The critical roles and therapeutic implications of tuft cells in cancer
暂无分享,去创建一个
[1] A. Bendesky,et al. Genetic mapping reveals Pou2af2-dependent tuning of tuft cell differentiation and intestinal type 2 immunity , 2022, bioRxiv.
[2] M. Kriegsmann,et al. Tuft cell-like carcinomas: novel cancer subsets present in multiple organs sharing a unique gene expression signature , 2022, British Journal of Cancer.
[3] Hui Huang,et al. Selective regulation of tuft cell-like small cell lung cancer by novel transcriptional co-activators C11orf53 and COLCA2 , 2022, bioRxiv.
[4] Toshiaki Teratani,et al. Heterogeneity of ILC2s in the Intestine; Homeostasis and Pathology , 2022, Frontiers in Immunology.
[5] L. Joshua-Tor,et al. OCA-T1 and OCA-T2 are coactivators of POU2F3 in the tuft cell lineage , 2022, Nature.
[6] S. Novak,et al. New insights into tuft cell formation: Implications for structure-function relationships. , 2022, Current opinion in cell biology.
[7] T. Tomita,et al. Duodenal cholinergic tuft cell number is increased in functional dyspepsia , 2022, Neurogastroenterology and motility : the official journal of the European Gastrointestinal Motility Society.
[8] S. Farrington,et al. Transcriptional dynamics of colorectal cancer risk associated variation at 11q23.1 correlate with tuft cell abundance and marker expression in silico , 2022, bioRxiv.
[9] Kirsty Minton. Bile duct tuft cells regulate immune defences , 2022, Nature Reviews Immunology.
[10] Zibo Zhao,et al. POU2AF2/C11orf53 functions as a coactivator of POU2F3 by maintaining chromatin accessibility and enhancer activity , 2022, bioRxiv.
[11] R. Margolskee,et al. Injury-induced pulmonary tuft cells are heterogenous, arise independent of key Type 2 cytokines, and are dispensable for dysplastic repair , 2022, bioRxiv.
[12] M. Hewicker-Trautwein,et al. Sox9, Hopx, and survivin and tuft cell marker DCLK1 expression in normal canine intestine and in intestinal adenoma and adenocarcinoma , 2022, Veterinary pathology.
[13] R. Locksley,et al. Inhibition of the tuft cell/ILC2 axis reduces gastric tumor development in mice , 2022, bioRxiv.
[14] O. Nielsen,et al. Tuft Cells and Their Role in Intestinal Diseases , 2022, Frontiers in Immunology.
[15] P. Bąska,et al. The Role of the Intestinal Epithelium in the “Weep and Sweep” Response during Gastro—Intestinal Helminth Infections , 2022, Animals : an open access journal from MDPI.
[16] Adam L. Haber,et al. Tuft cell–produced cysteinyl leukotrienes and IL-25 synergistically initiate lung type 2 inflammation , 2021, Science Immunology.
[17] M. Kanda,et al. Comprehensive Genomic Profiling of Neuroendocrine Carcinomas of the Gastrointestinal System , 2021, Cancer discovery.
[18] R. Maizels,et al. Tuft Cells Increase Following Ovine Intestinal Parasite Infections and Define Evolutionarily Conserved and Divergent Responses , 2021, Frontiers in Immunology.
[19] B. Nashan,et al. Diagnostic and Prognostic Significances of SOX9 in Thymic Epithelial Tumor , 2021, Frontiers in Oncology.
[20] P. Sethupathy,et al. Multi-omic analysis defines the first microRNA atlas across all small intestinal epithelial lineages and reveals novel markers of almost all major cell types. , 2021, American journal of physiology. Gastrointestinal and liver physiology.
[21] G. Ott,et al. A tuft cell-like signature is highly prevalent in thymic squamous cell carcinoma and delineates new molecular subsets among the major lung cancer histotypes. , 2021, Journal of thoracic oncology : official publication of the International Association for the Study of Lung Cancer.
[22] Lianfang Zheng,et al. Current epidemiology of pancreatic cancer: Challenges and opportunities , 2020, Chinese journal of cancer research = Chung-kuo yen cheng yen chiu.
[23] Guang Chen,et al. Berberine in the treatment of ulcerative colitis: A possible pathway through Tuft cells. , 2020, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[24] Jun Peng,et al. Tuft and Cancer Stem Cell Marker DCLK1: A New Target to Enhance Anti-Tumor Immunity in the Tumor Microenvironment , 2020, Cancers.
[25] D. Grimm,et al. The role of SOX family members in solid tumours and metastasis. , 2020, Seminars in cancer biology.
[26] Jakob von Moltke,et al. Tuning tuft cells: new ligands and effector functions reveal tissue-specific function. , 2020, Current opinion in immunology.
[27] C. Rudin,et al. Small Cell Lung Carcinoma Subtypes Defined by ASCL1, NEUROD1, POU2F3 and YAP1: Comprehensive Immunohistochemical and Histopathologic Characterization. , 2020, Journal of thoracic oncology : official publication of the International Association for the Study of Lung Cancer.
[28] H. Wen,et al. The Gustatory Sensory G-Protein GNAT3 Suppresses Pancreatic Cancer Progression in Mice , 2020, Cellular and molecular gastroenterology and hepatology.
[29] Elizabeth A. Scoville,et al. Succinate Produced by Intestinal Microbes Promotes Specification of Tuft Cells to Suppress Ileal Inflammation. , 2020, Gastroenterology.
[30] Galina A. Erikson,et al. Tuft Cells Inhibit Pancreatic Tumorigenesis in Mice by Producing Prostaglandin D2. , 2020, Gastroenterology.
[31] Kristopher E Kubow,et al. A cytoskeleton regulator AVIL drives tumorigenesis in glioblastoma , 2020, Nature Communications.
[32] W. Kummer,et al. Advillin is a tuft cell marker in the mouse alimentary tract , 2020, Journal of Molecular Histology.
[33] Ritwika Biswas,et al. Mouse intestinal tuft cells express advillin but not villin , 2020, Scientific Reports.
[34] Charles Y. Lin,et al. Discovery of a selective inhibitor of Doublecortin Like Kinase 1 , 2020, Nature Chemical Biology.
[35] I. Matsumoto,et al. Tuft-Cell-Derived Leukotrienes Drive Rapid Anti-helminth Immunity in the Small Intestine but Are Dispensable for Anti-protist Immunity. , 2020, Immunity.
[36] G. Wahl,et al. Tuft Cell Formation Reflects Epithelial Plasticity in Pancreatic Injury: Implications for Modeling Human Pancreatitis , 2020, Frontiers in Physiology.
[37] Y. Kanaoka,et al. Airway brush cells generate cysteinyl leukotrienes through the ATP sensor P2Y2 , 2020, Science Immunology.
[38] P. Barbry,et al. Using single-cell RNA sequencing to unravel cell lineage relationships in the respiratory tract. , 2020, Biochemical Society transactions.
[39] T. Wang,et al. Prox1-positive cells monitor and sustain the murine intestinal epithelial cholinergic niche , 2020, Nature Communications.
[40] A. Saliba,et al. Tracheal brush cells release acetylcholine in response to bitter tastants for paracrine and autocrine signaling , 2020, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[41] A. van Oudenaarden,et al. Enteroendocrine and tuft cells support Lgr5 stem cells on Paneth cell depletion , 2019, Proceedings of the National Academy of Sciences.
[42] Jana G Hashash,et al. Cross-talk between Colon Cells and Macrophages Increases ST6GALNAC1 and MUC1-sTn Expression in Ulcerative Colitis and Colitis-Associated Colon Cancer , 2019, Cancer Immunology Research.
[43] M. Büchler,et al. Distribution pattern and molecular signature of cholinergic tuft cells in human gastro-intestinal and pancreatic-biliary tract , 2019, Scientific Reports.
[44] R. Locksley,et al. Regulation of immune responses by tuft cells , 2019, Nature Reviews Immunology.
[45] S. Shen,et al. Intestinal dysbacteriosis-induced IL-25 promotes development of HCC via alternative activation of macrophages in tumor microenvironment , 2019, Journal of experimental & clinical cancer research : CR.
[46] H. Seno,et al. Lineage tracing and targeting of IL17RB+ tuft cell-like human colorectal cancer stem cells , 2019, Proceedings of the National Academy of Sciences.
[47] D. Grzanka,et al. The Essential Role of DCLK1 in Pathogenesis, Diagnostic Procedures and Prognostic Stratification of Colorectal Cancer , 2019, AntiCancer Research.
[48] N. Cohen,et al. Development of solitary chemosensory cells in the distal lung after severe influenza injury. , 2019, American journal of physiology. Lung cellular and molecular physiology.
[49] J. Abramson,et al. Tuft cells: From the mucosa to the thymus. , 2019, Immunology letters.
[50] R. Locksley,et al. Tuft Cells-Systemically Dispersed Sensory Epithelia Integrating Immune and Neural Circuitry. , 2019, Annual review of immunology.
[51] Jakob von Moltke,et al. The Immune Function of Tuft Cells at Gut Mucosal Surfaces and Beyond , 2019, The Journal of Immunology.
[52] Ping Wang,et al. Infection by the parasitic helminth Trichinella spiralis activates a Tas2r-mediated signaling pathway in intestinal tuft cells , 2019, Proceedings of the National Academy of Sciences.
[53] C. Houchen,et al. Dclk1 in tuft cells promotes inflammation-driven epithelial restitution and mitigates chronic colitis , 2018, Cell Death & Differentiation.
[54] J. Starmer,et al. Sox4 Promotes Atoh1-Independent Intestinal Secretory Differentiation Toward Tuft and Enteroendocrine Fates. , 2018, Gastroenterology.
[55] R. May,et al. Alternative splice variants of DCLK1 mark cancer stem cells, promote self‐renewal and drug‐resistance, and can be targeted to inhibit tumorigenesis in kidney cancer , 2018, International journal of cancer.
[56] Aviv Regev,et al. A revised airway epithelial hierarchy includes CFTR-expressing ionocytes , 2018, Nature.
[57] T. Wang,et al. The Tuft Cell-ILC2 Circuit Integrates Intestinal Defense and Homeostasis , 2018, Cell.
[58] Eyal David,et al. Single-cell mapping of the thymic stroma identifies IL-25-producing tuft epithelial cells , 2018, Nature.
[59] S. Tavangar,et al. DCLK1 plays an important role in colorectal cancer tumorgenesis through the regulation of miR-200c. , 2018, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[60] P. Turnbaugh,et al. A Metabolite-Triggered Tuft Cell-ILC2 Circuit Drives Small Intestinal Remodeling , 2018, Cell.
[61] D. Spector,et al. POU2F3 is a master regulator of a tuft cell-like variant of small cell lung cancer , 2018, Genes & development.
[62] Allon M. Klein,et al. A single cell atlas of the tracheal epithelium reveals the CFTR-rich pulmonary ionocyte , 2018, Nature.
[63] Mark S. Anderson,et al. Thymic tuft cells promote an IL4-enriched medulla and shape thymocyte development , 2018, Nature.
[64] R. Margolskee,et al. Activation of intestinal tuft cell-expressed Sucnr1 triggers type 2 immunity in the mouse small intestine , 2018, Proceedings of the National Academy of Sciences.
[65] Mark S. Anderson,et al. Detection of succinate by intestinal tuft cells triggers a type 2 innate immune circuit , 2018, bioRxiv.
[66] T. Ogura,et al. ATP and Odor Mixture Activate TRPM5-Expressing Microvillous Cells and Potentially Induce Acetylcholine Release to Enhance Supporting Cell Endocytosis in Mouse Main Olfactory Epithelium , 2018, Front. Cell. Neurosci..
[67] Tatsuya Yamaguchi,et al. Skn-1a/Pou2f3 functions as a master regulator to generate Trpm5-expressing chemosensory cells in mice , 2017, PloS one.
[68] Joseph T. Roland,et al. Unsupervised Trajectory Analysis of Single-Cell RNA-Seq and Imaging Data Reveals Alternative Tuft Cell Origins in the Gut. , 2017, Cell systems.
[69] Yarden Katz,et al. A single-cell survey of the small intestinal epithelium , 2017, Nature.
[70] N. Câmara,et al. Intestinal barrier and gut microbiota: Shaping our immune responses throughout life , 2017, Tissue barriers.
[71] T. Wang,et al. Functional implication of Dclk1 and Dclk1-expressing cells in cancer , 2017, Small GTPases.
[72] Ken S Lau,et al. Optimized multiplex immunofluorescence single-cell analysis reveals tuft cell heterogeneity. , 2017, JCI insight.
[73] D. Bohórquez,et al. The intestinal tuft cell nanostructure in 3D , 2017, Scientific Reports.
[74] R. May,et al. Dclk1, a tumor stem cell marker, regulates pro-survival signaling and self-renewal of intestinal tumor cells , 2017, Molecular Cancer.
[75] H. Tomita,et al. Nerve Growth Factor Promotes Gastric Tumorigenesis through Aberrant Cholinergic Signaling. , 2017, Cancer cell.
[76] Jian Liu,et al. DCLK1 is up-regulated and associated with metastasis and prognosis in colorectal cancer , 2016, Journal of Cancer Research and Clinical Oncology.
[77] R. May,et al. Survival of Patients with Gastrointestinal Cancers Can Be Predicted by a Surrogate microRNA Signature for Cancer Stem-like Cells Marked by DCLK1 Kinase. , 2016, Cancer research.
[78] B. Honig,et al. Dclk1 Defines Quiescent Pancreatic Progenitors that Promote Injury-Induced Regeneration and Tumorigenesis. , 2016, Cell stem cell.
[79] N. Harris. The enigmatic tuft cell in immunity , 2016, Science.
[80] W. Garrett,et al. Tuft cells, taste-chemosensory cells, orchestrate parasite type 2 immunity in the gut , 2016, Science.
[81] S. Arii,et al. Dominant Expression of DCLK1 in Human Pancreatic Cancer Stem Cells Accelerates Tumor Invasion and Metastasis , 2016, PloS one.
[82] Marco Bruschi,et al. Intestinal epithelial tuft cells initiate type 2 mucosal immunity to helminth parasites , 2016, Nature.
[83] R. Locksley,et al. Tuft-cell-derived IL-25 regulates an intestinal ILC2–epithelial response circuit , 2015, Nature.
[84] T. Gudermann,et al. Chemical coding and chemosensory properties of cholinergic brush cells in the mouse gastrointestinal and biliary tract , 2015, Front. Physiol..
[85] Y. Jeng,et al. Targeting IL-17B–IL-17RB signaling with an anti–IL-17RB antibody blocks pancreatic cancer metastasis by silencing multiple chemokines , 2015, The Journal of experimental medicine.
[86] D. McKernan,et al. The intestinal epithelial cell cycle: uncovering its ‘cryptic’ nature , 2015, Current opinion in gastroenterology.
[87] R. May,et al. DCLK1 is a broadly dysregulated target against epithelial-mesenchymal transition, focal adhesion, and stemness in clear cell renal carcinoma , 2014, Oncotarget.
[88] T. Gudermann,et al. Cholinergic epithelial cell with chemosensory traits in murine thymic medulla , 2014, Cell and Tissue Research.
[89] Andreas H. Nuber,et al. Long-lived intestinal tuft cells serve as colon cancer-initiating cells. , 2014, The Journal of clinical investigation.
[90] Tatsuya Yamaguchi,et al. Pou2f3/Skn-1a Is Necessary for the Generation or Differentiation of Solitary Chemosensory Cells in the Anterior Nasal Cavity , 2013, Bioscience, biotechnology, and biochemistry.
[91] R. Kageyama,et al. Dclk1 distinguishes between tumor and normal stem cells in the intestine , 2012, Nature Genetics.
[92] S. Roper,et al. Acetylcholine is released from taste cells, enhancing taste signalling , 2012, The Journal of physiology.
[93] C. Legraverend,et al. The intestinal epithelium tuft cells: specification and function , 2012, Cellular and Molecular Life Sciences.
[94] T. Möröy,et al. Origin of the brush cell lineage in the mouse intestinal epithelium. , 2012, Developmental biology.
[95] J. Merchant,et al. Gastric tuft cells express DCLK1 and are expanded in hyperplasia , 2011, Histochemistry and Cell Biology.
[96] W. Kummer,et al. Cholinergic chemosensory cells in the trachea regulate breathing , 2011, Proceedings of the National Academy of Sciences.
[97] M. Lerner,et al. DCAMKL-1 regulates epithelial-mesenchymal transition in human pancreatic cells through a miR-200a-dependent mechanism. , 2011, Cancer research.
[98] Hans Clevers,et al. Distinct ATOH1 and Neurog3 requirements define tuft cells as a new secretory cell type in the intestinal epithelium , 2011, The Journal of cell biology.
[99] N. Hanley,et al. Understanding the role of SOX9 in acquired diseases: lessons from development. , 2011, Trends in molecular medicine.
[100] R. DuBois,et al. Eicosanoids and cancer , 2010, Nature Reviews Cancer.
[101] Philippe Jay,et al. DCAMKL-1 expression identifies Tuft cells rather than stem cells in the adult mouse intestinal epithelium. , 2009, Gastroenterology.
[102] W. Weiss,et al. Cyclic GMP-dependent protein kinase II inhibits cell proliferation, Sox9 expression and Akt phosphorylation in human glioma cell lines , 2009, Oncogene.
[103] M. Lai,et al. Analysis of SOX9 expression in colorectal cancer. , 2008, American journal of clinical pathology.
[104] H. Clevers,et al. Identification of stem cells in small intestine and colon by marker gene Lgr5 , 2007, Nature.
[105] T. Gudermann,et al. TRPM5, a taste-signaling transient receptor potential ion-channel, is a ubiquitous signaling component in chemosensory cells , 2007, BMC Neuroscience.
[106] H. Zoghbi,et al. Intestine-specific ablation of mouse atonal homolog 1 (Math1) reveals a role in cellular homeostasis. , 2007, Gastroenterology.
[107] J. Park,et al. Acetylcholine-induced proliferation of fibroblasts and myofibroblasts in vitro is inhibited by tiotropium bromide. , 2007, Life sciences.
[108] Miguel A. L. Nicolelis,et al. The neural mechanisms of gustation: a distributed processing code , 2006, Nature Reviews Neuroscience.
[109] J. Crapo,et al. The mysterious pulmonary brush cell: a cell in search of a function. , 2005, American journal of respiratory and critical care medicine.
[110] E. Liman,et al. Intracellular Ca2+ and the phospholipid PIP2 regulate the taste transduction ion channel TRPM5 , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[111] R A Adelizzi,et al. COX-1 and COX-2 in health and disease , 1999, The Journal of the American Osteopathic Association.
[112] H. Breer,et al. Identification of a phospholipase C beta subtype in rat taste cells. , 1998, European journal of cell biology.
[113] D. Kwiatkowski,et al. Advillin (p92): a new member of the gelsolin/villin family of actin regulatory proteins. , 1998, Journal of cell science.
[114] L. Luciano,et al. A new morphological aspect of the brush cells of the mouse gallbladder epithelium , 1979, Cell and Tissue Research.
[115] J. Rhodin. LXVII Ultrastructure of the Tracheal Ciliated Mucosa in Rat and Man , 1959 .
[116] O. Keyriläinen,et al. On the cellular structures of the epithelial invasions in the glandular stomach of mice caused by intramural application of 20-methylcholantren. , 1956 .
[117] A. Zhang. The role of SHIP in intestinal tuft cells , 2021 .
[118] J. Sauvé. COX-expressing tuft cells initiate Crohn’s disease-like intestinal inflammation in SHIP-/- mice , 2019 .
[119] M. Washington,et al. Identification and manipulation of biliary metaplasia in pancreatic tumors. , 2014, Gastroenterology.
[120] S. Khurana. Structure and Function of Villin , 2006 .
[121] T. Dalhamn,et al. Electron microscopy of the tracheal ciliated mucosa in rat , 2004, Zeitschrift für Zellforschung und Mikroskopische Anatomie.
[122] A. Isomäki. A new cell type (tuft cell) in the gastrointestinal mucosa of the rat. A transmission and scanning electron microscopic study. , 1973, Acta pathologica et microbiologica Scandinavica. Section A, Pathology.
[123] O. Jarvi,et al. On the cellular structures of the epithelial invasions in the glandular stomach of mice caused by intramural application of 20-methylcholantren. , 1956, Acta pathologica et microbiologica Scandinavica. Supplement.