Modeling Human Retinal Development with Patient-specific Induced Pluripotent Stem Cells Reveals Multiple Roles for Visual System Homeobox 2
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Reproductive Medicine
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Human induced pluripotent stem cells (hiPSCs) have been shown to differentiate along the retinal lineage in a manner that mimics normal mammalian development. Under certain culture conditions, hiPSCs form optic vesicle-like structures (OVs), which contain proliferating progenitors capable of yielding all neural retina (NR) cell types over time. Such observations imply conserved roles for regulators of retinogenesis in hiPSC-derived cultures and the developing embryo. However, whether and to what extent this assumption holds true has remained largely uninvestigated. We examined the role of a key NR transcription factor, visual system homeobox 2 (VSX2), using hiPSCs derived from a patient with microphthalmia caused by an R200Q mutation in the VSX2 homeodomain region. No differences were noted between (R200Q)VSX2 and sibling control hiPSCs prior to OV generation. Thereafter, (R200Q)VSX2 hiPSC-OVs displayed a significant growth deficit compared to control hiPSC-OVs, as well as increased production of retinal pigmented epithelium at the expense of NR cell derivatives. Furthermore, (R200Q)VSX2 hiPSC-OVs failed to produce bipolar cells, a distinctive feature previously observed in Vsx2 mutant mice. (R200Q)VSX2 hiPSC-OVs also demonstrated delayed photoreceptor maturation, which could be overcome via exogenous expression of wild-type VSX2 at early stages of retinal differentiation. Finally, RNAseq analysis on isolated hiPSC-OVs implicated key transcription factors and extracellular signaling pathways as potential downstream effectors of VSX2-mediated gene regulation. Our results establish hiPSC-OVs as versatile model systems to study retinal development at stages not previously accessible in humans and support the bona fide nature of hiPSC-OV-derived retinal progeny.
Cerna-Chavez R, Ortega-Gasco A, Azhar Baig H, Ehrenreich N, Metais T, Scandura M Int J Mol Sci. 2025; 26(1.
PMID: 39795970 PMC: 11719581. DOI: 10.3390/ijms26010114.
Rajendran Nair D, Gupta A, Iseri E, Wei T, Phuong Quach L, Seiler M Front Neurosci. 2024; 18:1438903.
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Napoli F, Li X, Hurtado A, Levine E Eye Brain. 2024; 16:115-131.
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Howard L, Ishikawa Y, Katayama T, Park S, Hill M, Blake D Commun Biol. 2024; 7(1):1495.
PMID: 39532995 PMC: 11557866. DOI: 10.1038/s42003-024-07130-4.
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Honnell V, Sweeney S, Norrie J, Parks M, Ramirez C, Jannu A Development. 2024; 151(13).
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