Efficient derivation of transgene-free porcine induced pluripotent stem cells enables in vitro modeling of species-specific developmental timing

Stem Cell Reports. 2023 Dec 12;18(12):2328-2343. doi: 10.1016/j.stemcr.2023.10.009. Epub 2023 Nov 9.

Abstract

Sus scrofa domesticus (pig) has served as a superb large mammalian model for biomedical studies because of its comparable physiology and organ size to humans. The derivation of transgene-free porcine induced pluripotent stem cells (PiPSCs) will, therefore, benefit the development of porcine-specific models for regenerative biology and its medical applications. In the past, this effort has been hampered by a lack of understanding of the signaling milieu that stabilizes the porcine pluripotent state in vitro. Here, we report that transgene-free PiPSCs can be efficiently derived from porcine fibroblasts by episomal vectors along with microRNA-302/367 using optimized protocols tailored for this species. PiPSCs can be differentiated into derivatives representing the primary germ layers in vitro and can form teratomas in immunocompromised mice. Furthermore, the transgene-free PiPSCs preserve intrinsic species-specific developmental timing in culture, known as developmental allochrony. This is demonstrated by establishing a porcine in vitro segmentation clock model that, for the first time, displays a specific periodicity at ∼3.7 h, a timescale recapitulating in vivo porcine somitogenesis. We conclude that the transgene-free PiPSCs can serve as a powerful tool for modeling development and disease and developing transplantation strategies. We also anticipate that they will provide insights into conserved and unique features on the regulations of mammalian pluripotency and developmental timing mechanisms.

Keywords: HES7; Notch signaling; cellular reprogramming; developmental allochrony; segmentation clock; species-specific developmental timing; transgene-free porcine iPSC.

MeSH terms

  • Animals
  • Cell Differentiation
  • Cellular Reprogramming
  • Humans
  • Induced Pluripotent Stem Cells*
  • Mammals
  • Mice
  • Pluripotent Stem Cells*
  • Swine
  • Transgenes