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Morys, J.

Publications and source records attributed to Morys, J..

3 recordsLinked to original sources

Non-Canonical Heme Oxygenase-1 Function in Hematopoietic Stem Cell Homeostasis and Aging

Heme oxygenase-1 (HO-1, encoded by Hmox1) is a cytoprotective enzyme with well-established roles in defending against oxidative stress. Global Hmox1 deficiency in mice accelerates hematopoietic stem cell (HSC) exhaustion and aging, effects previously attributed primarily to loss of HO-1 activity within the bone marrow (BM) niche. However, the cell-intrinsic contribution of HO-1 to HSC regulation has remained unclear. Here, we show that global Hmox1 deficiency results in accumulation of an expanded but largely quiescent HSC pool characterized by compromised genome maintenance, altered apoptotic signaling, and defective cell-cycle checkpoint control. We further demonstrate that HO-1 protein is expressed in HSCs and exhibits a predominantly nuclear, non-canonical localization. Using Hoxb5-CreERT2-mediated conditional deletion of Hmox1 in HSCs, we uncover an intrinsic requirement for HO-1 in controlling early hematopoietic differentiation. HSC-specific loss of HO-1 skews stem cell output toward short-term progenitors and increases colony-forming capacity. Transcriptomic profiling of Hmox1fl/fl;Hoxb5-CreERT2 HSCs revealed broad dysregulation of pathways involved in translation and RNA metabolism, together with aberrant expression of key transcription factors controlling hematopoietic differentiation. Collectively, these findings identify a non-canonical, cell-intrinsic role for HO-1 in regulating HSC homeostasis, differentiation, and aging.

cell biology↗

Watch-breaker: establishment of a microwell array-based miniaturized thymic organoid model suitable for high throughput applications.

T-cell development depends critically on the thymic stroma, in particular the diverse array of functionally distinct thymic epithelial cell (TEC) types. However, a robust in vitro thymus model mimicking the native thymus and compatible with medium/high-throughput analyses is currently lacking. Here, we demonstrate a novel high-density microwell array-based miniaturized thymus organoid (mTO) model, that supports T-cell commitment and development, possesses key organizational characteristics of the native thymus and is compatible with live-imaging and medium/high-throughput applications. We establish the minimum cellular input required for functional mTO and show that mTO TEC phenotype and complexity closely mirrors the native thymus. Finally, we use mTO to probe the role of fetal thymic mesenchyme, revealing a requirement beyond maintenance of Foxn1 in differentiation/maintenance of mature TEC subpopulations. Collectively, mTO present a new in vitro model of the native thymus adaptable to medium/high-throughput applications and validated for exploration of thymus- and thymus organoid-biology.

immunology↗

Thymic epithelial cell fate and potency in early organogenesis assessed by single cell transcriptional and functional analysis.

During development, cortical (c) and medullary (m) thymic epithelial cells (TEC) arise from the third pharyngeal pouch endoderm. Current models suggest that within the thymic primordium most TEC exist in a bipotent/common thymic epithelial progenitor cell (TEPC) state able to generate both cTEC and mTEC, at least until embryonic day 12.5 (E12.5) in the mouse. This view, however, is challenged by recent transcriptomics and genetic evidence. We therefore set out to investigate the fate and potency of TEC in the early thymus. Here using single cell (sc) RNAseq we identify a candidate mTEC progenitor population at E12.5, consistent with recent reports. Via lineage-tracing we demonstrate this population as mTEC fate-restricted, validating our bioinformatics prediction. Using potency analyses we also establish that most E11.5 and E12.5 progenitor TEC are cTEC- fated. Finally we show that overnight culture causes most if not all E12.5 cTEC-fated TEPC to acquire functional bipotency, and provide a likely molecular mechanism for this changed differentiation potential. Collectively, our data overturn the widely held view that a common TEPC predominates in the E12.5 thymus, showing instead that sublineage-primed progenitors are present from the earliest stages of thymus organogenesis but that these early fetal TEPC exhibit cell-fate plasticity in response to extrinsic factors. Our data provide a significant advance in the understanding of fetal thymic epithelial development and thus have implications for thymus-related clinical research, in particular research focussed on generating TEC from pluripotent stem cells.

developmental biology↗