Artículos de revistas sobre el tema "PAMPs and DAMP"
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Chen, Jiann Chu. "The complex of damage-associated molecular pattern and its inducer, pathogen-associated molecular pattern enhance triggering innate immunity in shrimp (VET1P.1128)". Journal of Immunology 194, n.º 1_Supplement (1 de mayo de 2015): 146.16. http://dx.doi.org/10.4049/jimmunol.194.supp.146.16.
Texto completoJang, Gun-Young, Ji won Lee, Young Seob Kim, Sung Eun Lee, Hee Dong Han, Kee-Jong Hong, Tae Heung Kang y Yeong-Min Park. "Interactions between tumor-derived proteins and Toll-like receptors". Experimental & Molecular Medicine 52, n.º 12 (diciembre de 2020): 1926–35. http://dx.doi.org/10.1038/s12276-020-00540-4.
Texto completoZanoni, Ivan y Marco Di Gioia. "Endogenous oxidized phospholipids reprogram cellular metabolism and boost hyperinflammation". Journal of Immunology 204, n.º 1_Supplement (1 de mayo de 2020): 69.1. http://dx.doi.org/10.4049/jimmunol.204.supp.69.1.
Texto completoAndersson, Ulf, Kevin J. Tracey y Huan Yang. "Post-Translational Modification of HMGB1 Disulfide Bonds in Stimulating and Inhibiting Inflammation". Cells 10, n.º 12 (26 de noviembre de 2021): 3323. http://dx.doi.org/10.3390/cells10123323.
Texto completoShamilov, Rambon, Tyler W. Ackley y Brian J. Aneskievich. "Enhanced Wound Healing- and Inflammasome-Associated Gene Expression in TNFAIP3-Interacting Protein 1- (TNIP1-) Deficient HaCaT Keratinocytes Parallels Reduced Reepithelialization". Mediators of Inflammation 2020 (21 de abril de 2020): 1–14. http://dx.doi.org/10.1155/2020/5919150.
Texto completoNegishi, Hideo, Nobuyasu Endo, Yuki Nakajima, Tatsuaki Nishiyama, Yuichiro Tabunoki, Junko Nishio, Ryuji Koshiba et al. "Identification of U11snRNA as an endogenous agonist of TLR7-mediated immune pathogenesis". Proceedings of the National Academy of Sciences 116, n.º 47 (6 de noviembre de 2019): 23653–61. http://dx.doi.org/10.1073/pnas.1915326116.
Texto completoHirai, K., H. Furusho, N. Kawashima, S. Xu, M. C. de Beer, R. Battaglino, T. Van Dyke, P. Stashenko y H. Sasaki. "Serum Amyloid A Contributes to Chronic Apical Periodontitis via TLR2 and TLR4". Journal of Dental Research 98, n.º 1 (6 de septiembre de 2018): 117–25. http://dx.doi.org/10.1177/0022034518796456.
Texto completoScalfone, Lisa K., Hendrik J. Nel, Lucille F. Gagliardo, Jody L. Cameron, Shaikha Al-Shokri, Cynthia A. Leifer, Padraic G. Fallon y Judith A. Appleton. "Participation of MyD88 and Interleukin-33 as Innate Drivers of Th2 Immunity to Trichinella spiralis". Infection and Immunity 81, n.º 4 (12 de febrero de 2013): 1354–63. http://dx.doi.org/10.1128/iai.01307-12.
Texto completoDwyer, Gaelen K., Lisa Mathews, Anna Lucas, Bruce R. Blazar, Amanda Poholek, Warren Shlomchik y Heth Roderick Turnquist. "IL-33 upregulated in fibroblastic reticular cells after recipient conditioning acts as a novel costimulatory signal in the generation of alloreactive Type 1 T helper cells". Journal of Immunology 208, n.º 1_Supplement (1 de mayo de 2022): 175.08. http://dx.doi.org/10.4049/jimmunol.208.supp.175.08.
Texto completoIdrus, Hasta Handayani, Mochammad Hatta, Vivien Novarina Kasim, Ami Febriza Achmad, Andi Sitti Fahirah Arsal, Veny hadju y Suryani As'ad. "Molecular Impact on High Motility Group Box-1 (HMGB-1) in Pamps and Damp". Indian Journal of Public Health Research & Development 10, n.º 8 (2019): 1109. http://dx.doi.org/10.5958/0976-5506.2019.02045.x.
Texto completoYang, Huan, Haichao Wang, Zhongliang Ju, Ahmed A. Ragab, Peter Lundbäck, Wei Long, Sergio I. Valdes-Ferrer et al. "MD-2 is required for disulfide HMGB1–dependent TLR4 signaling". Journal of Experimental Medicine 212, n.º 1 (5 de enero de 2015): 5–14. http://dx.doi.org/10.1084/jem.20141318.
Texto completoArtemyeva, O. V. y L. V. Gankovskaya. "Inflammaging as the basis of age-associated diseases". Medical Immunology (Russia) 22, n.º 3 (21 de mayo de 2020): 419–32. http://dx.doi.org/10.15789/1563-0625-iat-1938.
Texto completoGermoglio, Marcello, Adele Adamo, Guido Incerti, Fabrizio Cartenì, Silvia Gigliotti, Aurora Storlazzi y Stefano Mazzoleni. "Self-DNA Exposure Induces Developmental Defects and Germline DNA Damage Response in Caenorhabditis elegans". Biology 11, n.º 2 (8 de febrero de 2022): 262. http://dx.doi.org/10.3390/biology11020262.
Texto completoSemenova, I. B. "ROLE OF PURINERGIC RECEPTORS IN IMMUNE RESPONSE". Journal of microbiology, epidemiology and immunobiology, n.º 2 (28 de abril de 2016): 107–19. http://dx.doi.org/10.36233/0372-9311-2016-2-107-119.
Texto completoMertowski, Sebastian, Ewelina Grywalska, Jarosław Ludian, Agnieszka Grafka, Barbara Pęksa, Jacek Roliński y Wojciech Załuska. "The significance of Toll-like receptors in selected nephropathies". Diagnostyka Laboratoryjna 55, n.º 2 (5 de abril de 2019): 107–12. http://dx.doi.org/10.5604/01.3001.0013.7445.
Texto completoWang, Yifei y Robert J. Binder. "CD91-Dependent Release of IL-1β by GP96 Involves the Activation of the Inflammasome Complex". Journal of Immunology 198, n.º 1_Supplement (1 de mayo de 2017): 151.23. http://dx.doi.org/10.4049/jimmunol.198.supp.151.23.
Texto completoPandya, Unnati, Chinaza Egbuta, Trefa Abdullah Norman, Chih-Yuan Chiang, Valerie Wiersma, Rekha Panchal, Edwin Bremer, Paul Eggleton y Leslie Gold. "The Biophysical Interaction of the Danger-Associated Molecular Pattern (DAMP) Calreticulin with the Pattern-Associated Molecular Pattern (PAMP) Lipopolysaccharide". International Journal of Molecular Sciences 20, n.º 2 (18 de enero de 2019): 408. http://dx.doi.org/10.3390/ijms20020408.
Texto completoTrova, Sandro, Matthew Fenton, Bhavini Chauhan, Avani Puri, Santosh Lomada, Alexandra Adams, Thomas Wieland et al. "Human and Pathogen Derived Ndpks Act As Novel Damps and PAMPs to Drive Leukemia Cell Survival and Progression through Signaling Via the TLR4-Mediated Alternative NLRP3 Inflammasome Pathway". Blood 134, Supplement_1 (13 de noviembre de 2019): 2684. http://dx.doi.org/10.1182/blood-2019-131236.
Texto completoIurescia, Sandra, Daniela Fioretti y Monica Rinaldi. "The Innate Immune Signalling Pathways: Turning RIG-I Sensor Activation against Cancer". Cancers 12, n.º 11 (27 de octubre de 2020): 3158. http://dx.doi.org/10.3390/cancers12113158.
Texto completoMerkushova, E. D., E. M. Khasanova y L. V. Gankovskaya. "Mechanisms of innate immunity in pathogenesis of psoriasis: approaches to targeted therapy". Medical Immunology (Russia) 22, n.º 3 (21 de mayo de 2020): 449–58. http://dx.doi.org/10.15789/1563-0625-moi-1949.
Texto completoDosch, Michel Ernest, Tamara Salamanca, Djulia Djonova, Adrian Keogh, Deborah Stroka, Daniel Candinas y Guido Beldi. "Could Connexin 43 dependent ATP release represent a new therapeutic target for sepsis?" Journal of Immunology 198, n.º 1_Supplement (1 de mayo de 2017): 125.32. http://dx.doi.org/10.4049/jimmunol.198.supp.125.32.
Texto completoLee, Chih-Chun, Chun-Yu Tung, Ching Ching Wu y Tsang Long Lin. "AVIAN INNATE IMMUNITY WITH AN EMPHASIS ON CHICKEN MELANOMA DIFFERENTIATION-ASSOCIATED GENE 5 (MDA5)". Taiwan Veterinary Journal 45, n.º 03 (30 de agosto de 2019): 43–55. http://dx.doi.org/10.1142/s1682648519300016.
Texto completoToubai, Tomomi, Corinne Rossi, Katherine Oravecz-Wilson, Nathan Mathewson, Cynthia Zajac, Chen Liu, Stuart Brabbs et al. "Donor T Cells Intrinsic Responses to Damps Regulated By Siglec-G-CD24 Axis Mitigate Gvhd but Maintain GVL in Experimental BMT Model". Blood 126, n.º 23 (3 de diciembre de 2015): 229. http://dx.doi.org/10.1182/blood.v126.23.229.229.
Texto completoHerwald, Heiko y Arne Egesten. "On PAMPs and DAMPs". Journal of Innate Immunity 8, n.º 5 (2016): 427–28. http://dx.doi.org/10.1159/000448437.
Texto completoAquino-Domínguez, Alba Soledad, María de los Ángeles Romero-Tlalolini y Sergio Roberto Aguilar-Ruiz. "Los receptores del sistema inmunitario innato". RA RIÓ GUENDARUYUBI 5, n.º 15 (15 de mayo de 2022): 4–23. http://dx.doi.org/10.53331/rar.v5i15.2463.
Texto completoMatsuoka, K., S. Dave, J. Tilstra, F. Li, R. DeMarco, M. Fink, M. Lotze y S. Plevy. "PAMPs and DAMPs in IBD". Inflammatory Bowel Diseases 13, supplement (mayo de 2007): 643. http://dx.doi.org/10.1097/00054725-200705001-00003.
Texto completoMatsuoka, K., S. Davé, J. Tilstra, F. Li, R. DeMarco, M. Fink, M. Lotze y S. Plevy. "PAMPs and DAMPs in IBD". Inflammatory Bowel Diseases 13 (mayo de 2007): 643. http://dx.doi.org/10.1097/00054725-200705005-00003.
Texto completoFoley, John F. "Blocking DAMPs but not PAMPs". Science Signaling 8, n.º 360 (20 de enero de 2015): ec13-ec13. http://dx.doi.org/10.1126/scisignal.aaa6950.
Texto completoNi, Kaiyuan, Guangxu Lan, Nining Guo, August Culbert, Taokun Luo, Tong Wu, Ralph R. Weichselbaum y Wenbin Lin. "Nanoscale metal-organic frameworks for x-ray activated in situ cancer vaccination". Science Advances 6, n.º 40 (octubre de 2020): eabb5223. http://dx.doi.org/10.1126/sciadv.abb5223.
Texto completoOlejarz, Wioletta, Dominika Łacheta, Alicja Głuszko, Ewa Migacz, Wojciech Kukwa, Mirosław J. Szczepański, Piotr Tomaszewski y Grażyna Nowicka. "RAGE and TLRs as Key Targets for Antiatherosclerotic Therapy". BioMed Research International 2018 (26 de agosto de 2018): 1–10. http://dx.doi.org/10.1155/2018/7675286.
Texto completoHirsiger, Stefanie, Hans-Peter Simmen, Clément M. L. Werner, Guido A. Wanner y Daniel Rittirsch. "Danger Signals Activating the Immune Response after Trauma". Mediators of Inflammation 2012 (2012): 1–10. http://dx.doi.org/10.1155/2012/315941.
Texto completoZindel, Joel y Paul Kubes. "DAMPs, PAMPs, and LAMPs in Immunity and Sterile Inflammation". Annual Review of Pathology: Mechanisms of Disease 15, n.º 1 (24 de enero de 2020): 493–518. http://dx.doi.org/10.1146/annurev-pathmechdis-012419-032847.
Texto completoRai, Vikrant y Devendra K. Agrawal. "The role of damage- and pathogen-associated molecular patterns in inflammation-mediated vulnerability of atherosclerotic plaques". Canadian Journal of Physiology and Pharmacology 95, n.º 10 (octubre de 2017): 1245–53. http://dx.doi.org/10.1139/cjpp-2016-0664.
Texto completoFischer, Silvia y Elisabeth Deindl. "State of the Art of Innate Immunity—An Overview". Cells 11, n.º 17 (30 de agosto de 2022): 2705. http://dx.doi.org/10.3390/cells11172705.
Texto completoITO, Takashi. "PAMPs/DAMPs as novel mediators of inflammation-associated thrombosis". Japanese Journal of Thrombosis and Hemostasis 24, n.º 6 (2013): 675–79. http://dx.doi.org/10.2491/jjsth.24.675.
Texto completoChain, Robert, Linda Varghese y Stefania Gallucci. "Role of PAMPs and DAMPs in Graft Rejection (126.6)". Journal of Immunology 188, n.º 1_Supplement (1 de mayo de 2012): 126.6. http://dx.doi.org/10.4049/jimmunol.188.supp.126.6.
Texto completoMarkus, Regina P., Kassiano S. Sousa, Sanseray da Silveira Cruz-Machado, Pedro A. Fernandes y Zulma S. Ferreira. "Possible Role of Pineal and Extra-Pineal Melatonin in Surveillance, Immunity, and First-Line Defense". International Journal of Molecular Sciences 22, n.º 22 (10 de noviembre de 2021): 12143. http://dx.doi.org/10.3390/ijms222212143.
Texto completoLi, Sicheng, Qiongyuan Hu, Jinjian Huang, Xiuwen Wu y Jianan Ren. "Mitochondria-Derived Damage-Associated Molecular Patterns in Sepsis: From Bench to Bedside". Oxidative Medicine and Cellular Longevity 2019 (8 de mayo de 2019): 1–9. http://dx.doi.org/10.1155/2019/6914849.
Texto completoTang, Daolin, Rui Kang, Carolyn B. Coyne, Herbert J. Zeh y Michael T. Lotze. "PAMPs and DAMPs: signal 0s that spur autophagy and immunity". Immunological Reviews 249, n.º 1 (14 de agosto de 2012): 158–75. http://dx.doi.org/10.1111/j.1600-065x.2012.01146.x.
Texto completoGentile, Lori F. y Lyle L. Moldawer. "DAMPs, PAMPs, and the Origins of SIRS in Bacterial Sepsis". Shock 39, n.º 1 (enero de 2013): 113–14. http://dx.doi.org/10.1097/shk.0b013e318277109c.
Texto completoHoll, Eda K., Kara L. Shumansky, Luke B. Borst, Angela D. Burnette, Christopher J. Sample, Elizabeth A. Ramsburg y Bruce A. Sullenger. "Scavenging nucleic acid debris to combat autoimmunity and infectious disease". Proceedings of the National Academy of Sciences 113, n.º 35 (15 de agosto de 2016): 9728–33. http://dx.doi.org/10.1073/pnas.1607011113.
Texto completoSun, Lixiang, Wenjie Liu y Ling-juan Zhang. "The Role of Toll-Like Receptors in Skin Host Defense, Psoriasis, and Atopic Dermatitis". Journal of Immunology Research 2019 (14 de noviembre de 2019): 1–13. http://dx.doi.org/10.1155/2019/1824624.
Texto completoITO, Takashi y Ikuro MARUYAMA. "Thrombus formation and innate immunity". Japanese Journal of Thrombosis and Hemostasis 23, n.º 3 (2012): 241–46. http://dx.doi.org/10.2491/jjsth.23.241.
Texto completoBianchi, Marco E. "DAMPs, PAMPs and alarmins: all we need to know about danger". Journal of Leukocyte Biology 81, n.º 1 (10 de octubre de 2006): 1–5. http://dx.doi.org/10.1189/jlb.0306164.
Texto completoHughes, Francis M., Nivardo P. Vivar, James G. Kennis, Jeffery D. Pratt-Thomas, Danielle W. Lowe, Brooke E. Shaner, Paul J. Nietert, Laura S. Spruill y J. Todd Purves. "Inflammasomes are important mediators of cyclophosphamide-induced bladder inflammation". American Journal of Physiology-Renal Physiology 306, n.º 3 (1 de febrero de 2014): F299—F308. http://dx.doi.org/10.1152/ajprenal.00297.2013.
Texto completoKrakauer, Teresa. "Inflammasomes, Autophagy, and Cell Death: The Trinity of Innate Host Defense against Intracellular Bacteria". Mediators of Inflammation 2019 (8 de enero de 2019): 1–10. http://dx.doi.org/10.1155/2019/2471215.
Texto completoEvankovich, John, Timothy Billiar y Allan Tsung. "Toll-Like Receptors in Hepatic Ischemia/Reperfusion and Transplantation". Gastroenterology Research and Practice 2010 (2010): 1–8. http://dx.doi.org/10.1155/2010/537263.
Texto completoPisetsky, David S. "The origin and properties of extracellular DNA: From PAMP to DAMP". Clinical Immunology 144, n.º 1 (julio de 2012): 32–40. http://dx.doi.org/10.1016/j.clim.2012.04.006.
Texto completoSundaram, Balamurugan y Thirumala-Devi Kanneganti. "Advances in Understanding Activation and Function of the NLRC4 Inflammasome". International Journal of Molecular Sciences 22, n.º 3 (21 de enero de 2021): 1048. http://dx.doi.org/10.3390/ijms22031048.
Texto completoWilson, Carole L., Sarah E. Stephenson, Jean Paul Higuero, Carol Feghali-Bostwick, Chi F. Hung y Lynn M. Schnapp. "Characterization of human PDGFR-β-positive pericytes from IPF and non-IPF lungs". American Journal of Physiology-Lung Cellular and Molecular Physiology 315, n.º 6 (1 de diciembre de 2018): L991—L1002. http://dx.doi.org/10.1152/ajplung.00289.2018.
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