Evidence that TD-198946 enhances the chondrogenic potential of human synovium-derived stem cells through the NOTCH3 signaling pathway

J Tissue Eng Regen Med. 2021 Feb;15(2):103-115. doi: 10.1002/term.3149. Epub 2020 Nov 18.

Abstract

Human synovium-derived stem cells (hSSCs) are an attractive source of cells for cartilage repair. At present, the quality of tissue and techniques used for cartilage regeneration have scope for improvement. A small compound, TD-198946, was reported to enhance chondrogenic induction from hSSCs; however, other applications of TD-198946, such as priming the cell potential of hSSCs, remain unknown. Our study aimed to examine the effect of TD-198946 pretreatment on hSSCs. HSSCs were cultured with or without TD-198946 for 7 days during expansion culture and then converted into a three-dimensional pellet culture supplemented with bone morphogenetic protein-2 (BMP2) and/or transforming growth factor beta-3 (TGFβ3). Chondrogenesis in cultures was assessed based on the GAG content, histology, and expression levels of chondrogenic marker genes. Cell pellets derived from TD-198946-pretreated hSSCs showed enhanced chondrogenic potential when chondrogenesis was induced by both BMP2 and TGFβ3. Moreover, cartilaginous tissue was efficiently generated from TD-198946-pretreated hSSCs using a combination of BMP2 and TGFβ3. Microarray analysis revealed that NOTCH pathway-related genes and their target genes were significantly upregulated in TD-198946-treated hSSCs, although TD-198946 alone did not upregulate chondrogenesis related markers. The administration of the NOTCH signal inhibitor diminished the effect of TD-198946. Thus, TD-198946 enhances the chondrogenic potential of hSSCs via the NOTCH3 signaling pathway. This study is the first to demonstrate the gradual activation of NOTCH3 signaling during chondrogenesis in hSSCs. The priming of NOTCH3 using TD-198946 provides a novel insight regarding the regulation of the differentiation of hSSCs into chondrocytes.

Keywords: Notch signaling; chemicalcompound; chondrogenesis; human synovium; stem cells.

MeSH terms

  • Adolescent
  • Adult
  • Cells, Cultured
  • Chondrogenesis / drug effects*
  • Female
  • Heterocyclic Compounds, 4 or More Rings / pharmacology*
  • Humans
  • Male
  • Middle Aged
  • Receptor, Notch3 / metabolism*
  • Signal Transduction / drug effects*
  • Stem Cells / cytology
  • Stem Cells / metabolism*
  • Synovial Membrane / cytology
  • Synovial Membrane / metabolism*

Substances

  • Heterocyclic Compounds, 4 or More Rings
  • NOTCH3 protein, human
  • Receptor, Notch3
  • TD-198946