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Biology subjects

Sevilla, A.

Publications and source records attributed to Sevilla, A..

2 recordsLinked to original sources

Sustained epigenetic rejuvenation of serially engrafting human iPSC-derived HSCs

Hematopoietic stem cell (HSC) function declines with age, contributing to immunosenescence and inferior transplantation outcomes. Here, we generated iPSC-derived HSCs (iHSCs) from multiple adult donors and performed integrated epigenetic, transcriptional, telomeric, and functional analyses to see if they retain youthful identity across differentiation and serial transplantation. Longitudinal DNA methylation profiling revealed that, independent of donor age, epigenetic age was reset to near zero in iPSCs and remained under seven years across differentiation and transplantation. In contrast, hematopoietic identity was established through a two-phase process: directional remodeling during in vitro differentiation extinguished pluripotency programs and initiated hematopoietic regulatory networks, while long-term engraftment was associated with a second wave of promoter methylation differences that converged toward primary adult HSCs. Notably, methylation at age-associated sites and global entropy remained stable across both phases, and single-cell telomere analysis demonstrated restoration of telomere length in iHSCs compared to primary adult HSCs. Youthful epigenetic features were maintained through secondary transplantation. These findings demonstrate that long-term HSC identity can be achieved independently of epigenetic aging and establish a framework for evaluating rejuvenated stem cell-derived grafts in regenerative medicine.

cell biology↗

Activated NK cells with a predominance of inhibitory receptors and a decidual-like phenotype expand after autologous HSCT in children with tumors.

Early immune reconstitution after autologous hematopoietic stem cell transplantation (autoHSCT) is associated with a better outcome in a variety of cancers. NK cells constitute the first lymphocyte subset to recover in the blood after autoHSCT. We have in-depth characterized them in pediatric patients with different tumors and found that, immediately after autoHSCT, NK cells transiently acquired a decidual-like phenotype, were more immature and activated, and exhibited an increased expression of inhibitory receptors, while activating receptors levels were diminished. This activated and decidual-like phenotype was characterized by increased CD56, CD9, CD49a, CD151, CD38, HLA-DR and CD55 expression. We also determined plasma levels of several cytokines and found that their concentrations were associated with the observed changes in NK cells phenotype. In vitro experiments, including flow cytometry and single-cell RNA sequencing (scRNA-seq), recapitulated the changes observed in NK cells early after autoHSCT. Specifically, results revealed that the combination of IL-15 and TGF-{beta} induced, at least partially, this distinctive phenotype on NK cells after autoHSCT. Finally, we have observed a positive correlation between relapse and the percentage of CD56dim NK cells shortly after autoHSCT in our cohort of pediatric patients. Altogether, our work is of relevance to understand the physiopathology of NK cells during the immune system reconstitution after autoHSCT in children and potentially help in the management of these patients.

immunology↗