; Zákány, R.; van der Veen, D.R.; Matta, C. Cyclic Uniaxial Mechanical Load Enhances Chondrogenesis through Entraining the Molecular Circadian Clock. J. Pineal Res. 2022, 73, e12827. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Weizel, A.; Distler, T.; Schneidereit, D.; Friedrich, O.; Bräuer, L.; Paulsen, F.; Detsch, R.; Boccaccini, A.R.; Budday, S.; Seitz, H. Complex Mechanical Behavior of Human Articular Cartilage and Hydrogels for Cartilage Repair. Acta Biomater. 2020, 118, 113–128. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kazemi, M.; Williams, J.L. Properties of Cartilage–Subchondral Bone Junctions: A Narrative Review with Specific Focus on the Growth Plate. Cartilage 2021, 13, 16S–33S. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Upadhyay, U.; Kolla, S.; Chelluri, L.K. Extracellular Matrix Composition Analysis of Human Articular Cartilage for the Development of Organ-on-a-Chip. Biochem. Biophys. Res. Commun. 2023, 667, 81–88. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Gao, Y.; Zhuang, Y.; Zhu, T.; Zhang, H.; Wang, Y.; Chang, F.; Ding, J. Biophysical Signal-Driven Scaffold Design for Stem Cell-Guided Osteochondral Regeneration. Bioact. Mater. 2026, 60, 744–769. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Cui, M.; Sun, Y.; Zhang, X.; Yang, P.; Jiang, W. Osteochondral Tissue Engineering in Translational Practice: Histological Assessments and Scoring Systems. Front. Bioeng. Biotechnol. 2024, 12, 1434323. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Seo, S.-J.; Mahapatra, C.; Singh, R.K.; Knowles, J.C.; Kim, H.-W. Strategies for Osteochondral Repair: Focus on Scaffolds. J. Tissue Eng. 2014, 5, 2041731414541850. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Tajvar, S.; Hadjizadeh, A.; Samandari, S.S. Scaffold Degradation in Bone Tissue Engineering: An Overview. Int. Biodeterior. Biodegrad. 2023, 180, 105599. [Google Scholar] [CrossRef] [Scilit]
- Malekmohammadi, S.; Jamshidi, R.; Sadowska, J.M.; Meng, C.; Abeykoon, C.; Akbari, M.; Gong, R.H. Stimuli-Responsive Codelivery System-Embedded Polymeric Nanofibers with Synergistic Effects of Growth Factors and Low-Intensity Pulsed Ultrasound to Enhance Osteogenesis Properties. ACS Appl. Bio Mater. 2024, 7, 4293–4306. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Greenbaum, A.; Hsu, Y.-M.S.; Day, R.B.; Schuettpelz, L.G.; Christopher, M.J.; Borgerding, J.N.; Nagasawa, T.; Link, D.C. CXCL12 in Early Mesenchymal Progenitors Is Required for Haematopoietic Stem-Cell Maintenance. Nature 2013, 495, 227–230. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Matsushita, Y.; Nagata, M.; Kozloff, K.M.; Welch, J.D.; Mizuhashi, K.; Tokavanich, N.; Hallett, S.A.; Link, D.C.; Nagasawa, T.; Ono, W.; et al. A Wnt-Mediated Transformation of the Bone Marrow Stromal Cell Identity Orchestrates Skeletal Regeneration. Nat. Commun. 2020, 11, 332. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Suzdaltseva, Y.; Goryunov, K.; Silina, E.; Manturova, N.; Stupin, V.; Kiselev, S.L. Equilibrium among Inflammatory Factors Determines Human MSC-Mediated Immunosuppressive Effect. Cells 2022, 11, 1210. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kwon, S.-H.; Lee, T.-J.; Park, J.; Hwang, J.-E.; Jin, M.; Jang, H.-K.; Hwang, N.S.; Kim, B.-S. Modulation of BMP-2-Induced Chondrogenic versus Osteogenic Differentiation of Human Mesenchymal Stem Cells by Cell-Specific Extracellular Matrices. Tissue Eng. Part A 2013, 19, 49–58. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zhou, N.; Li, Q.; Lin, X.; Hu, N.; Liao, J.-Y.; Lin, L.-B.; Zhao, C.; Hu, Z.-M.; Liang, X.; Xu, W.; et al. BMP2 Induces Chondrogenic Differentiation, Osteogenic Differentiation and Endochondral Ossification in Stem Cells. Cell Tissue Res. 2016, 366, 101–111. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Massaro, F.; Corrillon, F.; Stamatopoulos, B.; Dubois, N.; Ruer, A.; Meuleman, N.; Bron, D.; Lagneaux, L. Age-Related Changes in Human Bone Marrow Mesenchymal Stromal Cells: Morphology, Gene Expression Profile, Immunomodulatory Activity and miRNA Expression. Front. Immunol. 2023, 14, 1267550. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zhang, Y.; Ravikumar, M.; Ling, L.; Nurcombe, V.; Cool, S.M. Age-Related Changes in the Inflammatory Status of Human Mesenchymal Stem Cells: Implications for Cell Therapy. Stem Cell Rep. 2021, 16, 694–707. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kim, M.; Wang, X.; Li, Y.; Lin, Z.; Collins, C.P.; Liu, Y.; Ahn, Y.; Tsal, H.-M.; Song, J.W.; Duan, C.; et al. Personalized Composite Scaffolds for Accelerated Cell- and Growth Factor-Free Craniofacial Bone Regeneration. Bioact. Mater. 2024, 41, 427–439. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Davis, S.; Roldo, M.; Blunn, G.; Tozzi, G.; Roncada, T. Influence of the Mechanical Environment on the Regeneration of Osteochondral Defects. Front. Bioeng. Biotechnol. 2021, 9, 603408. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yuan, S.C.; Álvarez, Z.; Lee, S.R.; Pavlović, R.Z.; Yuan, C.; Singer, E.; Weigand, S.J.; Palmer, L.C.; Stupp, S.I. Supramolecular Motion Enables Chondrogenic Bioactivity of a Cyclic Peptide Mimetic of Transforming Growth Factor-Β1. J. Am. Chem. Soc. 2024, 146, 21555–21567. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Wang, H.; Cheng, P.; Wang, J.; Lv, H.; Han, J.; Hou, Z.; Xu, R.; Chen, W. Advances in Spatial Transcriptomics and Its Application in the Musculoskeletal System. Bone Res. 2025, 13, 54. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Liao, Y.; Kang, F.; Xiong, J.; Xie, K.; Li, M.; Yu, L.; Wang, Y.; Chen, H.; Ye, G.; Yin, Y.; et al. MSX1+PDGFRAlow Limb Mesenchyme-like Cells as an Efficient Stem Cell Source for Human Cartilage Regeneration. Stem Cell Rep. 2024, 19, 399–413. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Murphy, J.M.; Dixon, K.; Beck, S.; Fabian, D.; Feldman, A.; Barry, F. Reduced Chondrogenic and Adipogenic Activity of Mesenchymal Stem Cells from Patients with Advanced Osteoarthritis. Arthritis Rheum. 2002, 46, 704–713. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Otsuki, S.; Grogan, S.P.; Miyaki, S.; Kinoshita, M.; Asahara, H.; Lotz, M.K. Tissue Neogenesis and STRO-1 Expression in Immature and Mature Articular Cartilage. J. Orthop. Res. 2010, 28, 96–102. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Cherian, D.S.; Bhuvan, T.; Meagher, L.; Heng, T.S.P. Biological Considerations in Scaling Up Therapeutic Cell Manufacturing. Front. Pharmacol. 2020, 11, 654. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Takematsu, E.; Murphy, M.; Hou, S.; Steininger, H.; Alam, A.; Ambrosi, T.H.; Chan, C.K.F. Optimizing Delivery of Therapeutic Growth Factors for Bone and Cartilage Regeneration. Gels 2023, 9, 377. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- McGowan, K.B.; Stiegman, G. Regulatory Challenges for Cartilage Repair Technologies. Cartilage 2013, 4, 4–11. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Del Rey, M.J.; Faré, R.; Usategui, A.; Cañete, J.D.; Bravo, B.; Galindo, M.; Criado, G.; Pablos, J.L. CD271+ Stromal Cells Expand in Arthritic Synovium and Exhibit a Proinflammatory Phenotype. Arthritis Res. Ther. 2016, 18, 66. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Krüger, J.P.; Endres, M.; Neumann, K.; Stuhlmüller, B.; Morawietz, L.; Häupl, T.; Kaps, C. Chondrogenic Differentiation of Human Subchondral Progenitor Cells Is Affected by Synovial Fluid from Donors with Osteoarthritis or Rheumatoid Arthritis. J. Orthop. Surg. Res. 2012, 7, 10. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Xia, X.; Sui, Y.; Zhou, J.; Li, S.; Ma, X.; Jiang, J.; Yan, Y. Augmenting Mesenchymal Stem Cell Therapy for Osteoarthritis via Inflammatory Priming: A Comparative Study on Mesenchymal Stem Cells Derived from Various Perinatal Tissue Sources. Front. Cell Dev. Biol. 2023, 11, 1279574. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Krüger, J.P.; Enz, A.; Hondke, S.; Wichelhaus, A.; Endres, M.; Mittlmeier, T. Proliferation, Migration and Differentiation Potential of Human Mesenchymal Progenitor Cells Derived from Osteoarthritic Subchondral Cancellous Bone. J. Stem Cells Regen. Med. 2018, 14, 45–52. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Sonnleitner, J.; Gulich, K.; Pruss, A.; Perka, C.; Gursche, A.; Kendoff, D.; Sittinger, M.; Hemmati-Sadeghi, S.; Dehne, T. Osteoarthritis Bone Marrow MSCs Retain Regenerative Competence and Chemokine Responsiveness for Drug-Based In Situ Tissue Engineering. Stem Cells Int. 2025, 2025, 3757831. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Qi, L.; Wang, J.; Chen, X.; Ding, Y.; Ling, B.; Wang, W.; Xu, J.; Xue, Z. Single-Cell Transcriptomics Reveals Variable Trajectories of CSPCs in the Progression of Osteoarthritis. Heliyon 2022, 8, e11148. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ilas, D.C.; Baboolal, T.G.; Churchman, S.M.; Jones, W.G.; Giannoudis, P.V.; Bühring, H.-J.; McGonagle, D.; Jones, E. The Osteogenic Commitment of CD271+CD56+ Bone Marrow Stromal Cells (BMSCs) in Osteoarthritic Femoral Head Bone. Sci. Rep. 2020, 10, 11145. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Xie, Z.; Yu, W.; Ye, G.; Li, J.; Zheng, G.; Liu, W.; Lin, J.; Su, Z.; Che, Y.; Ye, F.; et al. Single-Cell RNA Sequencing Analysis of Human Bone-Marrow-Derived Mesenchymal Stem Cells and Functional Subpopulation Identification. Exp. Mol. Med. 2022, 54, 483–492. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Liu, M.; Zhou, Y.; Mei, X.; Yu, Z.; Guan, B.; Xiao, Y.; Liu, S.; Wang, H.; Qin, Y. AI-Driven Biomaterial Design: An Intelligent Closed Loop from Reverse Design to Biological Response. Front. Cell Dev. Biol. 2025, 13, 1755565. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yin, X.Y.; Park, D.Y.; Kim, Y.J.; Ahn, H.J.; Yoo, S.-H.; Min, B.-H. The Effect of Distance between Holes on the Structural Stability of Subchondral Bone in Microfracture Surgery: A Finite Element Model Study. BMC Musculoskelet. Disord. 2020, 21, 557. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Wei, B.; Jin, C.; Xu, Y.; Du, X.; Yan, C.; Tang, C.; Ansari, M.; Wang, L. Chondrogenic Differentiation of Marrow Clots after Microfracture with BMSC-Derived ECM Scaffold in Vitro. Tissue Eng. Part A 2014, 20, 2646–2655. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Conoscenti, G.; Smith, K.W.Y.; Pirosa, A.; Pavia, F.C.; Zhang, E.Y.; La Carrubba, V.; Brucato, V.; Tuan, R.S.; Gottardi, R. Continuous Pore Size Gradient Enhances Zonal-Specific Differentiation of Stem Cells in an Osteochondral Scaffold. RSC Adv. 2025, 15, 28452–28463. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Hashimoto, Y.; Nishida, Y.; Takahashi, S.; Nakamura, H.; Mera, H.; Kashiwa, K.; Yoshiya, S.; Inagaki, Y.; Uematsu, K.; Tanaka, Y.; et al. Transplantation of Autologous Bone Marrow-Derived Mesenchymal Stem Cells under Arthroscopic Surgery with Microfracture versus Microfracture Alone for Articular Cartilage Lesions in the Knee: A Multicenter Prospective Randomized Control Clinical Trial. Regen. Ther. 2019, 11, 106–113. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Tamaddon, M.; Liu, C. Enhancing Biological and Biomechanical Fixation of Osteochondral Scaffold: A Grand Challenge. Adv. Exp. Med. Biol. 2018, 1059, 255–298. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Gubert, S.; Moon, H.; Oliva, N.; Texidó, R. The Osteochondral Regeneration Paradox: Why Biomimetic Scaffolds Are Biologically Superior but Injectable Systems Dominate the Clinic. RSC Adv. 2026, 16, 11370–11390. [Google Scholar] [CrossRef] [Scilit] [PubMed]




| MSC Source | Proliferation | Chondrogenic Potential | Accessibility | Clinical Relevance | Ref. |
|---|---|---|---|---|---|
| Cartilage-resident progenitors | Low in situ abundance but moderate-to-high proliferative/clonogenic capacity after isolation and expansion. | Highly chondrogenic, capable of generating hyaline-like cartilage with relatively low hypertrophic tendency; particularly relevant for superficial cartilage maintenance and repair. | Poor; embedded within dense cartilage ECM and typically require tissue harvest. | Particularly relevant for early/superficial lesions, cartilage homeostasis, and integration with native cartilage. | [56,57,58] |
| Synovial membrane MSCs | High proliferative capacity and colony-forming ability. | High chondrogenic potential; frequently regarded as one of the most chondrogenic joint-resident MSC populations. | Moderate; accessible arthroscopically or through synovial biopsy. | Highly relevant for cartilage repair, meniscal regeneration, and one-stage cell-based procedures. | [39,55] |
| Synovial fluid MSCs | Moderate-to-high proliferation, with cell numbers increasing after joint injury, inflammation, or synovitis. | Moderate-to-high chondrogenic capacity; responsive to chondrogenic stimulation, although not consistently superior to BM-MSCs. | High; can be harvested minimally invasively from joint aspirates. | Attractive for endogenous cell mobilization, intra-articular biologic therapies, and minimally invasive regenerative strategies. | [52,53,54] |
| Bone marrow-derived MSCs | Moderate proliferation with robust ex vivo expansion capacity. | Strong chondrogenic and osteogenic differentiation potential, making them central to osteochondral repair. | High; available through marrow stimulation techniques, bone marrow aspiration concentrate (BMAC), or iliac crest harvest. | Most clinically established MSC source; widely used in microfracture augmentation, drilling, nanofracture, and BMAC procedures. | [54,62,63] |
| Periosteum-derived progenitors | High proliferative activity, particularly following injury-induced activation. | Strong chondrogenic and osteogenic capacity, with an important role in endochondral ossification and osteochondral interface regeneration. | Moderate; harvesting is more invasive than synovial or synovial-fluid sources. | Particularly relevant for osteochondral interface reconstruction, fracture healing, and endochondral repair strategies. | [64,65,66] |
| IFP/adipose-derived MSCs | High proliferation and good expansion potential, including cells isolated from osteoarthritic joints. | Moderate-to-high chondrogenic potential; often superior to subcutaneous adipose MSCs and capable of producing robust cartilaginous matrix under appropriate stimulation. | High; readily obtained during knee arthroscopy or open knee surgery. | Clinically attractive resident adipose source with chondrogenic and immunomodulatory properties. | [59,60,61] |
| Resident Stem Cell Source | Surface Markers | Targeting Strategies |
|---|---|---|
| Articular cartilage | Core MSC identity: CD73+, CD90+, CD105+, STRO-1+, CD146+, CD166+ Adhesion markers: CD29+, CD44+, CD166+, CD146+, CD90+ Homing/Niche signaling: Notch1+, CD44+, CD29+, CD146+ Immunophenotypic exclusion: CD11b−, CD14−, CD19−, CD34−, CD45−, CD79a−, HLA-DR− |
|
| Bone marrow | Core MSC identity: CD73+, CD90+, CD105+, CD271+, STRO-1+, CD146+ Adhesion markers: CD29+, CD44+, CD166+, CD146+, CD147+ Homing/Migration: CD271+, CD44+, CD29+, CD146+, CD147+ Immunophenotypic exclusion: CD11b−, CD14−, CD19−, CD34−, CD45−, CD79a−, HLA-DR− |
|
| Periosteum | Core MSC identity: CD73+, CD90+, CD105+, STRO-1+ Adhesion markers: CD29+, CD44+, CD166+ Homing/Migration: CD44+, CD29+ Immunophenotypic exclusion: CD14−, CD33−, CD34−, CD45−, CD133−, HLA-DR− |
|
| Synovial membrane | Core MSC identity: CD90+, CD105+, CD271+ Adhesion markers: CD44+, CD147+ Homing/Migration: CD271+, CD44+, CD147+ Immunophenotypic exclusion: CD31−, CD34−, CD45−, CD177−, HLA-DR− |
|
| Synovial fluid | Core MSC identity: CD90+, CD105+, CD271+, UDPGD+ Adhesion markers: CD44+ Homing/Migration: CD271+, CD44+ Immunomodulatory/Activation: CD40+ Immunophenotypic Exclusion: CD11b−, CD19−, CD34−, CD45−, HLA-DR− |
|
| Infrapatellar fat pad | Core MSC identity: CD90+, CD105+, CD13+ Adhesion markers: CD29+, CD44+, CD13+ Homing/Migration: CD44+, CD29+ Immunophenotypic exclusion: CD34−, CD56−, CD271−, STRO-1− |
|
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Sharun, K.; Banu, S.A.; Muthu, S.; Pennisi, C.P. Design Strategies to Target Joint Resident Mesenchymal Stem Cells for Osteochondral Regeneration. Cells 2026, 15, 1290. https://doi.org/10.3390/cells15141290
Sharun K, Banu SA, Muthu S, Pennisi CP. Design Strategies to Target Joint Resident Mesenchymal Stem Cells for Osteochondral Regeneration. Cells. 2026; 15(14):1290. https://doi.org/10.3390/cells15141290
Chicago/Turabian StyleSharun, Khan, Shajahan Amitha Banu, Sathish Muthu, and Cristian Pablo Pennisi. 2026. "Design Strategies to Target Joint Resident Mesenchymal Stem Cells for Osteochondral Regeneration" Cells 15, no. 14: 1290. https://doi.org/10.3390/cells15141290
APA StyleSharun, K., Banu, S. A., Muthu, S., & Pennisi, C. P. (2026). Design Strategies to Target Joint Resident Mesenchymal Stem Cells for Osteochondral Regeneration. Cells, 15(14), 1290. https://doi.org/10.3390/cells15141290

