Combined transient ablation and single-cell RNA-sequencing reveals the development of medullary thymic epithelial cells
Combined transient ablation and single-cell RNA-sequencing reveals the development of medullary thymic epithelial cells
Medullary thymic epithelial cells (mTECs) play a critical role in central immune tolerance by mediating negative selection of autoreactive T cells through the collective expression of the peripheral self-antigen compartment, including tissue-specific antigens (TSAs). Recent work has shown that gene-expression patterns within the mTEC compartment are heterogenous and include multiple differentiated cell states. To further define mTEC development and medullary epithelial lineage relationships, we combined lineage tracing and recovery from transient in vivo mTEC ablation with single-cell RNA-sequencing in Mus musculus. The combination of bioinformatic and experimental approaches revealed a non-stem transit-amplifying population of cycling mTECs that preceded Aire expression. We propose a branching model of mTEC development wherein a heterogeneous pool of transit-amplifying cells gives rise to Aire- and Ccl21a-expressing mTEC subsets. We further use experimental techniques to show that within the Aire-expressing developmental branch, TSA expression peaked as Aire expression decreased, implying Aire expression must be established before TSA expression can occur. Collectively, these data provide a roadmap of mTEC development and demonstrate the power of combinatorial approaches leveraging both in vivo models and high-dimensional datasets.
- Department of Genetics Stanford University School of Medicine United States
- Stanford University United States
- European Molecular Biology Laboratory Germany
- European Bioinformatics Institute United Kingdom
- Stanford University School of Medicine United States
QH301-705.5, 1.1 Normal biological development and functioning, Science, 610, Thymus Gland, Inbred C57BL, immunology, Mice, Underpinning research, 616, genomics, Animals, genetics, Cell Lineage, Biology (General), mouse, Sequence Analysis, RNA, Q, medullary thymic epithelial cell, R, Genetics and Genomics, Cell Differentiation, Epithelial Cells, Stem Cell Research, Mice, Mutant Strains, Mutant Strains, Mice, Inbred C57BL, immune system, inflammation, RNA, Medicine, Stem Cell Research - Nonembryonic - Non-Human, Biochemistry and Cell Biology, Single-Cell Analysis, single-cell transcriptomics, Sequence Analysis
QH301-705.5, 1.1 Normal biological development and functioning, Science, 610, Thymus Gland, Inbred C57BL, immunology, Mice, Underpinning research, 616, genomics, Animals, genetics, Cell Lineage, Biology (General), mouse, Sequence Analysis, RNA, Q, medullary thymic epithelial cell, R, Genetics and Genomics, Cell Differentiation, Epithelial Cells, Stem Cell Research, Mice, Mutant Strains, Mutant Strains, Mice, Inbred C57BL, immune system, inflammation, RNA, Medicine, Stem Cell Research - Nonembryonic - Non-Human, Biochemistry and Cell Biology, Single-Cell Analysis, single-cell transcriptomics, Sequence Analysis
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