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A spatial multi-omics atlas of the human lung reveals a novel immune cell survival niche

Madissoon, E.; Oliver, A. J.; Kleshchevnikov, V.; Wilbrey-Clark, A.; Polanski, K.; Ribeiro Orsi, A. E.; Mamanova, L.; Bolt, L.; Pett, J. P.; Huang, N.; Elmentaite, R.; Richoz, N.; He, P.; Dabrowska, M.; Tuck, E.; Prigmore, E.; Knights, A.; Oszlanczi, A.; Hunter, A.; Pritchard, S.; Vieira, S. F.; Patel, M.; Mahbubani, K.; Georgakopoulos, N.; Clatworthy, M.; Stegle, O.; Bayraktar, O. A.; Saeb-Parsy, K.; Kumasaka, N.; Teichmann, S. A.; Meyer, K. B.

2021-11-27 cell biology
10.1101/2021.11.26.470108 bioRxiv
Show abstract

Multiple distinct cell types of the human lung and airways have been defined by single cell RNA sequencing (scRNAseq). Here we present a multi-omics spatial lung atlas to define novel cell types which we map back into the macro- and micro-anatomical tissue context to define functional tissue microenvironments. Firstly, we have generated single cell and nuclei RNA sequencing, VDJ-sequencing and Visium Spatial Transcriptomics data sets from 5 different locations of the human lung and airways. Secondly, we define additional cell types/states, as well as spatially map novel and known human airway cell types, such as adult lung chondrocytes, submucosal gland (SMG) duct cells, distinct pericyte and smooth muscle subtypes, immune-recruiting fibroblasts, peribronchial and perichondrial fibroblasts, peripheral nerve associated fibroblasts and Schwann cells. Finally, we define a survival niche for IgA-secreting plasma cells at the SMG, comprising the newly defined epithelial SMG-Duct cells, and B and T lineage immune cells. Using our transcriptomic data for cell-cell interaction analysis, we propose a signalling circuit that establishes and supports this niche. Overall, we provide a transcriptional and spatial lung atlas with multiple novel cell types that allows for the study of specific tissue microenvironments such as the newly defined gland-associated lymphoid niche (GALN).

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