Cho Gun Hee, Bae Hyun Cheol, Cho Won Young, Jeong Eui Man, Park Hee Jung, Yang Ha Ru, Wang Sun Young, Kim You Jung, Shin Dong Myung, Chung Hyung Min, Kim In Gyu, Han Hyuk-Soo
Department of Orthopedic Surgery, College of Medicine, Seoul National University, 101 Daehak-Ro, Jongno-Gu, Seoul, 03080, Republic of Korea.
Department of Orthopedic Surgery, Seoul National University Hospital, Yongondong Chongnogu, Seoul, 110-744, Republic of Korea.
Biomater Res. 2023 May 31;27(1):54. doi: 10.1186/s40824-023-00398-3.
Mesenchymal stem cells (MSCs) are a promising cell source for cartilage regeneration. However, the function of MSC can vary according to cell culture conditions, donor age, and heterogeneity of the MSC population, resulting in unregulated MSC quality control. To overcome these limitations, we previously developed a fluorescent real-time thiol tracer (FreSHtracer) that monitors cellular levels of glutathione (GSH), which are known to be closely associated with stem cell function. In this study, we investigated whether using FreSHtracer could selectively separate high-functioning MSCs based on GSH levels and evaluated the chondrogenic potential of MSCs with high GSH levels to repair cartilage defects in vivo.
Flow cytometry was conducted on FreSHtracer-loaded MSCs to select cells according to their GSH levels. To determine the function of FreSHtracer-isolated MSCs, mRNA expression, migration, and CFU assays were conducted. The MSCs underwent chondrogenic differentiation, followed by analysis of chondrogenic-related gene expression. For in vivo assessment, MSCs with different cellular GSH levels or cell culture densities were injected in a rabbit chondral defect model, followed by histological analysis of cartilage-regenerated defect sites.
FreSHtracer successfully isolated MSCs according to GSH levels. MSCs with high cellular GSH levels showed enhanced MSC function, including stem cell marker mRNA expression, migration, CFU, and oxidant resistance. Regardless of the stem cell tissue source, FreSHtracer selectively isolated MSCs with high GSH levels and high functionality. The in vitro chondrogenic potential was the highest in pellets generated by MSCs with high GSH levels, with increased ECM formation and chondrogenic marker expression. Furthermore, the MSCs' function was dependent on cell culture conditions, with relatively higher cell culture densities resulting in higher GSH levels. In vivo, improved cartilage repair was achieved by articular injection of MSCs with high levels of cellular GSH and MSCs cultured under high-density conditions, as confirmed by Collagen type 2 IHC, Safranin-O staining and O'Driscoll scores showing that more hyaline cartilage was formed on the defects.
FreSHtracer selectively isolates highly functional MSCs that have enhanced in vitro chondrogenesis and in vivo hyaline cartilage regeneration, which can ultimately overcome the current limitations of MSC therapy.
间充质干细胞(MSCs)是软骨再生中一种很有前景的细胞来源。然而,MSCs的功能会因细胞培养条件、供体年龄以及MSCs群体的异质性而有所不同,导致MSCs质量控制缺乏规范。为克服这些局限性,我们之前开发了一种荧光实时硫醇示踪剂(FreSHtracer),它可监测谷胱甘肽(GSH)的细胞水平,而GSH已知与干细胞功能密切相关。在本研究中,我们调查了使用FreSHtracer是否能基于GSH水平选择性分离高功能MSCs,并评估了高GSH水平的MSCs在体内修复软骨缺损的软骨生成潜力。
对加载了FreSHtracer的MSCs进行流式细胞术,以根据其GSH水平选择细胞。为确定经FreSHtracer分离的MSCs的功能,进行了mRNA表达、迁移和集落形成单位(CFU)分析。使MSCs进行软骨分化,随后分析软骨生成相关基因的表达。对于体内评估,将具有不同细胞GSH水平或细胞培养密度的MSCs注射到兔软骨缺损模型中,随后对软骨再生缺损部位进行组织学分析。
FreSHtracer成功地根据GSH水平分离出MSCs。细胞GSH水平高的MSCs表现出增强的MSCs功能,包括干细胞标志物mRNA表达、迁移、CFU和抗氧化能力。无论干细胞组织来源如何,FreSHtracer都能选择性地分离出具有高GSH水平和高功能的MSCs。细胞GSH水平高的MSCs形成的小球体外软骨生成潜力最高,细胞外基质(ECM)形成增加且软骨生成标志物表达增加。此外,MSCs的功能取决于细胞培养条件,相对较高的细胞培养密度会导致更高的GSH水平。在体内,通过关节注射细胞GSH水平高的MSCs以及在高密度条件下培养的MSCs实现了更好的软骨修复,2型胶原免疫组化、番红O染色和奥德里斯科尔评分证实,缺损处形成了更多的透明软骨。
FreSHtracer选择性地分离出具有增强的体外软骨生成和体内透明软骨再生能力的高功能MSCs,这最终可以克服当前MSCs治疗的局限性。