Signaling between pancreatic β cells and macrophages via S100 calcium-binding protein A8 exacerbates β-cell apoptosis and islet inflammation

被引:27
|
作者
Inoue, Hideaki [1 ]
Shirakawa, Jun [1 ]
Togashi, Yu [1 ]
Tajima, Kazuki [1 ]
Okuyama, Tomoko [1 ]
Kyohara, Mayu [1 ]
Tanaka, Yui [1 ]
Orime, Kazuki [1 ,4 ]
Saisho, Yoshifumi [2 ]
Yamada, Taketo [3 ]
Shibue, Kimitaka [4 ]
Kulkarni, Rohit N. [4 ]
Terauchi, Yasuo [1 ]
机构
[1] Yokohama City Univ, Grad Sch Med, Dept Endocrinol & Metab, Kanazawa Ku, 3-9 Fuku Ura, Yokohama, Kanagawa 2360004, Japan
[2] Keio Univ, Sch Med, Dept Internal Med, Tokyo 1088345, Japan
[3] Keio Univ, Sch Med, Dept Pathol, Tokyo 1088345, Japan
[4] Harvard Med Sch, Harvard Stem Cell Inst, Brigham & Womens Hosp,Dept Med, Sect Islet Cell & Regenerat Biol,Joslin Diabet Ct, Boston, MA 02138 USA
关键词
FACTOR-KAPPA-B; GLUCOKINASE ACTIVATION; GLYCEMIC CONTROL; EXPRESSION; STRESS; CHEMOATTRACTANTS; PROLIFERATION; IL-1-BETA; INHIBITOR; MONOCYTES;
D O I
10.1074/jbc.M117.809228
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Chronic low-grade inflammation in the pancreatic islets is observed in individuals with type 2 diabetes, and macrophage levels are elevated in the islets of these individuals. However, the molecular mechanisms underlying the interactions between the pancreatic beta cells and macrophages and their involvement in inflammation are not fully understood. Here, we investigated the role of S100 calcium-binding protein A8 (S100A8), a member of the damage-associated molecular pattern molecules (DAMPs), in beta-cell inflammation. Co-cultivation of pancreatic islets with unstimulated peritoneal macrophages in the presence of palmitate (to induce lipotoxicity) and high glucose (to induce glucotoxicity) synergistically increased the expression and release of islet-produced S100A8 in a Toll-like receptor 4 (TLR4)-independent manner. Consistently, a significant increase in the expression of the S100a8 gene was observed in the islets of diabetic db/db mice. Furthermore, the islet-derived S100A8 induced TLR4-mediated inflammatory cytokine production by migrating macrophages. When human islet cells were co-cultured with U937 human monocyte cells, the palmitate treatment up-regulated S100A8 expression. This S100A8-mediated interaction between islets and macrophages evoked beta-cell apoptosis, which was ameliorated by TLR4 inhibition in the macrophages or S100A8 neutralization in the pancreatic islets. Of note, both glucotoxicity and lipotoxicity triggered S100A8 secretion from the pancreatic islets, which in turn promoted macrophage infiltration of the islets. Taken together, a positive feedback loop between islet-derived S100A8 and macrophages drives beta-cell apoptosis and pancreatic islet inflammation. We conclude that developing therapeutic approaches to inhibit S100A8 may serve to prevent beta-cellloss in patients with diabetes.
引用
下载
收藏
页码:5934 / 5946
页数:13
相关论文
共 50 条
  • [31] In Vivo Profiling of the Disease-Inducible Promoters Serum Amyloid A3 and S100 Calcium Binding Protein A8 for Personalized Gene Therapy in Arthritis
    Vermeij, Eline A.
    Arntz, Onno J.
    van Lent, Peter L. E. M.
    van den Berg, Wim B.
    van de Loo, Fons A. J.
    ARTHRITIS AND RHEUMATISM, 2011, 63 (10): : S75 - S76
  • [32] The microRNA miR-124 inhibits vascular smooth muscle cell proliferation by targeting S100 calcium-binding protein A4 (S100A4)
    Choe, Nakwon
    Kwon, Duk-Hwa
    Shin, Sera
    Kim, Yong Sook
    Kim, Young-Kook
    Kim, Jaetaek
    Ahn, Youngkeun
    Eom, Gwang H.
    Kook, Hyun
    FEBS LETTERS, 2017, 591 (07) : 1041 - 1052
  • [33] Clinical significance of calcium-binding protein S100A8 and S100A9 expression in non-small cell lung cancer
    Huang, He
    Huang, Qingdong
    Tang, Tingyu
    Gu, Liang
    Du, Jianzong
    Li, Zhijun
    Lu, Xiaoling
    Zhou, Xiaoxi
    THORACIC CANCER, 2018, 9 (07) : 800 - 804
  • [34] S100 calcium-binding protein A12 knockdown ameliorates hypoxiareoxygenation-induced inflammation and apoptosis in human cardiomyocytes by regulating caspase-4-mediated non-classical pyroptosis
    Li, Qiming
    Deng, Gang
    Gao, Yuzhang
    GENERAL PHYSIOLOGY AND BIOPHYSICS, 2022, 41 (04) : 287 - 297
  • [35] Protective effect and mechanism of rat recombinant S100 calcium-binding protein A4 on oxidative stress injury of rat vascular endothelial cells
    Meng, Xiangyan
    Gao, Xiujie
    Zhang, Zhiqing
    Zhou, Xuesi
    Wu, Lei
    Yang, Miaomiao
    Wang, Kun
    Ren, Hanlin
    Sun, Bei
    Wang, Tianhui
    ONCOLOGY LETTERS, 2018, 16 (03) : 3614 - 3622
  • [36] Myeloid-related protein (MRP) 8 and MRP14, calcium-binding proteins of the S100 family, are secreted by activated monocytes via a novel, tubulin-dependent pathway
    Rammes, A
    Roth, J
    Goebeler, M
    Klempt, M
    Hartmann, M
    Sorg, C
    JOURNAL OF BIOLOGICAL CHEMISTRY, 1997, 272 (14) : 9496 - 9502
  • [37] Calcium and Fos involvement in brain-derived Ca2+-binding protein (S100)-dependent apoptosis in rat phaeochromocytoma cells
    Fulle, S
    Pietrangelo, T
    Mariggiò, MA
    Lorenzon, P
    Racanicchi, L
    Mozrzymas, J
    Guarnieri, S
    Zucconi-Grassi, G
    Fanò, G
    EXPERIMENTAL PHYSIOLOGY, 2000, 85 (03) : 243 - 253
  • [38] S100 calcium binding proteins A8 and A9, lung surfactant protein-C, and B cell markers in acute rejection of renal transplants in relation to chronic allograft nephropathy.
    Eikmans, M
    Roos, MC
    Sijpkens, YWJ
    Erchen, J
    Baelde, HJ
    de Fijter, HW
    Paul, LC
    de Heer, E
    Bruijn, JA
    AMERICAN JOURNAL OF TRANSPLANTATION, 2004, 4 : 166 - 167
  • [39] Up-regulated S100 calcium binding protein A8 in Plasmodium-infected patients correlates with CD4+CD25+Foxp3 regulatory T cell generation
    Hyeong-Woo Lee
    Tong-Soo Kim
    Yoon-Joong Kang
    Jung-Yeon Kim
    Sangeun Lee
    Won-Ja Lee
    Youngjoo Sohn
    Malaria Journal, 14
  • [40] S100 Calcium Binding Protein A11 (S100A11) Promotes The Proliferation, Migration And Invasion Of Cervical Cancer Cells, And Activates Wnt/β-Catenin Signaling
    Meng, Man
    Sang, Lin
    Wang, Xiangyu
    ONCOTARGETS AND THERAPY, 2019, 12 : 8675 - 8685