Longitudinal single cell transcriptomics reveals Krt8+ alveolar epithelial progenitors in lung regeneration
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Fabian J Theis | Zhongming Zhao | L. Simon | J. Behr | R. Schneider | H. Schiller | M. O’Reilly | Arunima Sengupta | H. Chapman | T. Stoeger | Jaymin J. Kathiriya | P. Ogar | M. Ansari | I. Angelidis | M. Strunz | J. Neumann | C. Mayr | M. Lehmann | Min Yee | I. Kukhtevich | G. Burgstaller | L. F. Mattner | Carola Voss | M. Koenigshoff | J. Kathiriya | C. Voss | Zhongming Zhao
[1] Martin J. Aryee,et al. Lineage Tracing in Humans Enabled by Mitochondrial Mutations and Single-Cell Genomics , 2019, Cell.
[2] A. Regev,et al. Spatial reconstruction of single-cell gene expression , 2015, Nature Biotechnology.
[3] Roland Eils,et al. The Human Cell Atlas White Paper , 2018, 1810.05192.
[4] K. L. de Mesy Bentley,et al. Alternative Progenitor Lineages Regenerate the Adult Lung Depleted of Alveolar Epithelial Type 2 Cells , 2017, American journal of respiratory cell and molecular biology.
[5] Matthew J. Vincent,et al. p63+Krt5+ distal airway stem cells are essential for lung regeneration , 2014, Nature.
[6] James T. Webber,et al. Single-cell transcriptomics of 20 mouse organs creates a Tabula Muris , 2018, Nature.
[7] H. Akiyama,et al. The development and plasticity of alveolar type 1 cells , 2016, Development.
[8] T. Desai,et al. Keeping it together: Pulmonary alveoli are maintained by a hierarchy of cellular programs , 2015, BioEssays : news and reviews in molecular, cellular and developmental biology.
[9] J. Whitsett,et al. C/EBPα is required for lung maturation at birth , 2006 .
[10] J. Egen,et al. TAZ is required for lung alveolar epithelial cell differentiation after injury. , 2019, JCI insight.
[11] Fabian J Theis,et al. Diffusion pseudotime robustly reconstructs lineage branching , 2016, Nature Methods.
[12] Paul J. Hoffman,et al. Comprehensive Integration of Single-Cell Data , 2018, Cell.
[13] Lai Guan Ng,et al. Dimensionality reduction for visualizing single-cell data using UMAP , 2018, Nature Biotechnology.
[14] An atlas of the aging lung mapped by single cell transcriptomics and deep tissue proteomics , 2018 .
[15] Allon M. Klein,et al. A single cell atlas of the tracheal epithelium reveals the CFTR-rich pulmonary ionocyte , 2018, Nature.
[16] Cole Trapnell,et al. The dynamics and regulators of cell fate decisions are revealed by pseudotemporal ordering of single cells , 2014, Nature Biotechnology.
[17] Jan Hasenauer,et al. Inferring population dynamics from single-cell RNA-sequencing time series data , 2019, Nature Biotechnology.
[18] M. Lindner,et al. Preclinical validation and imaging of Wnt-induced repair in human 3D lung tissue cultures , 2015, European Respiratory Journal.
[19] Kerstin B. Meyer,et al. Single-cell reconstruction of the early maternal–fetal interface in humans , 2018, Nature.
[20] Elizabeth A. Calle,et al. Repair and regeneration of the respiratory system: complexity, plasticity, and mechanisms of lung stem cell function. , 2014, Cell stem cell.
[21] Principal Investigators,et al. Single-cell transcriptomics of 20 mouse organs creates a Tabula Muris , 2018 .
[22] D. Barber,et al. Cell fate decisions: emerging roles for metabolic signals and cell morphology , 2017, EMBO reports.
[23] P. Rigollet,et al. Optimal-Transport Analysis of Single-Cell Gene Expression Identifies Developmental Trajectories in Reprogramming , 2019, Cell.
[24] B. Hogan,et al. IL-1 and TNFα Contribute to the Inflammatory Niche to Enhance Alveolar Regeneration , 2019, Stem cell reports.
[25] Aviv Regev,et al. A revised airway epithelial hierarchy includes CFTR-expressing ionocytes , 2018, Nature.
[26] Hans Clevers,et al. Plasticity within stem cell hierarchies in mammalian epithelia. , 2015, Trends in cell biology.
[27] M. Lu,et al. Hedgehog actively maintains adult lung quiescence and regulates repair and regeneration , 2015, Nature.
[28] Jeffrey A Whitsett,et al. GATA6 regulates differentiation of distal lung epithelium. , 2002, Development.
[29] Samriddha Ray,et al. Single cell RNA analysis identifies cellular heterogeneity and adaptive responses of the lung at birth , 2019, Nature Communications.
[30] Matthew E. Ritchie,et al. limma powers differential expression analyses for RNA-sequencing and microarray studies , 2015, Nucleic acids research.
[31] W. Seeger,et al. Two-Way Conversion between Lipogenic and Myogenic Fibroblastic Phenotypes Marks the Progression and Resolution of Lung Fibrosis. , 2017, Cell stem cell.
[32] Alyssa J. Miller,et al. Single cell RNA sequencing identifies TGFβ as a key regenerative cue following LPS-induced lung injury. , 2019, JCI insight.
[33] S. Orkin,et al. Mapping the Mouse Cell Atlas by Microwell-Seq , 2018, Cell.
[34] Jürgen Cox,et al. 1D and 2D annotation enrichment: a statistical method integrating quantitative proteomics with complementary high-throughput data , 2012, BMC Bioinformatics.
[35] T. Golub,et al. Respiratory Failure Due to Differentiation Arrest and Expansion of Alveolar Cells following Lung-Specific Loss of the Transcription Factor C/EBPα in Mice , 2006, Molecular and Cellular Biology.
[36] C. Smith,et al. A novel TNF receptor family member binds TWEAK and is implicated in angiogenesis. , 2001, Immunity.
[37] E. Morrisey,et al. Lung development: orchestrating the generation and regeneration of a complex organ , 2014, Development.
[38] M. O’Reilly,et al. Neonatal hyperoxia enhances the inflammatory response in adult mice infected with influenza A virus. , 2008, American journal of respiratory and critical care medicine.
[39] M. Lu,et al. Foxp2 and Foxp1 cooperatively regulate lung and esophagus development , 2007, Development.
[40] Thomas R. Gingeras,et al. STAR: ultrafast universal RNA-seq aligner , 2013, Bioinform..
[41] Purushothama Rao Tata,et al. Plasticity in the lung: making and breaking cell identity , 2017, Development.
[42] Fabian J Theis,et al. SCANPY: large-scale single-cell gene expression data analysis , 2018, Genome Biology.
[43] Kerstin B. Meyer,et al. Fast Batch Alignment of Single Cell Transcriptomes Unifies Multiple Mouse Cell Atlases into an Integrated Landscape , 2018, bioRxiv.
[44] Yvan Saeys,et al. A comparison of single-cell trajectory inference methods , 2019, Nature Biotechnology.
[45] P. Minoo,et al. Inhibition of distal lung morphogenesis in Nkx2.1(−/−) embryos , 2000, Developmental dynamics : an official publication of the American Association of Anatomists.
[46] Michael J. Cronce,et al. Type 2 alveolar cells are stem cells in adult lung. , 2013, The Journal of clinical investigation.
[47] T. Wynn,et al. Type 2 immunity in tissue repair and fibrosis , 2017, Nature Reviews Immunology.
[48] J. Whitsett,et al. C/EBPalpha is required for lung maturation at birth. , 2006, Development.
[49] L. Didon,et al. Airway epithelial cell differentiation during lung organogenesis requires C/EBPα and C/EBPβ , 2012, Developmental dynamics : an official publication of the American Association of Anatomists.
[50] Fabian J. Theis,et al. PAGA: graph abstraction reconciles clustering with trajectory inference through a topology preserving map of single cells , 2017, Genome Biology.
[51] E. Morrisey,et al. Regeneration of the lung alveolus by an evolutionarily conserved epithelial progenitor , 2018, Nature.
[52] Evan Z. Macosko,et al. Highly Parallel Genome-wide Expression Profiling of Individual Cells Using Nanoliter Droplets , 2015, Cell.
[53] P. S. Klein,et al. β-Catenin/Tcf-regulated transcription prior to the midblastula transition , 2002, Development.
[54] Benjamin D. Medoff,et al. Dedifferentiation of committed epithelial cells into stem cells in vivo , 2013, Nature.
[55] M. O’Reilly,et al. Neonatal hyperoxia alters the host response to influenza A virus infection in adult mice through multiple pathways. , 2013, American journal of physiology. Lung cellular and molecular physiology.
[56] Piero Carninci,et al. A draft network of ligand–receptor-mediated multicellular signalling in human , 2015, Nature Communications.
[57] Atul J. Butte,et al. Reference-based analysis of lung single-cell sequencing reveals a transitional profibrotic macrophage , 2018, Nature Immunology.
[58] S. Kummerfeld,et al. Transcription factor Etv5 is essential for the maintenance of alveolar type II cells , 2017, Proceedings of the National Academy of Sciences.
[59] N. Neff,et al. Reconstructing lineage hierarchies of the distal lung epithelium using single cell RNA-seq , 2014, Nature.
[60] J. Villadangos,et al. The Protease Inhibitor Cystatin C Is Differentially Expressed among Dendritic Cell Populations, but Does Not Control Antigen Presentation 1 , 2003, The Journal of Immunology.
[61] Jianming Xu,et al. Local lung hypoxia determines epithelial fate decisions during alveolar regeneration , 2017, Nature Cell Biology.
[62] Erik Sundström,et al. RNA velocity of single cells , 2018, Nature.
[63] T. Mariani,et al. The Oxygen Environment at Birth Specifies the Population of Alveolar Epithelial Stem Cells in the Adult Lung , 2016, Stem cells.
[64] Monika S. Kowalczyk,et al. Single-cell RNA-seq reveals changes in cell cycle and differentiation programs upon aging of hematopoietic stem cells , 2015, Genome research.
[65] B. Stripp,et al. Single-cell RNA sequencing identifies diverse roles of epithelial cells in idiopathic pulmonary fibrosis. , 2016, JCI insight.
[66] J. Milošević,et al. Enolase 1 (ENO1) and protein disulfide-isomerase associated 3 (PDIA3) regulate Wnt/β-catenin-driven trans-differentiation of murine alveolar epithelial cells , 2015, Disease Models & Mechanisms.
[67] Haley O. Tucker,et al. Foxp transcription factors suppress a non-pulmonary gene expression program to permit proper lung development. , 2016, Developmental biology.
[68] Fabian J. Theis,et al. Concepts and limitations for learning developmental trajectories from single cell genomics , 2019, Development.
[69] Oliver Eickelberg,et al. Time- and compartment-resolved proteome profiling of the extracellular niche in lung injury and repair , 2015 .
[70] Jonathan S. Packer,et al. A lineage-resolved molecular atlas of C. elegans embryogenesis at single-cell resolution , 2019, Science.
[71] M. Lindner,et al. Distinct niches within the extracellular matrix dictate fibroblast function in (cell free) 3D lung tissue cultures. , 2018, American journal of physiology. Lung cellular and molecular physiology.
[72] Johannes E. Schindelin,et al. Fiji: an open-source platform for biological-image analysis , 2012, Nature Methods.
[73] W. Seeger,et al. Two-Way Conversion between Lipogenic and Myogenic Fibroblastic Phenotypes Marks the Progression and Resolution of Lung Fibrosis. , 2017, Cell stem cell.
[74] Fabian J Theis,et al. PAGA: graph abstraction reconciles clustering with trajectory inference through a topology preserving map of single cells , 2019, Genome Biology.
[75] Charity W. Law,et al. voom: precision weights unlock linear model analysis tools for RNA-seq read counts , 2014, Genome Biology.
[76] D. Nguyen,et al. Control of alveolar differentiation by the lineage transcription factors GATA6 and HOPX inhibits lung adenocarcinoma metastasis. , 2013, Cancer cell.
[77] Matthew D. Young,et al. SoupX removes ambient RNA contamination from droplet-based single-cell RNA sequencing data , 2018, bioRxiv.
[78] Shengshou Hu,et al. Lung regeneration by multipotent stem cells residing at the bronchioalveolar-duct junction , 2019, Nature Genetics.
[79] Monther Alhamdoosh,et al. RNA-seq analysis is easy as 1-2-3 with limma, Glimma and edgeR. , 2016, F1000Research.
[80] B. Hinz,et al. Cadherin-11–mediated adhesion of macrophages to myofibroblasts establishes a profibrotic niche of active TGF-β , 2019, Science Signaling.
[81] E. Morrisey,et al. Yap/Taz regulate alveolar regeneration and resolution of lung inflammation. , 2019, The Journal of clinical investigation.
[82] A. Shilatifard,et al. Monocyte-derived alveolar macrophages drive lung fibrosis and persist in the lung over the life span , 2017, The Journal of experimental medicine.
[83] M. Krasnow,et al. Single-cell Wnt signaling niches maintain stemness of alveolar type 2 cells , 2018, Science.
[84] Piotr J. Balwierz,et al. Sox4 is a master regulator of epithelial-mesenchymal transition by controlling Ezh2 expression and epigenetic reprogramming. , 2013, Cancer cell.
[85] Mark R. Looney,et al. Lineage-negative Progenitors Mobilize to Regenerate Lung Epithelium after Major Injury , 2014, Nature.
[86] Fabian J. Theis,et al. The Human Lung Cell Atlas - A high-resolution reference map of the human lung in health and disease. , 2019, American journal of respiratory cell and molecular biology.
[87] Mohammad Lotfollahi,et al. Generative modeling and latent space arithmetics predict single-cell perturbation response across cell types, studies and species , 2018, bioRxiv.