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Updated: Jun 26, 2026

Generation of Retinal Organoids from Healthy and Retinal Disease-Specific Human-Induced Pluripotent Stem Cells
Published on: December 9, 2022
Engineering retina from human retinal progenitors (cell lines)
1Department of Pathology, Morehouse School of Medicine, Atlanta, Georgia 30310-1495, USA. kdutt@msm.edu
Abstract:
Retinal degeneration resulting in the loss of photoreceptors is the leading cause of blindness. Several therapeutic protocols are under consideration for treatment of this disease. Tissue replacement is one such strategy currently being explored. However, availability of tissues for transplant poses a major obstacle. Another strategy with great potential is the use of adult stem cells, which could be expanded in culture and then utilized to engineer retinal tissue. In this study, we have explored a spontaneously immortalized human retinal progenitor cell line for its potential in retinal engineering using rotary cultures to generate three-dimensional (3D) structures. Retinal progenitors cultured alone or cocultured with retinal pigment epithelial cells form aggregates. The aggregate size increases between days 1 and 10. The cells grown as a 3D culture rotary system, which promotes cell-cell interaction, retain a spectrum of differentiation capability. Photoreceptor differentiation in these cultures is confirmed by significant upregulation of rhodopsin and AaNat, an enzyme implicated in melatonin synthesis (immunohistochemistry and Western blot analysis). Photoreceptor induction and differentiation is further attested to by the upregulation of rod transcription factor Nrl, Nr(2)e(3), expression of interstitial retinal binding protein, and rhodopsin kinase by reverse transcription-polymerase chain reaction. Differentiation toward other cell lineages is confirmed by the expression of tyrosine hydroxylase in amacrine cells, thy 1.1 expression in ganglion cells and calbindin, and GNB3 expression in cone cells. The capability of retinal progenitors to give rise to several retinal cell types when grown as aggregated cells in rotary culture offers hope that progenitor stem cells under appropriate culture conditions will be valuable to engineer retinal constructs, which could be further tested for their transplant potential. The fidelity with which this multipotential cell line retains its capacity to differentiate into multiple cell types holds great promise for the use of tissue-specific adult stem cells for therapy.
Insights
Human retinal progenitor cells cultured in 3D rotary systems can differentiate into various retinal cell types, offering potential for engineered retinal tissue therapies to combat blindness caused by photoreceptor loss.
Area of Science:
- Ophthalmology
- Stem Cell Biology
- Tissue Engineering
Background:
- Retinal degeneration leads to photoreceptor loss and blindness, necessitating new therapeutic strategies.
- Tissue replacement for retinal repair faces limitations in tissue availability.
- Adult stem cells offer a promising alternative for engineering retinal tissue.
Purpose of the Study:
- To investigate the potential of a human retinal progenitor cell line for retinal engineering.
- To evaluate the use of rotary cultures for generating three-dimensional (3D) retinal structures.
- To assess the differentiation capacity of these progenitors into various retinal cell types.
Main Methods:
- Utilized a spontaneously immortalized human retinal progenitor cell line.
- Employed rotary cultures to generate 3D aggregate structures.
- Analyzed cell differentiation using immunohistochemistry, Western blot, and reverse transcription-polymerase chain reaction.
Main Results:
- Retinal progenitors formed aggregates in rotary culture, increasing in size over 10 days.
- Confirmed photoreceptor differentiation via upregulation of rhodopsin and AaNat.
- Demonstrated differentiation into amacrine (tyrosine hydroxylase), ganglion (thy 1.1), and cone (calbindin, GNB3) cells.
Conclusions:
- 3D rotary culture of retinal progenitors promotes cell-cell interaction and retains differentiation potential.
- This multipotent cell line can generate diverse retinal cell types, showing promise for retinal tissue engineering.
- Engineered retinal constructs from these progenitors may be valuable for future transplantation therapies.

