Immunocytes and activated stellate cells in pancreatic fibrogenesis

被引:18
|
作者
Jaskiewicz, K [1 ]
Nalecz, A
Rzepko, R
Sledzinski, F
机构
[1] Univ Gdansk, Sch Med, Dept Pathol, PL-80211 Gdansk, Poland
[2] Univ Gdansk, Sch Med, Dept Surg, PL-80211 Gdansk, Poland
关键词
chronic pancreatitis; immunocytes; stellate cells;
D O I
10.1097/00006676-200304000-00006
中图分类号
R57 [消化系及腹部疾病];
学科分类号
摘要
Introduction and Aims: Chronic pancreatitis is a progressive chronic inflammatory disease characterized by irreversible destruction of exocrine pancreatic tissue and extensive fibrosis. Excessive alcohol consumption has been identified as the main etiologic factor of this disease in the Western world. Idiopathic pancreatitis accounts for approximate to30% of cases. An autoimmune mechanism may be involved in some patients, but this concept has not been generally accepted as a new clinical entity. The purpose of this work was to investigate the pathogenesis of pancreatic fibrosis and to establish the role of immunocytes and activated stellate cells in chronic pancreatitis, which was categorized into three groups: chronic alcoholic pancreatitis (AP), chronic idiopathic pancreatitis (IP), and chronic pancreatitis in the presence of pancreatic cancer (CA). Methodology: Fifty-one pancreatic tissue samples were studied histopathologically and immunohistochemically (AP, 16 samples; IP, 12; CA, 12; and samples of tissue with apparently normal pancreatic histology, 11). The following immunohistochemical stains were used: a-smooth muscle antibody, desmin, and synaptophysin, as markers of activated stellate cells; and laminin, fibronectin, and collagen IV, as markers of extracellular matrix (ECM) proteins. Immunocytes were stained with antibody to LCA, CD68 antibody (macrophages), and CD8 antibody (natural killer T cell subset), and mast cells were examined using the Giemsa method. Positively stained macrophages, lymphocytes, and mast cells were counted in three high-power fields of a light microscope. The immunoreactivity of activated stellate cells and ECM proteins was assessed by a semiquantitative method (0, lack of positive staining; 5, numerous cells with strong positive immunostaining). Results were assessed statistically. Results: We found no statistical differences between cases of AP, IP, and CA in terms of total lymphocyte count (mean numbers: 416, 418, and 407 per three high-power fields, respectively). The percentage of CD8+ T cells in IP was statistically higher than that in AP. The macrophage count was significantly higher in the IP group than in the AP and CA groups. The mast cell count was markedly higher in the IP group than in the other groups. The stellate cell markers a-smooth muscle antibody and desmin showed slightly higher immunoreactivity in IP. The immunopositivity for synaptophysin was also higher in the IP group. There was a positive correlation between a-smooth muscle antibody, desmin, and synaptophysin expression and the degree of fibrosis. ECM protein markers showed no statistically significant differences between the three groups. Conclusion: Results of this work show that a significant number of IP cases might have an autoimmune etiology. There was a positive correlation between activated stellate cell marker expression and the degree of fibrosis.
引用
收藏
页码:239 / 242
页数:4
相关论文
共 50 条
  • [21] Senescence determines the fate of activated rat pancreatic stellate cells
    Fitzner, Brit
    Mueller, Sarah
    Walther, Michael
    Fischer, Madlen
    Engelmann, Robby
    Mueller-Hilke, Brigitte
    Puetzer, Brigitte M.
    Kreutzer, Michael
    Nizze, Horst
    Jaster, Robert
    JOURNAL OF CELLULAR AND MOLECULAR MEDICINE, 2012, 16 (11) : 2620 - 2630
  • [22] Activated pancreatic stellate cells express galectin-1
    Masamune, A
    Kikuta, K
    Satoh, M
    Suzuki, N
    Shimosegawa, T
    GASTROENTEROLOGY, 2005, 128 (04) : A84 - A84
  • [23] Autophagy Releases Lipid That Promotes Fibrogenesis by Activated Hepatic Stellate Cells in Mice and in Human Tissues
    Hernandez-Gea, Virginia
    Ghiassi-Nejad, Zahra
    Rozenfeld, Raphael
    Gordon, Ronald
    Fiel, Maria Isabel
    Yue, Zhenyu
    Czaja, Mark J.
    Friedman, Scott L.
    GASTROENTEROLOGY, 2012, 142 (04) : 938 - 946
  • [24] Regulation of fibrogenesis-related gene expression in activated hepatic stellate cells by hypoxia.
    Dai, ZH
    Ankoma-Sey, V
    HEPATOLOGY, 2001, 34 (04) : 514A - 514A
  • [25] Reversing pancreatic cancer immunosuppression through pharmacological targeting of activated pancreatic stellate cells
    Samain, Remi
    Cassant-Sourdy, Stephanie
    Jean, Christine
    Rochotte, Julia
    Muller, David
    Schmid, Herbert
    Martineau, Yvan
    Pyronnet, Stephane
    Bousquet, Corinne
    CLINICAL & EXPERIMENTAL METASTASIS, 2017, 34 (08) : 519 - 520
  • [26] Insulin promotes proliferation and fibrosing responses in activated pancreatic stellate cells
    Yang, Jiayue
    Waldron, Richard T.
    Su, Hsin-Yuan
    Moro, Aune
    Chang, Hui-Hua
    Eibl, Guido
    Ferreri, Kevin
    Kandeel, Fouad R.
    Lugea, Aurelia
    Li, Ling
    Pandol, Stephen J.
    AMERICAN JOURNAL OF PHYSIOLOGY-GASTROINTESTINAL AND LIVER PHYSIOLOGY, 2016, 311 (04): : G675 - G687
  • [27] Chemokine directed migration of activated stellate cells in pancreatic ductal adenocarcinoma
    Roy, Ishan
    Boyle, Kathleen A.
    Mackinnon, A. Craig
    Hwang, Rosa F.
    Tsai, Susan
    Evans, Douglas B.
    Dwinell, Michael B.
    CANCER RESEARCH, 2016, 76
  • [28] A Novel Mouse Model With Bigenic Targeting of Activated Pancreatic Stellate Cells
    Su, H. Y.
    Waldron, R. T.
    Pandol, S. J.
    Lugea, A.
    PANCREAS, 2017, 46 (10) : 1438 - 1438
  • [29] Isolation of Quiescent and Activated Human Pancreatic Stellate Cells for MicroRNA Profiling
    Barrera, L.
    Oldfield, F.
    Nunes, Q.
    Campbell, F.
    Lane, B.
    Andrews, T.
    Phillips, P.
    Greenhalf, W.
    Neoptolemos, J.
    Costello, E.
    PANCREAS, 2013, 42 (08) : 1339 - 1339
  • [30] Folate Decoration Supports the Targeting of Camptothecin Micelles against Activated Hepatic Stellate Cells and the Suppression of Fibrogenesis
    Xiang, Li
    Wang, Xin
    Shao, Yaru
    Jiao, Qiangqiang
    Cheng, Jiang
    Zheng, Xiaotong
    Zhou, Shaobing
    Chen, Yuping
    ACS APPLIED MATERIALS & INTERFACES, 2023, 15 (01) : 2030 - 2042