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Bunschuh, S.

Publications and source records attributed to Bunschuh, S..

2 recordsLinked to original sources

Multi-omic profiling of human thymic B cells reveals intrathymic Ig-class switching and differentiation into multiple memory B cell subsets

Primarily recognized as the site for T cell development, the thymus supports a complex interplay between thymic stromal cells and developing thymocytes, which is essential for T cell maturation and the establishment of central tolerance. Emerging evidence indicates that thymic B cells contribute to tolerance induction by functioning as antigen-presenting cells. However, their developmental pathways and functional roles remain poorly understood. Using tissue mass cytometry, we localized B cells in the thymus and their orientation towards other cells in the medulla. We characterized the heterogeneity of thymic B cells using single-cell RNA sequencing of cells isolated from human thymi, identifying naive, germinal center-like, plasma cell, and multiple memory B cell populations. We identified a distinct pre-B cell subset with local thymic B cell development potential, that can develop due to the inhibition of Notch signaling by Deltex1, a Notch antagonist. Using BCR repertoire analysis, we explored clonal diversity, somatic hypermutation patterns and class switch recombination of thymic B cells. Spectral flow cytometry further validated the surface phenotype of thymic B cell populations and confirmed the presence of distinct CD21-CD27- memory compartments with heterogeneous surface immunoglobulin isotype usage. In doing so we provide novel insights into the unique biology of human thymic B cells, their development, and their differentiation in the human thymus. We conclude that the human thymus supports local B cell development and differentiation into medullary memory-like populations that undergo class switching with limited somatic hypermutation, suggesting secondary lymphoid-like B cell programs adapted to central tolerance induction. One Sentence SummaryThe human thymus is not only a primary lymphoid organ for T cell development, but also a secondary site for the development and maturation of unique populations of B cells.

immunology↗

A Light Sensitive Hyaluronic Acid-based Hydrogel for 3D Culturing, Differentiation, and Harvesting of Mesenchymal Stromal Cells

Hydrogels derived from natural sources are commonly used for 3D cell culturing due to their favourable interactions with cells. However, these biomaterials (e.g. Matrigel) suffer from variations in composition, limited mechanical tunability, the presence of xenogenic components and difficulties of cell retrieval. Semi-synthetic hydrogels are emerging to address these limitations, making these attractive for drug delivery and tissue engineering. Here, we describe a hydrogel platform based on hyaluronic acid (HA) modified by (1R,8S,9S)-bicycle[6.1.0]non-4-yn-9-ylmethanol (BCN) and a cross-linker composed of light sensitive o-nitrobenzyl moieties and polyethylene glycol (PEG) chains terminating in azides. The two components can undergo strain-promoted azide-alkyne cycloaddition (SPAAC) resulting in rapid gel formation. The stiffness of the hydrogel can be modulated by varying the crosslinker ratio and multi-functionalizing is possible by the incorporation of chemical cues modified by an azide. The fast hydrogelation enables easy encapsulation of cells and harvesting with preservation of viability is possible be short exposure to UV light. Moreover, it is demonstrated that visible light (405 nm) can soften the hydrogel resulting in phenotypical changes of human Mesenchymal Stromal Cells (hMSCs) co-cultured with endothelial colony-forming cells (ECFCs) with high viability. Our findings highlight that the photosensitive HA-based hydrogel provides a versatile and biocompatible platform for cell culture and tissue engineering applications, offering advantages over traditional 3D cell culturing platforms.

biochemistry↗