Expression and pathophysiological significance of carbohydrate response element binding protein (ChREBP) in the renal tubules of diabetic kidney

被引:11
|
作者
Suzuki, Susumu [1 ]
Yokoyama, Atsushi [1 ]
Noro, Erika [1 ]
Aoki, Satoshi [2 ]
Shimizu, Kyoko [1 ]
Shimada, Hiroki [1 ]
Sugawara, Akira [1 ]
机构
[1] Tohoku Univ, Dept Mol Endocrinol, Grad Sch Med, Sendai, Miyagi 9808575, Japan
[2] Tohoku Univ, Div Nephrol Endocrinol & Vasc Med, Grad Sch Med, Sendai, Miyagi 9808574, Japan
关键词
Carbohydrate response element binding protein (ChREBP); Diabetic nephropathy; Renal tubular damage; Reactive oxygen species; GENE-EXPRESSION; GLUCOSE; BETA; CELLS; NEPHROPATHY; INJURY; TXNIP;
D O I
10.1507/endocrj.EJ19-0133
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Carbohydrate response element binding protein (ChREBP), a glucose responsive transcription factor, mainly regulates expression of genes involved in glucose metabolism and lipogenesis. Recently, ChREBP is speculated to be involved in the onset and progression of diabetic nephropathy (DN). However, there exists no report regarding the localization and function of ChREBP in the kidney. Therefore, we analyzed the localization of Chrebp mRNA expression in the wild type (WT) mice kidney using laser microdissection method. and observed its dominant expression in the proximal tubules. In diabetic mice, mRNA expression of Chrebp target genes in the proximal tubules, including Chrebpf and thioredoxininteracting protein (Thrtip), significantly increased comparing with that of WT mice. Co-overexpression of ChREBP and its partner Mlx, in the absence of glucose, also increased TXNIP mRNA expression as well as high glucose in human proximal tubular epithelial cell line HK-2. Since TXNIP is well known to be involved in the production of reactive oxygen species (ROS), we next examined the effect of ChREBP/Mlx co-ovcrexpression, in the absence of glucose, on ROS production in IIK-2 cells. Interestingly, ChREBP/MIx co-overexpression also induced ROS production significantly as well as high glucose. Moreover, both high glucose-induced increase of TXNIP mRNA expression and ROS production were abrogated by ChREBP small interfering RNA transfection. Taken together, high glucose-activated ChREBP in the renal proximal tubules induce the expression of TXNIP mRNA, resulting in the production of ROS which may cause renal tubular damage. It is therefore speculated that ChREBP is involved in the onset and progression of DN.
引用
收藏
页码:335 / 345
页数:11
相关论文
共 50 条
  • [21] Deletion of hepatic carbohydrate response element binding protein (ChREBP) impairs glucose homeostasis and hepatic insulin sensitivity in mice
    Jois, Tara
    Chen, Weiyi
    Howard, Victor
    Harvey, Rebecca
    Youngs, Kristina
    Thalmann, Claudia
    Saha, Pradip
    Chan, Lawrence
    Cowley, Michael A.
    Sleeman, Mark W.
    MOLECULAR METABOLISM, 2017, 6 (11): : 1381 - 1394
  • [22] Role of carbohydrate response element-binding protein (ChREBP) in generating an aerobic metabolic phenotype and in breast cancer progression
    R E Airley
    P McHugh
    A R Evans
    B Harris
    L Winchester
    F M Buffa
    W Al-Tameemi
    R Leek
    A L Harris
    British Journal of Cancer, 2014, 110 : 715 - 723
  • [23] Structural Characterization of a Unique Interface between Carbohydrate Response Element-binding Protein (ChREBP) and 14-3-3β Protein
    Ge, Qiang
    Huang, Nian
    Wynn, R. Max
    Li, Yang
    Du, Xinlin
    Miller, Bonnie
    Zhang, Hong
    Uyeda, Kosaku
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2012, 287 (50) : 41914 - 41921
  • [24] Impact of over-expression of carbohydrate response-element binding-protein (ChREBP) on pancreatic beta-cell gene expression profile and insulin secretion
    Diraison, F
    Xavier, GD
    Motakis, E
    Nason, GP
    Rutter, GA
    Leclerc, I
    DIABETOLOGIA, 2004, 47 : A162 - A162
  • [25] Regulation of the Aryl Hydrocarbon Receptor Nuclear Translocator (ARNT) gene expression by the Carbohydrate-Responsive Element Binding Protein (ChREBP)
    Noordeen, N. A.
    Khera, T.
    Xavier, G. da Silva
    Rutter, G. A.
    Leclerc, I.
    DIABETIC MEDICINE, 2008, 25
  • [26] Metabolite Regulation of Nucleo-cytosolic Trafficking of Carbohydrate Response Element-binding Protein (ChREBP) ROLE OF KETONE BODIES
    Nakagawa, Tsutomu
    Ge, Qiang
    Pawlosky, Robert
    Wynn, R. Max
    Veech, Richard L.
    Uyeda, Kosaku
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2013, 288 (39) : 28358 - 28367
  • [27] The transcription factor carbohydrate-response element-binding protein (ChREBP): A possible link between metabolic disease and cancer
    Iizuka, Katsumi
    BIOCHIMICA ET BIOPHYSICA ACTA-MOLECULAR BASIS OF DISEASE, 2017, 1863 (02): : 474 - 485
  • [28] Metabolite Regulation of Nuclear Localization of Carbohydrate-response Element-binding Protein (ChREBP) ROLE OF AMP AS AN ALLOSTERIC INHIBITOR
    Sato, Shogo
    Jung, Hunmin
    Nakagawa, Tsutomu
    Pawlosky, Robert
    Takeshima, Tomomi
    Lee, Wan-Ru
    Sakiyama, Haruhiko
    Laxman, Sunil
    Wynn, R. Max
    Tu, Benjamin P.
    MacMillan, John B.
    De Brabander, Jef K.
    Veech, Richard L.
    Uyeda, Kosaku
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2016, 291 (20) : 10515 - 10527
  • [29] Modulation of carbohydrate response element-binding protein ChREBP gene expression in 3T3-L1 adipocyte and rat adipose tissue
    He, ZB
    Jiang, T
    Wang, ZW
    Levi, M
    Li, JP
    DIABETES, 2004, 53 : A458 - A458
  • [30] Regulation of Nuclear Import/Export of Carbohydrate Response Element-binding Protein (ChREBP) INTERACTION OF AN α-HELIX OF ChREBP WITH THE 14-3-3 PROTEINS AND REGULATION BY PHOSPHORYLATION
    Sakiyama, Haruhiko
    Wynn, R. Max
    Lee, Wan-Ru
    Fukasawa, Masashi
    Mizuguchi, Hiroyuki
    Gardner, Kevin H.
    Repa, Joyce J.
    Uyeda, Kosaku
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2008, 283 (36) : 24899 - 24908