Selective Extracellular Matrix Guided Mesenchymal Stem Cell Self‐Aggregate Engineering for Replication of Meniscal Zonal Tissue Gradient in a Porcine Meniscectomy Model

Author:

Noh Sujin1ORCID,Jin Yong Jun2,Shin Dong Il3,Kwon Hyeon Jae3,Yun Hee‐Woong24,Kim Kyu Min4,Park Jae‐Young5,Chung Jun Young2,Park Do Young1246ORCID

Affiliation:

1. Department of Biomedical Sciences Graduate School of Ajou University Suwon 16499 Republic of Korea

2. Department of Orthopedic Surgery School of Medicine Ajou University Suwon 16499 Republic of Korea

3. Department of Molecular Science and Technology Ajou University Suwon 16499 Republic of Korea

4. Cell Therapy Center Ajou Medical Center Suwon 16499 Republic of Korea

5. Department of Orthopedics Surgery CHA University Bundang Medical Center Bundang‐gu Seongnam‐si Gyeonggi‐do 13496 Republic of Korea

6. Ajou University, Leading Convergence of Healthcare and Medicine, Institute of Science & Technology (ALCHeMIST) Suwon 16499 Republic of Korea

Abstract

AbstractDegenerative meniscus tears (DMTs) are prevalent findings in osteoarthritic knees, yet current treatment is mostly limited to arthroscopic partial meniscectomy rather than regeneration, which further exacerbates arthritic changes. Translational research regarding meniscus regeneration is hindered by the complex, composite nature of the meniscus which exhibit a gradient from inner cartilage‐like tissue to outer fibrous tissue, as well as engineering hurdles often requiring growth factors and cross‐linking agents. Here, a meniscus zonal tissue gradient is proposed using zone‐specific decellularized meniscus extracellular matrix (DMECM) and autologous synovial mesenchymal stem cells (SMSC) via self‐aggregation without the use of growth factors or cross‐linking agents. Combination with zone‐specific DMECM during self‐aggregation of MSCs forms zone‐specific meniscus tissue that reflects the respective DMECM harvest site. The implantation of these constructs leads to the regeneration of meniscus tissue resembling the native meniscus, demonstrating inner cartilaginous and outer fibrous characteristics as well as recovery of native meniscal microarchitecture in a porcine partial meniscectomy model at 6 months. In all, the findings offer a potential regenerative therapy for DMTs that may improve current partial meniscectomy‐based patient care.

Publisher

Wiley

Subject

Pharmaceutical Science,Biomedical Engineering,Biomaterials

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