4.8 Article

Comparative evaluation of isogenic mesodermal and ectomesodermal chondrocytes from human iPSCs for cartilage regeneration

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SCIENCE ADVANCES
卷 7, 期 21, 页码 -

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AMER ASSOC ADVANCEMENT SCIENCE
DOI: 10.1126/sciadv.abf0907

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资金

  1. National Institute of Arthritis and Musculoskeletal and Skin Diseases of the NIH [R01 AR064803, NS103844]
  2. NIH Biotechnology Training grant [T32 GM008349]
  3. NIH National Institute on Aging [T32 AG000213-26]
  4. University of Wisconsin-Madison Institute of Clinical and Translational Research [CTS UL1TR000427, CTS TL1TR000429]
  5. UW Department of Pathology and Laboratory Medicine
  6. UWCCC [P30 CA014520]
  7. NIH [1S10OD023676-01]
  8. National Science Foundation [DMR-1720415]

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Chondrocytes derived from pluripotent stem cells through mesodermal and ectomesodermal differentiation show differences in activities and functions, with NCC-Chs being closer to native chondrocytes and exhibiting increased matrix production and stiffness compared to MC-Chs.
Generating phenotypic chondrocytes from pluripotent stem cells is of great interest in the field of cartilage regeneration. In this study, we differentiated human induced pluripotent stem cells into the mesodermal and ectomesodermal lineages to prepare isogenic mesodermal cell-derived chondrocytes (MC-Chs) and neural crest cell-derived chondrocytes (NCC-Chs), respectively, for comparative evaluation. Our results showed that both MC-Chs and NCC-Chs expressed hyaline cartilage-associated markers and were capable of generating hyaline cartilage-like tissue ectopically and at joint defects. Moreover, NCC-Chs revealed closer morphological and transcriptional similarities to native articular chondrocytes than MC-Chs. NCC-Ch implants induced by our growth factor mixture demonstrated increased matrix production and stiffness compared to MC-Ch implants. Our findings address how chondrocytes derived from pluripotent stem cells through mesodermal and ectomesodermal differentiation are different in activities and functions, providing the crucial information that helps make appropriate cell choices for effective regeneration of articular cartilage.

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