Although human induced pluripotent stem cells (hiPSCs) offer promising opportunities for personalized cellular therapies, their clinical application faces major challenges, including tumorigenicity, immunogenicity, and phenotypic and functional heterogeneity1, which impact their safety, efficacy, and cost-effectiveness. Furthermore, lineage-committed progenitors derived from conventional, primed hiPSC lines are generated with highly variable interline differentiation efficiencies2, and exhibit limited in vivo engraftment and functionality. However, such limitations can be overcome using optimized reprogramming methods3 or alternative stem cell states4,5.
Although nonviral episomal reprogramming efficiencies of skin or blood somatic cells into hiPSC are low (~0.01%-2%)6, highly optimized four-factor reprogramming of CB progenitors can be attained and can reach up to 50% bulk efficiencies in mesenchymal stromal stem-progenitor (MSC)-activated co-culture conditions7. In this system, cellular reprogramming of CB myeloid progenitors was accelerated by soluble and contact-dependent stromal signals. Stroma-primed (SP) episomal CB-derived hiPSC lines differentiated into vascular progenitors (VP) with higher efficiencies than conventional fibroblast-derived hiPSC3,5. SP-CB-iPSC-derived VP exhibited more authentic embryonic VP transcriptional identity, reduced senescence, and sensitivity to DNA damage3,4. SP-CB-iPSC-derived VP also demonstrated more robust in vivo engraftment than conventional hiPSC-derived VP following systemic or direct transplantation into the vitreous of retinal ischemia-reperfusion-injured adult immunodeficient mice3,4.
Zimmerlin et al. established a two-step chemical reprogramming system ('LIF-5i -> LIF-3i') that transitions primed, conventional human pluripotent stem cells to a TIRN-SC state with improved multi-lineage differentiation potential5. Differentiated TIRN-SC-derived vascular progenitors exhibited higher functionality, greater genomic stability, and superior in vivo engraftment, as shown by their improved capacity for migrating to and re-vascularizing the deep neural layers of the ischemic retina4. TIRN-SC underwent proteogenomic reprogramming to acquire a functional hybrid blastomere-like state with high contribution in the interspecific chimera assay8. TIRN-SC maintained DNMT1 expression and were protected against erosion at CpG-methylated genomic imprinted regions. Interestingly, SP-CB-hiPSC were reverted into TIRN-SC more efficiently than hiPSC derived via alternative, less efficient methods5,9.
Thus, TIRN-SCs are an alternative stem cell state with improved multi-lineage differentiation capacity and efficient chimera contribution. Further optimization of
TIRN-SC reprogramming in defined, cGMP-compliant culture conditions will facilitate the generation of a broad array of functional, engraftable cell types and tissues for therapies. To address the need for cost-effective therapeutic progenitors, these methods can be applied to produce cGMP-grade banks of 'Universal Donor' TIRN-SC (UTIRN-SC) using HLA-defined CD34+ hematopoietic CB or peripheral blood progenitors. HLA-defined UTIRN-SC-derived progenitors could serve the needs of a larger number of patients requiring immediate, multi-lineage regeneration of complex tissues.
The paradigms developed for clinical bone marrow transplantation (BMT) may guide the development of UTIRN-SC banks from partially HLA-matched, or HLA-haplo-identical hematopoietic stem cells from national donor registries. A predictive, global computational analysis of the combined top 10 haplotypes from 18 countries, including the USA, would provide a mean patient coverage of 68.4% from such hiPSC 'haplobanks'10. A defined UTIRN-SC bank could not only provide lineage-committed progenitors, but also support therapeutic TIRN-SC applications of interspecific blastocyst complementation systems within domestic animals (e.g., pigs) for whole organ generation11,12, including generation of tolerance-inducing hematopoietic progenitors for reducing graft rejection in populations with broad genetic diversity (e.g., USA).
This modified reprogramming protocol for generating TIRN-competent XF/FF hiPSC lines is a first step for developing future cGMP-compliant UTIRN-SC banks. This protocol outlines stepwise stroma-primed reprogramming and functional validation of human CB myeloid progenitors into conventional XF-hiPSC lines. These XF-hiPSC demonstrated facile reversion into TIRN-SC, with efficiency similar to non-XF methods7 and attained unrestricted functional pluripotency, including improved capacity to produce well-formed lineage bias-reduced teratomas (relative to isogenic primed XF-hiPSC)4,5,9. We also outline protocols that validate TIRN-reverted XF-hiPSC for their improved and robust direct differentiation to hematovascular lineages.