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Ryeom, S.

Publications and source records attributed to Ryeom, S..

3 recordsLinked to original sources

Single-nucleus multiome sequencing identifies candidate regulators of mouse gastric epithelial homeostasis

Background & AimsGastric epithelial cells maintain homeostasis through dynamic self-renewal mechanisms involving stem and progenitor cells; however, identifying them has been challenging. This study aims to identify stem cells of healthy gastric epithelium and cell type-specific regulators defining gastric epithelial homeostasis via single-nucleus multiome analysis. MethodsTen unique gastric samples were collected from 8-12 week old wildtype mice. Isolated nuclei were subjected to simultaneous profiling of gene expression and chromatin accessibility. After quality control, 31,598 cells were analyzed with Seurat and Signac using weighted-nearest neighbors analysis for joint RNA and ATAC clustering. Furthermore, SCENIC+, MultiVelo, EpiCHAOS and Cell plasticity score were used to uncover gene regulatory networks, cell state dynamics and lineage trajectories. ResultsOur analyses were validated by the identification of known regulators of stem-cell differentiation into mature cell types. More importantly, it revealed previously uncharacterized regulatory networks comprising novel transcription factor combinations that define cell identities, including Ppara, Pparg, Arid5b and Sox5 as candidate regulators of parietal, foveolar, chief and neck cells, respectively. Further, our data support the identity of isthmus cells as stem-like cells of healthy gastric epithelium, as evidenced by epigenetic plasticity that simultaneously contains open chromatin states of all differentiated cell types in the absence of transcriptional reprogramming. ConclusionConsistent with Waddingtons epigenetic landscape hypothesis, gastric epithelial homeostasis is controlled by orchestrated epigenetic and transcriptional programs. Contrary to the prevailing hypothesis, stem cells can be defined not by a separate epigenetic state but by epigenetic superposition of differentiated cell states. Future work is needed to define the universality of these results.

genomics↗

Lung endothelial niche signaling governs self-renewal and fate transitions of human alveolar stem cells

Chronic lung diseases such as pulmonary fibrosis are characterized by the irreversible loss of alveolar type 1 (AT1) cells, yet the mechanisms governing human alveolar stem cell self-renewal and differentiation remain poorly defined. Here, we identify a lung endothelial niche that sustains the self-renewal of human alveolar type 2 (AT2) stem cells through MAPK signaling, enabling robust long-term expansion while preserving stem cell fate. Although YAP activation initiates AT1 transcriptional programs, it is insufficient to complete lineage maturation. We show that MAPK inhibition together with LATS inhibition promotes nuclear translocation of YAP, enhancing AT1 differentiation. Expanded human AT2 stem cells engraft in fibrotic lungs and contribute to alveolar regeneration while undergoing directed differentiation within diseased human lung tissue. Together, our findings define a niche-controlled signaling mechanism governing human alveolar stem cell fate and advance our understanding of alveolar regeneration.

cell biology↗

Defining the cellular origin of seminoma by transcriptional and epigenetic mapping to the normal human germline

Aberrant male germline development can lead to the formation of seminoma, a testicular germ cell tumor. Seminomas are biologically similar to primordial germ cells (PGCs) and many bear an isochromosome 12p [i(12p)] with two additional copies of the short arm of chromosome 12. By mapping seminoma transcriptomes and open chromatin landscape onto a normal human male germline trajectory, we find that seminoma resembles premigratory/migratory primordial germ cells, but exhibit enhanced germline and pluripotency programs, and upregulation of genes involved in apoptosis, angiogenesis, and MAPK/ERK pathways. Using pluripotent stem cell-derived PGCs from Pallister Killian syndrome patients mosaic for i(12p) to model seminoma, we identify gene dosage effects that may contribute to transformation. As murine seminoma models do not exist, our analyses provide critical insights into genetic, cellular and signaling programs driving seminoma transformation, and the newly developed in vitro platform permits evaluation of additional signals required for seminoma tumorigenesis.

developmental biology↗