Enhancing reprogramming towards induced human expanded pluripotency through substitution of SOX2 with engineered SOX17 transcription factors

  • Commun Biol. 2026 Apr 9;9(1):780. doi: 10.1038/s42003-026-09963-7.
Haoqing Hu  1  2 Derek Hoi Hang Ho  1  2 Shi Wing Yeung  1  2 Yuebin Tan  1  2 Sik Yin Ho  2  3 Mingxi Weng  2  4 Degong Ruan  1  5 Ralf Jauch  6  7
Affiliations
  • 1. InnoHK Centre for Translational Stem Cell Biology, Hong Kong Science Park, Hong Kong SAR, China.
  • 2. School of Biomedical Sciences, Li Ka Shing Faculty of Medicine, The University of Hong Kong, Hong Kong SAR, China.
  • 3. Laboratory for Primate Embryogenesis, Department of Physiology, Development and Neuroscience, University of Cambridge, Downing Street, Cambridge, UK.
  • 4. Altos Labs, San Diego, CA, 92122, USA.
  • 5. The University of Hong Kong-Shenzhen Hospital Translational Medicine Research Centre, Shenzhen, China.
  • 6. InnoHK Centre for Translational Stem Cell Biology, Hong Kong Science Park, Hong Kong SAR, China. [email protected].
  • 7. School of Biomedical Sciences, Li Ka Shing Faculty of Medicine, The University of Hong Kong, Hong Kong SAR, China. [email protected].
Abstract

Expanded potential stem cells (EPSCs) represent a distinct and developmentally primitive stem cell population characterized by their broad developmental potential, which encompasses both embryonic and extra-embryonic lineages. In this study, we employed a polycistronic cassette to directly reprogram human fibroblasts into induced Expanded Potential Stem Cells (iEPSCs). Substituting SOX2 with engineered SOX17 transcription factors resulted in an approximately five-fold increase in the average yield of iEPSC colonies, while maintaining the molecular and functional integrity of the resulting clonal lines. Notably, under feeder-free conditions, SOX2 occasionally failed to reprogram and yielded inconsistent colony numbers, whereas engineered SOX17 and miniaturized SOX17 reproducibly produced feeder-free iEPSCs. In summary, the use of engineered SOX17 enables efficient and robust reprogramming of human fibroblasts into EPSCs, allowing for modeling of early human pre-implantation development, investigating placental disorders, and expanding the toolkit for drug development with a versatile model of pluripotent stem cells that exhibit broader developmental capabilities.

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