Protein S100-A9
Definition:
References:
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[1]. Jie Jia, et al. Target-selective protein S-nitrosylation by sequence motif recognition. Cell. 2014 Oct 23;159(3):623-34. [Content Brief]
[2]. Geetha Srikrishna, et al. S100A8 and S100A9: new insights into their roles in malignancy. J Innate Immun. 2012;4(1):31-40. [Content Brief]
[3]. Sylvie Berthier, et al. Molecular interface of S100A8 with cytochrome b558 and NADPH oxidase activation. PLoS One. 2012;7(7):e40277. [Content Brief]
[4]. Jean-Christophe Simard, et al. Induction of neutrophil degranulation by S100A9 via a MAPK-dependent mechanism. J Leukoc Biol. 2010 May;87(5):905-14. [Content Brief]
[5]. Thomas Vogl, et al. MRP8 and MRP14 control microtubule reorganization during transendothelial migration of phagocytes. Blood. 2004 Dec 15;104(13):4260-8. [Content Brief]
[6]. Matteo Riva, et al. Induction of nuclear factor-κB responses by the S100A9 protein is Toll-like receptor-4-dependent. Immunology. 2012 Oct;137(2):172-82. [Content Brief]
[7]. Mizhir Atallah, et al. Constitutive neutrophil apoptosis: regulation by cell concentration via S100 A8/9 and the MEK-ERK pathway. PLoS One. 2012;7(2):e29333. [Content Brief]
[8]. Thomas Vogl, et al. Pro-inflammatory S100A8 and S100A9 proteins: self-assembly into multifunctional native and amyloid complexes. Int J Mol Sci. 2012;13(3):2893-2917. [Content Brief]
[9]. Chunsun Li, et al. A novel p53 target gene, S100A9, induces p53-dependent cellular apoptosis and mediates the p53 apoptosis pathway. Biochem J. 2009 Aug 13;422(2):363-72. [Content Brief]
[10]. Claus Kerkhoff, et al. The arachidonic acid-binding protein S100A8/A9 promotes NADPH oxidase activation by interaction with p67phox and Rac-2. FASEB J. 2005 Mar;19(3):467-9. [Content Brief]
[11]. Dorothee Viemann, et al. Myeloid-related proteins 8 and 14 induce a specific inflammatory response in human microvascular endothelial cells. Blood. 2005 Apr 1;105(7):2955-62. [Content Brief]
[12]. Per Björk, et al. Identification of human S100A9 as a novel target for treatment of autoimmune disease via binding to quinoline-3-carboxamides. PLoS Biol. 2009 Apr 28;7(4):e97. [Content Brief]
[13]. Carle Ryckman, et al. Proinflammatory activities of S100: proteins S100A8, S100A9, and S100A8/A9 induce neutrophil chemotaxis and adhesion. J Immunol. 2003 Mar 15;170(6):3233-42. [Content Brief]
[14]. Saeid Ghavami, et al. S100A8/A9 induces autophagy and apoptosis via ROS-mediated cross-talk between mitochondria and lysosomes that involves BNIP3. Cell Res. 2010 Mar;20(3):314-31. [Content Brief]
[15]. Chantrakorn Champaiboon, et al. Calprotectin S100A9 calcium-binding loops I and II are essential for keratinocyte resistance to bacterial invasion. J Biol Chem. 2009 Mar 13;284(11):7078-90. [Content Brief]
[16]. Jean-Christophe Simard, et al. Damage-associated molecular pattern S100A9 increases bactericidal activity of human neutrophils by enhancing phagocytosis. J Immunol. 2011 Mar 15;186(6):3622-31. [Content Brief]
[17]. K T Miyasaki, et al. In vitro antimicrobial activity of the human neutrophil cytosolic S-100 protein complex, calprotectin, against Capnocytophaga sputigena. J Dent Res. 1993 Feb;72(2):517-23. [Content Brief]
[18]. Yuichi Nakatani, et al. Regulation of S100A8/A9 (calprotectin) binding to tumor cells by zinc ion and its implication for apoptosis-inducing activity. Mediators Inflamm. 2005 Oct 24;2005(5):280-92. [Content Brief]
[19]. Akiko Koike, et al. Dynamic mobility of immunological cells expressing S100A8 and S100A9 in vivo: a variety of functional roles of the two proteins as regulators in acute inflammatory reaction. Inflammation. 2012 Apr;35(2):409-19. [Content Brief]
[20]. Herve Y Sroussi, et al. Substitution of methionine 63 or 83 in S100A9 and cysteine 42 in S100A8 abrogate the antifungal activities of S100A8/A9: potential role for oxidative regulation. FEMS Immunol Med Microbiol. 2009 Jan;55(1):55-61. [Content Brief]