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The Immunoregulatory Architecture of the Adult Oral Cavity

Fernandes Matuck, B.; Huynh, K.; Pereira, D.; Zhang, X.; Kunz, M.; Kumar, N.; Easter, Q. T.; Fernandes, A.; Ghodke, A.; Predeus, A.; Szabo, L.; Harnischfeger, N.; Khavandgar, Z.; Beach, M.; Perez, P.; Nilges, B.; Moreno, M.; Ko, K.; Teichmann, S.; Kimple, A.; Pringle, S.; kretzschmar, K.; Warner, B. M.; Sequeira, I.; Liu, J.; Byrd, K. M.

2024-12-02 cell biology
10.1101/2024.12.01.626279 bioRxiv
Show abstract

The immunoregulatory architecture of human oral tissues remains poorly defined despite their central role as barrier interfaces. We present the first integrated single-cell and dual-platform spatial-proteotranscriptomic atlas of oral tissues, profiling >250,000 single-cell transcriptomes and >4 million spatially-resolved cells across 13 niches. Using our AI-enabled AstroSuite (TACIT, Constellation, STARComm, hist2omics), we defined tissue cellular neighborhoods (TCNs) and multicellular interaction modules (MCIMs) in health, revealing peri-epithelial fibroblast-centered hubs enriched for effector cytokines. We harmonized eight fibroblast subtypes (universal, immune, peri-epithelial, peri-vascular, peri-neural, APC-like, stress-responsive, and myofibroblasts) with stress-responsive subtypes partitioning between mucosae (Type I) and glands (Type II). Spatial multiomics mapped receptor-ligand circuits and showed mucosal stress-responsive fibroblasts as immunoregulatory hubs. In chronic periodontitis, niche-aware integration of healthy and diseased datasets revealed rewiring of fibroblast phenotypes and ligand::receptor networks into interdigitated inflammatory and reparative niches. Disease neighborhoods exhibited fragmentation, expansion of MHC-I, MHC-II, and PD-L1 fibroblasts, and predicted spatial engagement with T cells at ectopic lymphoid structures. Drug2Cell analysis highlighted druggable stromal::immune networks. Together, this proteotranscriptomic atlas positions fibroblasts as central architects of structural immunity in human oral tissues and establishes a scalable framework for precision targeting of stromal::immune ecosystems across other barrier organs in health and chronic disease.

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