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Induced pluripotent stem cell reprogramming: methodological evolution and challenges in clinical translation

Aug 2026 · Frontiers in Cell and Developmental Biology · 0 citations · 149 references

TL;DR

This review summarizes the trajectory of iPSC reprogramming technologies and identifies the core “translational triltrilas”, namely, the inherent tradeoffs between security, homogeneity, and scalability, and proposes a comprehensive strategy to overcome these bottlenecks.

Abstract

Cell reprogramming can transform somatic cells into induced pluripotent stem cells providing a platform for patient-specific disease modeling, drug screening and regenerative medicine research. Since the advent of OKSM-mediated reprogramming, the system of technical approaches has evolved continuously - from integrated viral vectors to non-integrated episomal systems and, more recently, chemical reprogramming and CRISPR approaches. The simultaneous advances in single-cell multi-omics, biomaterials engineering, and artificial intelligence have further refined the controllability and precision of the reprogramming process. Despite these innovations, problems persist that hinder clinical translation: incomplete epigenetic resetting, ongoing clonal heterogeneity, genomic instability in long-term culture, and the lack of standardized Good Manufacturing Practice protocols for large-scale manufacturing. This review summarizes the trajectory of iPSC reprogramming technologies, with special emphasis on the translational applicability of each modality. We evaluated viral and nonviral delivery systems, chemical reprogramming, strategies that aid gene editing, and emerging engineering platforms, including microfluidics, smart biomaterials, and artificial-intelligence-driven process optimization. We further identify the core “translational triltrilas”, namely, the inherent tradeoffs between security, homogeneity, and scalability, and propose a comprehensive strategy to overcome these bottlenecks. By linking basic mechanistic understandings with industrial and regulatory considerations, this review aims to provide a route for transitioning iPSC technology from a laboratory tool to a clinically viable manufacturing platform.

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RNA therapies hold tremendous promise for treating genetic eye diseases. However, their development is limited by the lack of non-viral delivery platforms that can target specific ocular cell types. Here, we describe a charge-altering releasable transporter (CART) that delivers RNA selectively to the corneal endothelium, a non-regenerative cell layer whose dysfunction underlies several blinding conditions. We characterize the safety of CART-RNA nanoparticles in mice and show that they facilitate delivery of diverse RNA cargoes to the corneal endothelium, including circular RNA and CRISPR/Cas9. We verify that these nanoparticles can be redosed and apply them to achieve corneal gene editing. We further demonstrate CART transfection of corneal endothelial cells from a human donor in vitro and in a non-human primate in vivo, supporting the feasibility of clinical translation. Our findings establish CARTs as a platform for non-viral gene delivery to the eye, with the potential to treat corneal dystrophies and other vision disorders.

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