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Biology subjects

Pulido, M.

Publications and source records attributed to Pulido, M..

3 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↗

Unraveling the Phenotype of Dormant Metastases Controlled by the Immune System

During the progression of cancer, metastatic cells frequently enter a dormant phase. The immune system plays a crucial role by restricting the growth of dormant metastases, although it cannot eradicate them. In our laboratory, we developed a preclinical mouse model of metastatic dormancy. Dormant spontaneous metastases are controlled by the immune system of wild-type mice. Depletion of the host immune system causes these metastases to awaken and progress. The elucidation of the phenotype, genes, miRNAs and immune cells involved in the phenomenon of metastatic dormancy may prove in the development of effective strategies for combating metastatic disease. Dormant Metastases are compared with Nude Metastases and Overt Metastases that have never been in dormancy. The findings of the study indicate that the dormant metastases exhibit a unique and differentiated phenotype. This is evidenced by their varied response to nutrient-restrictive conditions, chemotherapeutic agents, and cytokines in vitro. Additionally, dormant metastases display a unique pattern of gene and miRNA expression. The microenvironment of dormant metastases shows an increase in certain immune cell subpopulations. Immune-controlled dormant metastases exhibit a unique phenotype that can be exploited to discover new biomarkers, as well as to develop therapies to eradicate them or control overt metastases.

cancer biology↗

Interferon-gamma and TNF-alpha synergistically enhance the immunomodulatory capacity of Endometrial-Derived Mesenchymal Stromal Cell secretomes by differential microRNA and extracellular vesicle release

Endometrial Mesenchymal Stromal Cells (endMSCs) can be easily isolated from menstrual blood by plastic adherence. These cells have a potent pro-angiogenic and immunomodulatory capacity, and their therapeutic effect is mediated by paracrine mechanisms where secretome have a key role. In this paper, we aimed to evaluate different priming conditions in endMSCs using pro-inflammatory cytokines and Toll-Like Receptor ligands. Our in vitro results revealed a synergistic and additive effect of IFN{gamma} and TNF on endMSCs. The combination of these pro-inflammatory cytokines significantly increased the release of Indoleamine 2,3-dioxygenase (IDO1) in endMSCs. Additionally, this study was focused on the phenotype of IFN{gamma}/TNF-primed endMSCs (endMSCs*). Here we found that immune system-related molecules such as CD49d, CD49e, CD54, CD56, CD58, CD63, CD126, CD152, or CD274 were significantly altered in endMSCs* when compared to control cells. Afterward, our study was completed with the characterization of released miRNAs by Next Generation Sequencing (NGS). Briefly, our system biology approaches demonstrated that endMSCs* showed an increased release of 25 miRNAs whose target genes were involved in immune response and inflammation. Finally, the cellular and molecular characterization was completed with in vitro functional assays. In summary, the relevance of our results lies in the therapeutic potential of endMSCs*. The differences in cell surface molecules involved in migration, adhesion and immunogenicity, allowed us to hypothesize that endMSCs* may have an optimal homing and migration capacity towards inflammatory lesions. Secondly, the analysis of miRNAs, target genes and the subsequent lymphocyte activation assays demonstrated that IFN{gamma}/TNF-primed secretome may exert a potent effect on the regulation of adverse inflammatory reactions.

cell biology↗