Direct Chemical Reprogramming of Human Fibroblasts into Retinal Progenitor-like Cells for Ocular Delivery

  • J Funct Biomater. 2026 May 8;17(5):236. doi: 10.3390/jfb17050236.
Yueh-Chang Lee  1  2  3 Pei-Lun Lai  3  4 Chien-Ying Lai  3 Fang-Ling Chang  2 Shang-Yen Wu  2 Po-Yu Lin  3 Chi-Hsuan Chuang  3 Yu-Xin Chou  3 Zhao-Feng Chen  3 Yu-Cheng Wu  3 Chih-Lun Cheng  3 Hsuan Lin  3  5 Chi-Hou Ng  3  6 Shang-Chih Yang  3 Jean Lu  1  3  4 Rong-Kung Tsai  1  7  8
Affiliations
  • 1. Doctoral Degree Program in Translational Medicine, Tzu Chi University and Academia Sinica, Hualien 970374, Taiwan.
  • 2. Department of Ophthalmology, Hualien Tzu Chi Hospital, Buddhist Tzu Chi Medical Foundation, Hualien 970473, Taiwan.
  • 3. Genomics Research Center, Academia Sinica, Taipei 115201, Taiwan.
  • 4. Biomedical Translation Research Center, Academia Sinica, Taipei 115201, Taiwan.
  • 5. Research Center for Applied Sciences, Academia Sinica, Taipei 115201, Taiwan.
  • 6. Institute of Molecular and Cellular Biology, National Taiwan University, Taipei 106319, Taiwan.
  • 7. Institute of Eye Research, Hualien Tzu Chi Hospital, Buddhist Tzu Chi Medical Foundation, Hualien 970473, Taiwan.
  • 8. Institute of Medical Sciences, Tzu Chi University, Hualien 970374, Taiwan.
Abstract

Direct chemical reprogramming provides a potentially scalable approach for generating retinal lineage-associated cells without genetic manipulation. In this study, human Tenon's capsule fibroblasts were converted into retinal progenitor-like cells using a defined small-molecule cocktail. Retinal lineage-associated features were evaluated by immunofluorescence staining, quantitative reverse-transcription PCR, Western blot analysis, and bulk RNA Sequencing, showing upregulation of neural and retinal markers, including VSX2, and transcriptomic remodeling consistent with transcriptional features associated with neuronal differentiation programs. Functional responsiveness was assessed by glutamate-evoked intracellular calcium imaging, revealing glutamate-responsive intracellular calcium dynamics in induced cells but not in parental fibroblasts. For in vivo assessment, induced cells were delivered via intravitreal transplantation in Wistar rats and subretinal transplantation in Long-Evans rats. One month after transplantation, structural and functional evaluations using optical coherence tomography, electroretinography, and histological analyses showed localized alterations in retinal structure at the subretinal injection site, while no significant differences were observed in scotopic ERG responses under the present experimental conditions. In contrast, fibroblast transplantation showed more prominent structural alterations under similar conditions. Human nuclei-positive signals were detectable in a subset of eyes, exhibiting focal and heterogeneous distribution within retinal regions at the one-month endpoint. Collectively, these suggest the induction of retinal lineage-associated molecular and functional features, with short-term functional tolerability observed in vivo under the present experimental conditions.

Keywords
cell engineering; direct chemical reprogramming; intravitreal transplantation; ocular delivery; retinal progenitor-like cells; subretinal transplantation.
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