Academic literature on the topic 'Peyers patches'

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Journal articles on the topic "Peyers patches"

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Sabzevary-Ghahfarokhi, M., A. Marshall, and J. Ghia. "A28 PROFILE OF ACTIVATED B-CELL EXPANSION IN THE DISTAL COLON AND MESENTERIC LYMPH NODES OF COLITIC MICE." Journal of the Canadian Association of Gastroenterology 8, Supplement_1 (2025): i11. https://doi.org/10.1093/jcag/gwae059.028.

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Abstract Background Gut B cells maintain homeostasis by producing IgA antibodies that control the entry of commensal bacteria and pathogens. An increase in the number of B cells in the inflamed colon was detected in ulcerative colitis (UC) patients. Pro-inflammatory IgG antibodies binding to commensal bacteria are significantly elevated in UC, promoting intestinal inflammation. Aims To determine the effects of intestinal inflammation on the B cell compartment using a preclinical model of UC. Methods 32 CD-1 WT males were treated for 6 days with 2.5% (w/v) dextran sulfate sodium (DSS), followed
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Sabzevary-Ghahfarokhi, M., A. Marshall, and J. Ghia. "A26 PROFILE OF ACTIVATED B-CELL EXPANSION IN THE DISTAL COLON AND MESENTERIC LYMPH NODES OF COLITIC MICE." Journal of the Canadian Association of Gastroenterology 8, Supplement_1 (2025): i10—i11. https://doi.org/10.1093/jcag/gwae059.026.

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Abstract Background Gut B cells maintain homeostasis by producing IgA antibodies that control the entry of commensal bacteria and pathogens. An increase in the number of B cells in the inflamed colon was detected in ulcerative colitis (UC) patients. Pro-inflammatory IgG antibodies binding to commensal bacteria are significantly elevated in UC, promoting intestinal inflammation. Aims To determine the effects of intestinal inflammation on the B cell compartment using a preclinical model of UC. Methods 32 CD-1 WT males were treated for 6 days with 2.5% (w/v) dextran sulfate sodium (DSS), followed
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V. H. Hryn and Yu. P. Kostylenko. "THE STRUCTURE OF LYMPHOID-ASSOCIATED EPITHELIUM OF PEYERS’ PATCHES OF THE ALBINO RATS’ SMALL INTESTINE." Clinical anatomy and operative surgery 18, no. 4 (2019): 67–75. http://dx.doi.org/10.24061/1727-0847.18.4.2019.11.

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Over the past two decades, there have been many publications dealing with the further development of an urgent issue on the immune system of the mucous membranes of the digestive tract, called mucoseassociated lymphoid tissue (MALT), which includes spheres of innate (non-specific) and adaptive (specific) immunity. Most structured formations and indicators of adaptive immunity in the intestinal mucosa are lymphoepithelial formation (Peyer's patches). The data on the formation of the peripheral part of the immune system are carried through the epithelium, mechanisms of interaction between pathog
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Reboldi, A., T. I. Arnon, L. B. Rodda, A. Atakilit, D. Sheppard, and J. G. Cyster. "IgA production requires B cell interaction with subepithelial dendritic cells in Peyers patches." Science 352, no. 6287 (2016): aaf4822. http://dx.doi.org/10.1126/science.aaf4822.

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Raina, Devisha. "Rare case of gastric extranodal marginal zone lymphoma." International Surgery Journal 8, no. 4 (2021): 1316. http://dx.doi.org/10.18203/2349-2902.isj20210992.

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True histiocytic lymphoma is considered a rare entity, and its diagnosis requires the concordance of morphological, immunophenotypic, and molecular findings. Gastric extra nodal marginal zone B-cell lymphoma of mucosa-associated lymphoid tissue (MALT) is a B-cell non-Hodgkin lymphoma that arises in the stomach and has a perifollicular/marginal zone growth pattern. The lymphoma is derived from marginal zone B-cells and recapitulates the architecture and organization of native MALT exemplified by the Peyers’ patches in the terminal ileum. Marginal zone lymphoma of MALT (MALT lymphoma) is the mos
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Elghoul, Mahmoud, Mohamed Zidan, Doaa Zaghloul, and Amira Derballah. "The Histological Structure of the Ileal Peyers Patches of the Egyptian Water Buffalo (Bos Bubalus)." Alexandria Journal of Veterinary Sciences 54, no. 1 (2017): 168. http://dx.doi.org/10.5455/ajvs.263127.

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Alnabhani, Ziad, Nicolas Montcuquet, Camille Jung, et al. "Mo1790 NOD2 Induced Peyers Patches Dysfunction: Respective Roles of Immune and Epithelial Cells in Mouse." Gastroenterology 142, no. 5 (2012): S—685—S—686. http://dx.doi.org/10.1016/s0016-5085(12)62644-4.

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Haubrich, William S. "Peyer of Peyer’s Patches." Gastroenterology 129, no. 1 (2005): 85. http://dx.doi.org/10.1053/j.gastro.2005.06.010.

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Brimnes, Jens, Thomas Kraus, Ling Shao, Peter Boros, and Lloyd Mayer. "Induction of high and low dose oral tolerance in isolated small bowel loops with and without peyers patches." Gastroenterology 124, no. 4 (2003): A157. http://dx.doi.org/10.1016/s0016-5085(03)80778-3.

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KANEKO, Ken-ichi, Kohkichi UEHARA, and Masuo OGAWA. "Uptake of Killed Yersinia enterocolitica by Pseudopodia of M Cells in the Peyers' Patches of the Murine Small Intestines." Journal of Veterinary Medical Science 61, no. 10 (1999): 1175–77. http://dx.doi.org/10.1292/jvms.61.1175.

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Dissertations / Theses on the topic "Peyers patches"

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Da, Silva Clément. "Fonction des phagocytes de la plaque de Peyer dans la réponse immunitaire mucosale." Thesis, Aix-Marseille, 2017. http://www.theses.fr/2017AIXM0251.

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Nous avons mis en évidence la présence des phagocytes exprimant le lysozyme dans les Plaque de Peyer chez l’Homme et montré que, comme chez la souris, elles sont principalement localisées dans le SED et sont distinctes des cDC. Dans un deuxième temps, nous avons étudié dans les PP de souris la fonction des différentes populations de phagocytes nouvellement caractérisées. Nous avons en particulier étudié l’impact de la détection d’un acide nucléique d’origine virale par les phagocytes en utilisant un agoniste synthétique du TLR7 : le R848. Bien que TLR7 soit exprimé par les cellules dérivées de
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Kiriya, Keiichi. "Essential role of Peyer's patches in the development of Helicobacter-induced gastritis." Kyoto University, 2007. http://hdl.handle.net/2433/135719.

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Pullen, A. M. "Studies on Peyer's patch T cell hybridomas." Thesis, University of Cambridge, 1987. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.233317.

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The initial objective of this thesis was to generate Peyer's patch T cell hybridomas producing lymphokines that regulate IgA-secreting B lymphocytes. Unprimed Peyer's patch cells were fused with BW5147. Karyotype analysis and fluorescent staining of the thy-1.2 marker confirmed the generation of hybridomas. It was envisaged that these hybridomas would be tested for their effects on IgA production by LPS-stimulated B cells. However, when the panel of hybridomas was available for testing there were technical difficulties with this assay. Sendai virus-primed Peyer's patch T cells were used in a s
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Meynell, Helen Mary. "Bacterial modulation of particle transport across the follicle-associated epithelium of Peyer's patches." Thesis, University of Nottingham, 1999. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.285656.

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Hashi, Hiroyuki. "Compartmentalization of Peyer's Patch Anlagen before Lymphocyte Entry." Kyoto University, 2001. http://hdl.handle.net/2433/150171.

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Okuda, Masato. "Distinct activities of stromal cells involved in the organogenesis of lymph nodes and Peyer's patches." Kyoto University, 2007. http://hdl.handle.net/2433/135782.

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Sansom, Nigel P. "Antigen sampling by porcine intestinal Peyer's patch M-cells." Thesis, University of Aberdeen, 1997. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.322637.

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Makala, Levi Hakwale Chikondo. "Isolation and characterization of pig peyer's patch dendritic cells." Thesis, University of Bristol, 1996. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.336826.

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Kawamoto, Shimpei. "Preferential Generation of Follicular B Helper T Cells from Foxp3+ T Cells in Gut Peyer's Patches." Kyoto University, 2011. http://hdl.handle.net/2433/142110.

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Adachi, Satoko. "Three distinctive steps in Peyer's patch formation of murine embryo." Kyoto University, 1997. http://hdl.handle.net/2433/202198.

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Books on the topic "Peyers patches"

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Dunne, John F. An electrophysiological study of intestinal Peyer's patches. University College Dublin, 1995.

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Keshav, Satish, and Alexandra Kent. Immunology and genetics in gastrointestinal and hepatic medicine. Edited by Patrick Davey and David Sprigings. Oxford University Press, 2018. http://dx.doi.org/10.1093/med/9780199568741.003.0196.

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The gut has a pivotal role in immune homeostasis. It is constantly exposed to a wide array of antigens in food, and resident and consumed microorganisms. It is estimated that the number of bacterial cells in the gastrointestinal tract is tenfold greater than the number of cells in the human body. The gut needs to recognize harmful bacteria, and consequently contains the largest number of immune cells in the body. However, it must remain tolerant to commensal bacteria. Bacteria express antigens that stimulate an immunological response via the gut-associated lymphoid tissue (GALT). The GALT incl
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Book chapters on the topic "Peyers patches"

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Burleson, Gary R., and Florence G. Burleson. "Peyer’s Patch Epithelium." In Toxicology of the Gastrointestinal Tract. CRC Press, 2018. http://dx.doi.org/10.1201/9780429433252-9.

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Sharma, Ram, and Udo Schumacher. "Carbohydrate Expression in Human and Mouse Peyer’s Patches." In Carbohydrate Expression in the Intestinal Mucosa. Springer Berlin Heidelberg, 2001. http://dx.doi.org/10.1007/978-3-642-56704-9_6.

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Hu, M. C. T., B. Holzmann, D. T. Crowe, H. Neuhaus, and I. L. Weissman. "The Peyer’s Patch Homing Receptor." In Current Topics in Microbiology and Immunology. Springer Berlin Heidelberg, 1993. http://dx.doi.org/10.1007/978-3-642-78253-4_10.

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Reboldi, Andrea. "In Vivo Imaging of Immune Cells in Peyer’s Patches." In Methods in Molecular Biology. Springer New York, 2018. http://dx.doi.org/10.1007/978-1-4939-7762-8_10.

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Reynolds, J. D. "Peyer’s Patches and the Early Development of B Lymphocytes." In Current Topics in Microbiology and Immunology. Springer Berlin Heidelberg, 1987. http://dx.doi.org/10.1007/978-3-642-71851-9_3.

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Ottaway, C. A., H. P. Cheng, and M. L. Bjerknes. "Migration of Individual Lymphocytes into Peyer’s Patches In Vivo." In Recent Advances in Mucosal Immunology. Springer US, 1987. http://dx.doi.org/10.1007/978-1-4684-5344-7_34.

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Reynolds, John D. "Evidence of Differences Between Peyer’s Patches and Germinal Centers." In Microenvironments in the Lymphoid System. Springer US, 1985. http://dx.doi.org/10.1007/978-1-4613-2463-8_13.

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Cupedo, Tom, Mark C. Coles, and Henrique Veiga-Fernandes. "Structure and Development of Peyer’s Patches in Humans and Mice." In Developmental Biology of Peripheral Lymphoid Organs. Springer Berlin Heidelberg, 2010. http://dx.doi.org/10.1007/978-3-642-14429-5_9.

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Kadioglu, Aras, and Peter Sheldon. "Adherence of Porcine Peyer’s Patch, Peripheral Blood and Lymph Node Lymphocytes to Peyer’s Patch Lamina Propria." In Advances in Experimental Medicine and Biology. Springer US, 1995. http://dx.doi.org/10.1007/978-1-4615-1941-6_14.

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Tseng, J. "Migration of Peyer’s Patch Iga Precursor Cells." In Recent Advances in Mucosal Immunology. Springer US, 1987. http://dx.doi.org/10.1007/978-1-4684-5344-7_33.

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Conference papers on the topic "Peyers patches"

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Özbek, Mehmet. "The Light Microscopic Investigation on the Ileal Peyer’s Patches of Sheep in the Prenatal and Postnatal Periods." In 15th International Congress of Histochemistry and Cytochemistry. LookUs Scientific, 2017. http://dx.doi.org/10.5505/2017ichc.pp-84.

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