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Thoma, O.-M.

Publications and source records attributed to Thoma, O.-M..

2 recordsLinked to original sources

A neuroimmune IL-13 axis is associated with human enteric nervous system development

The mechanisms governing maturation of the human enteric nervous system (ENS) during early postnatal life remain poorly defined. Here, we characterize the transcriptomic, cellular, and functional landscape of the neonatal human ileum and identify a neuro-immune axis associated with ENS expansion. Using human tissue transcriptomics, flow cytometry, iPSC-derived enteric neural lineages, and single-cell interactome analyses, we show that the neonatal ileum is enriched for pro-neurogenic transcriptional programs and harbors a greater abundance of enteric neurons and glia than the adult tissue. T cells emerge as a predominant source of interleukin-13 (IL-13) in the neonatal gut, and enteric neurons express its receptor IL13RA1, enabling direct immune-to-neuron signaling. Functional experiments demonstrate that IL-13 enhances expression of key enteric neuronal markers in a concentration-dependent manner. In parallel, single-cell analyses identify enteric neurons as a major predicted source of macrophage migration inhibitory factor (MIF), with signaling directed toward T and NK cell populations, suggesting that the ENS actively shapes the immune environment it depends upon. Together, these findings support a model in which bidirectional neuro-immune communication establishes a pro-neurogenic niche during a critical window of ENS development. This work positions the neonatal immune system as an active contributor to ENS maturation and offers a new perspective on how neuro-immune crosstalk shapes intestinal development in early life.

neuroscience↗

Glycan Atlassing: Nanoscale analysis of glycocalyx architecture enables functional tracing of cell state

The glycocalyx is a complex layer of glycosylated biomolecules surrounding all cells in the human body. It is involved in the regulation of critical cellular processes such as immune response modulation, cell adhesion, and host-pathogen interactions. Despite these insights, the functional relationship between glycocalyx architecture and cellular state has remained elusive so far, mainly attributable to the structural diversity of glycocalyx constituents and their nanoscale organization. Here, we show that DNA-tagged lectin labeling and metabolic oligosaccharide engineering enables multiplexed super-resolution microscopy of glycocalyx constituents, yielding an atlas of glycocalyx architecture with nanometer resolution. Quantitative analysis of the obtained nanoscale map of glycocalyx constituents facilitates the extraction of characteristic spatial relationships that accurately report on cellular state. We demonstrate the capacity of our approach, which we term Glycan Atlassing, across cell and tissue types, ranging from cultured cell lines to primary immune cells, neurons, and primary patient tissue. Glycan Atlassing establishes a powerful strategy for investigating glycocalyx remodeling in development and disease, potentially enabling the development of new glycocalyx-centered targets in diagnosis and therapy.

biophysics↗