Aug 2026· Frontiers in Cell and Developmental Biology· Vol 14· 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.
This review discusses how organoids and OoC-based platforms are being leveraged to study and enhance cell fate reprogramming, repair, and regeneration across multiple tissues and outlines current limitations, including scalability, standardization, and biomaterial constraints.
Hrithiha Sriramulu, Hyunsung Woo, Anavi Kaul et al.· Current Opinion in Genetics...· 1 citation
Evidence that cell-type-specific promoters lose fidelity when paired with neurogenic transgene payloads and that published in vivo reprogramming efficiencies may be substantially confounded by promoter leakage in the absence of formal lineage tracing are synthesized.
Mariam Abdelnaby, A. Galiakberova, E. Dashinimaev· International Journal of Mol...· 0 citations
Key applications of iPSC technology in hemato-oncology are summarized, its major advantages and current limitations are discussed, and emerging directions are highlighted, including scalable iPSC-derived blood cell therapies for inherited and acquired bone marrow failure syndromes and leukemia.
Ivan Tesakov, M. Nasri, M. Klimiankou et al.· Frontiers in Immunology· 0 citations
Recognising the central role of VSELs/progenitors and their niche in maintaining tissue homeostasis in vivo could resolve existing roadblocks and guide more effective endogenous regenerative therapies for diseased tissues and age-related dysfunctions.
D. Bhartiya, N. Sharma, Anish Tripathi et al.· Stem Cell Reviews and Report...· 0 citations
Innovations in pericardial delivery systems and optimized manufacturing protocols now pave the way for future clinical translation of direct cardiac reprogramming strategies, which could redefine heart failure therapy.
Boram Son, Gwang Yeol Park, Ildoo Jeong et al.· Materials Today Bio· 0 citations
The criteria for direct lineage reprogramming, atypical pluripotent reprogramming and noncanonical pluripotent reprogramming are delineated, and novel approaches like bacterial ribosome‐mediated cell fate conversion are explored like bacterial ribosome‐mediated cell fate conversion.
Anamika Datta, K. Ohta· Development, Growth and Diff...· 0 citations