Effects of S100A8/S100A9 (calprotectin) on human respiratory mucosal epithelium and its regulatory mechanism

안상현 2023년
논문상세정보
' Effects of S100A8/S100A9 (calprotectin) on human respiratory mucosal epithelium and its regulatory mechanism' 의 주제별 논문영향력
논문영향력 선정 방법
논문영향력 요약
주제
  • airway remodeling
  • antimicrobial peptides
  • eosinophils
  • extracellular traps
  • leukocyte L1 antigen complex
  • nasal mucosa
  • nasal polyps
  • s100a8
  • s100a9
  • sinusitis
  • 부비동염
  • 비용종
  • 세포외 트랩
  • 조직 리모델링
  • 칼프로텍틴
  • 코 점막
  • 항균펩타이드
  • 호산구
동일주제 총논문수 논문피인용 총횟수 주제별 논문영향력의 평균
111 0

0.0%

' Effects of S100A8/S100A9 (calprotectin) on human respiratory mucosal epithelium and its regulatory mechanism' 의 참고문헌

  • Zinc and Manganese Chelation by Neutrophil S100A8/A9 (Calprotectin) Limits Extracellular Aspergillus fumigatus Hyphal Growth and Corneal Infection
  • Translocation of a small cytosolic calcium-binding protein (MRP-8) to plasma membrane correlates with human neutrophil activation
  • The effect of calprotectin on TSLP and IL-25 production from airway epithelial cells
  • The airway epithelium: soldier in the fight against respiratory viruses
  • The Peripheral Blood Eosinophil Proteome
  • Staging in rhinosinusitus
    Lund VJ Mackay IS 31:183-4 [1993]
  • S100A9 in adult asthmatic patients: a biomarker for neutrophilic asthma
  • S100A8/A9: From basic science to clinical application
  • S-calprotectin (S100A8/S100A9): a potential marker of inflammation in patients with psoriatic arthritis
  • Rethinking neutrophils and eosinophils in chronic rhinosinusitis
    Bachert C. Bochner BS Delemarre T Simon HU doi:10.1016/j. jaci.2021.03.024 [2021]
  • Regulation of S100A8 by glucocorticoids
  • Rate of Synthesis and Degradation of Lysozyme Protein by Retinoic Acid in Normal Human Airway Epithelial Cells
  • Proteomic analysis of nasal mucus samples of healthy patients and patients with chronic rhinosinusitis
  • Proprotein convertase 5/6a is associated with bone morphogenetic protein-2-induced squamous cell differentiation
  • Proinflammatory cytokines upregulate expression of calprotectin (L1 protein, MRP-8/MRP-14) in cultured human keratinocytes
  • Pro-inflammatory S100A8 and S100A9 proteins: self-assembly into multifunctional native and amyloid complexes
  • NETs and EETs, a Whole Web of Mess
  • Multiple airborne allergen-induced eosinophilic chronic rhinosinusitis murine model
  • Mucosal remodeling and reversibility in chronic rhinosinusitis
  • Molecular basis for manganese sequestration by calprotectin and roles in the innate immune response to invading bacterial pathogens
  • Metaplasia: tissue injury adaptation and a precursor to the dysplasia-cancer sequence
    Giroux V Rustgi AK 17:594-604 [2017]
  • Mechanism of extracellular release of human neutrophil calprotectin complex
  • MRP-8 and MRP-14, two abundant Ca(2+)-binding proteins of neutrophils and monocytes
  • Inflammatory endotypes of chronic rhinosinusitis based on cluster analysis of biomarkers
  • Inflammation-associated S100 proteins: new mechanisms that regulate function
    Geczy CL Goyette J 41:821-42 [2011]
  • Inflammation
  • Induction of the chemotactic S100 protein, CP-10, in monocyte/macrophages by lipopolysaccharide
  • In vivo evidence for extracellular DNA trap formation
  • Il-10 up-regulates macrophage expression of the S100 protein S100A8
    Geczy CL Xu K Yen T 166:6358-66 [2001]
  • Human eosinophils express RAGE, produce RAGE ligands, exhibit PKC-delta phosphorylation and enhanced viability in response to the RAGE ligand, S100B
    Bertics PJ Curran CS 23:713-28 [2011]
  • Human calprotectin is an iron-sequestering host-defense protein
  • How to detect eosinophil ETosis (EETosis) and extracellular traps
  • Functions of S100 proteins
  • Formation of nasal polyps: The roles of innate type 2 inflammation and deposition of fibrin
    Schleimer RP Takabayashi T 145:740-50 [2020]
  • Fecal calprotectin in diagnosis and clinical assessment of inflammatory bowel disease
    Kolho KL Sipponen T 50:74-80 [2015]
  • Expression of S100A8/A9 in HaCaT keratinocytes alters the rate of cell proliferation and differentiation
  • European Position Paper on Rhinosinusitis and Nasal Polyps
  • Epithelial cells, the switchboard of respiratory immune defense responses: effects of air pollutants
    Jaspers I. Müller L 142:w13653 [2012]
  • Eosinophil extracellular trap formation is closely associated with disease severity in chronic rhinosinusitis regardless of nasal polyp status
  • Eosinophil and neutrophil extracellular DNA traps in human allergic asthmatic airways
  • Endotypes of chronic rhinosinusitis: Relationships to disease phenotypes, pathogenesis, clinical findings, and treatment approaches
  • Elevation of activated neutrophils in chronic rhinosinusitis with nasal polyps
  • Elevated S100A9 expression in chronic rhinosinusitis coincides with elevated MMP production and proliferation in vitro
  • Differential release and deposition of S100A8/A9 proteins in inflamed upper airway tissue
  • Development of a Korean Culture-Friendly Olfactory Function Test and Optimization of a Diagnostic Cutoff Value
  • Damage-associated molecular patterns in inflammatory diseases
    Roh JS Sohn DH 18:e27 [2018]
  • Cytokines in acute and chronic inflammation
    Feghali CA Wright TM 2:d12-26 [1997]
  • Comparative functional analysis of human medium-chain dehydrogenases, short-chain dehydrogenases/reductases and aldo-keto reductases with retinoids
  • Cloning and expression of two human genes encoding calcium-binding proteins that are regulated during myeloid differentiation
    Clerc RG Lagasse E 8:2402-10 [1988]
  • Circulating Calprotectin as a Biomarker of COVID-19 Severity
  • Chronic inflammation: importance of NOD2 and NALP3 in interleukin-1beta generation
  • Calprotectin in rheumatoid arthritis : association with disease activity in a cross-sectional and a longitudinal cohort
  • Barrier function of the nasal mucosa in health and type-2 biased airway diseases
  • A substantial neutrophilic inflammation as regular part of severe type 2 chronic rhinosinusitis with nasal polyps
  • 79. Ahn SH, Lee EJ, Ha JG, Hwang CS, Yoon JH, Kim CH, et al. Comparison of olfactory and taste functions between eosinophilic and non-eosinophilic chronic rhinosinusitis. Auris Nasus Larynx 2020;47:820-7.
  • 78. Wang H, Pan L, Liu Z. Neutrophils as a Protagonist and Target in Chronic Rhinosinusitis. Clin Exp Otorhinolaryngol 2019;12:337-47.
  • 70. Lee YG, Hong J, Lee PH, Lee J, Park SW, Kim D, et al. Serum Calprotectin Is a Potential Marker in Patients with Asthma. J Korean Med Sci 2020;35:e362.
  • 61. Tokunaga T, Sakashita M, Haruna T, Asaka D, Takeno S, Ikeda H, et al. Novel scoring system and algorithm for classifying chronic rhinosinusitis: the JESREC Study. Allergy 2015;70:995-1003.
  • 57. Ueki S, Tokunaga T, Fujieda S, Honda K, Hirokawa M, Spencer LA, et al. Eosinophil ETosis and DNA Traps: a New Look at Eosinophilic Inflammation. Curr Allergy Asthma Rep 2016;16:54.
  • 55. Ryu G, Kim DW. Th2 inflammatory responses in the development of nasal polyps and chronic rhinosinusitis. Curr Opin Allergy Clin Immunol 2020;20:1-8.
  • 53. Candar T, Baklaci D, Kuzucu I, Kayabasi S. A proinflammatory marker in chronic rhinosinusitis: serum calprotectin. Acta Biochim Pol 2020;67:367-71.
  • 51. Urban CF, Ermert D, Schmid M, Abu-Abed U, Goosmann C, Nacken W, et al. Neutrophil extracellular traps contain calprotectin, a cytosolic protein complex involved in host defense against Candida albicans. PLoS Pathog 2009;5:e1000639.
  • 5. Chen L, Deng H, Cui H, Fang J, Zuo Z, Deng J, et al. Inflammatory responses and inflammation-associated diseases in organs. Oncotarget 2018;9:7204-18.
  • 43. Hsu K, Champaiboon C, Guenther BD, Sorenson BS, Khammanivong A, Ross KF, et al. ANTI-INFECTIVE PROTECTIVE PROPERTIES OF S100 CALGRANULINS. Antiinflamm Antiallergy Agents Med Chem 2009;8:290-305.
  • 41. Konieczny P, Xing Y, Sidhu I, Subudhi I, Mansfield KP, Hsieh B, et al. Interleukin-17 governs hypoxic adaptation of injured epithelium. Science 2022;377:eabg9302.
  • 39. Kim SW, Cheon K, Kim CH, Yoon JH, Hawke DH, Kobayashi R, et al. Proteomics-based identification of proteins secreted in apical surface fluid of squamous metaplastic human tracheobronchial epithelial cells cultured by three-dimensional organotypic air-liquid interface method. Cancer Res 2007;67:6565-73.
  • 38. Pinet K, McLaughlin KA. Mechanisms of physiological tissue remodeling in animals: Manipulating tissue, organ, and organism morphology. Dev Biol 2019;451:134-45.
  • 35. Yen T, Harrison CA, Devery JM, Leong S, Iismaa SE, Yoshimura T, et al. Induction of the S100 chemotactic protein, CP-10, in murine microvascular endothelial cells by proinflammatory stimuli. Blood 1997;90:4812-21.
  • 32. Hobbs JA, May R, Tanousis K, McNeill E, Mathies M, Gebhardt C, et al. Myeloid cell function in MRP-14 (S100A9) null mice. Mol Cell Biol 2003;23:2564-76.
  • 30. Huang H, Tan KS, Zhou S, Yuan T, Liu J, Ong HH, et al. p63(+)Krt5(+) basal cells are increased in the squamous metaplastic epithelium of patients with radiation-induced chronic Rhinosinusitis. Radiat Oncol 2020;15:222.
  • 29. Gao T, Ng CL, Li C, Li YY, Duan C, Shen L, et al. Smoking is an independent association of squamous metaplasia in Chinese nasal polyps. Int Forum Allergy Rhinol 2016;6:66-74.
  • 27. Yoon JH, Moon HJ, Seong JK, Kim CH, Lee JJ, Choi JY, et al. Mucociliary differentiation according to time in human nasal epithelial cell culture. Differentiation 2002;70:77-83.
  • 21. Richer SL, Truong-Tran AQ, Conley DB, Carter R, Vermylen D, Grammer LC, et al. Epithelial genes in chronic rhinosinusitis with and without nasal polyps. Am J Rhinol 2008;22:228-34.
  • 20. Tieu DD, Peters AT, Carter RG, Suh L, Conley DB, Chandra R, et al. Evidence for diminished levels of epithelial psoriasin and calprotectin in chronic rhinosinusitis. J Allergy Clin Immunol 2010;125:667-75.
  • 15. Snidvongs K, Lam M, Sacks R, Earls P, Kalish L, Phillips PS, et al. Structured histopathology profiling of chronic rhinosinusitis in routine practice. Int Forum Allergy Rhinol 2012;2:376-85.
  • 14. Barham HP, Osborn JL, Snidvongs K, Mrad N, Sacks R, Harvey RJ. Remodeling changes of the upper airway with chronic rhinosinusitis. Int Forum Allergy Rhinol 2015;5:565-72.
  • 13. Kuhar HN, Tajudeen BA, Mahdavinia M, Gattuso P, Ghai R, Batra PS. Inflammatory infiltrate and mucosal remodeling in chronic rhinosinusitis with and without polyps: structured histopathologic analysis. Int Forum Allergy Rhinol 2017;7:679-89.
  • 12. Renne R, Brix A, Harkema J, Herbert R, Kittel B, Lewis D, et al. Proliferative and nonproliferative lesions of the rat and mouse respiratory tract. Toxicol Pathol 2009;37:5s-73s.
  • 11. Mynatt RG, Do J, Janney C, Sindwani R. Squamous metaplasia and chronic rhinosinusitis: a clinicopathological study. Am J Rhinol 2008;22:602-5.
  • 1. Müller L, Brighton LE, Carson JL, Fischer WA, 2nd, Jaspers I. Culturing of human nasal epithelial cells at the air liquid interface. J Vis Exp 2013; doi:10.3791/50646.