Abstract

BackgroundDespite increasing demand, current protocols for human pluripotent stem cell (hPSC)-derived retinal pigment epithelium (RPE) remain time, labor, and cost intensive. Additionally, absence of robust methods for selective RPE purification and removal of non-RPE cell impurities prevents upscaling of clinical quality RPE production. We aimed to address these challenges by developing a simplified hPSC-derived RPE production and purification system that yields high-quality RPE monolayers within 90 days.MethodsHuman pluripotent stem cells were differentiated into RPE using an innovative time and cost-effective protocol relying entirely on 2D cultures and minimal use of cytokines. Once RPE identity was obtained, cells were transferred onto permeable membranes to acquire mature RPE morphology. RPE differentiation was verified by electron microscopy, polarized VEGF expression, establishment of high transepithelial electrical resistance and photoreceptor phagocytosis assay. After 4 weeks on permeable membranes, RPE cell cultures were incubated with Dil-AcLDL (DiI-conjugated acetylated low-density lipoproteins) and subjected to fluorescence-activated cell sorting (FACS) for purification and subculture.ResultsUsing our 2D cytokine scarce protocol, hPSC-derived functional RPE cells can be obtained within 2 months. Nevertheless, at this stage, most samples contain a percentage of non-RPE/early RPE progenitor cells that make them unsuitable for clinical application. We demonstrate that functional RPE cells express high levels of lipoprotein receptors and that this correlates with their ability to uptake lipoproteins. Combining photoreceptor uptake assay with lipoprotein uptake assay further confirms that only functional RPE cells uptake AcLDL. Incubation of mixed RPE/non-RPE cell cultures with fluorophore conjugated AcLDL and subsequent FACS-based isolation of labeled cells allows selective purification of mature functional RPE. When subcultured, DiI-AcLDL-labeled cells rapidly form pure homogenous high-quality RPE monolayers.ConclusionsPure functional RPE monolayers can be derived from hPSC within 90 days using simplified 2D cultures in conjunction with our RPE PLUS protocol (RPE Purification by Lipoprotein Uptake-based Sorting). The simplicity of this protocol makes it scalable, and the rapidity of production and purification allows for high-quality RPE to be produced in a short span of time making them ideally suited for downstream clinical and in vitro applications.

Highlights

  • Despite increasing demand, current protocols for human pluripotent stem cell-derived retinal pigment epithelium (RPE) remain time, labor, and cost intensive

  • Human ES or iPS cells can be induced to RPE in simplified 2D culture Once pluripotent cells reach confluence, they are switched from stem cell culture medium to neural induction medium at day 0 of the culture

  • The cells are maintained in the neural induction medium for 7 days with media changed every 3 days. We find that this simple induction technique is sufficient to enable upregulation of the eyefield genes LHX2, PAX6, RAX, and SIX3 and guide the pluripotent stem cells through an early retinal fate in just 5–7 days (Fig. 1b, for raw data point distribution and effect size see Additional file 2: Figure S1)

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Summary

Introduction

Current protocols for human pluripotent stem cell (hPSC)-derived retinal pigment epithelium (RPE) remain time, labor, and cost intensive. Significant progress has been made in the field of cell replacement therapy for AMD using stem cell-derived RPE [4]. Stem cell-derived RPE are valuable as models to study pathogenesis of retinal diseases and assess treatment response in vitro [10,11,12]. This has led to an unprecedented demand, both clinically and in research, for production of high-quality stem cell-derived RPE

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