Effects of carboxylic acids on the uptake of non-transferrin-bound iron by astrocytes

被引:7
|
作者
Keenan, Belinda M. [1 ]
Robinson, Stephen R. [1 ]
Bishop, Glenda M. [1 ]
机构
[1] Monash Univ, Sch Psychol & Psychiat, Clayton, Vic 3800, Australia
关键词
Citric acid; Malic acid; NTBI; Neurodegeneration; Tartaric acid; CEREBROSPINAL-FLUID; ORGANIC-ACIDS; IN-VITRO; CACO-2; CELLS; RAT-BRAIN; CITRATE; METABOLISM; ABSORPTION; EXPRESSION; ISCHEMIA;
D O I
10.1016/j.neuint.2010.03.009
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
The concentrations of non-transferrin-bound iron are elevated in the brain during pathological conditions such as stroke and Alzheimer's disease. Astrocytes are specialised for sequestering this iron, however little is known about the mechanisms involved. Carboxylates, such as citrate, have been reported to facilitate iron uptake by intestinal cells. Citrate binds iron and limits its redox activity. The presence of high citrate concentrations in the interstitial fluid of the brain suggests that citrate may be an important ligand for iron transport by astrocytes. This study investigates whether iron accumulation by cultured rat astrocytes is facilitated by citrate or other carboxylates. Contrary to expectations, citrate, tartrate and malate were found to block iron accumulation in a concentration-dependent manner; alpha-ketoglutarate had limited effects, while fumarate, succinate and glutarate had no effect. This blockade was not due to an inhibition of ferric reductase activity. Instead, it appeared to be related to the capacity of these carboxylates to bind iron, since phosphate, which also binds iron, diminished the capacity of citrate, tartrate and malate to block the cellular accumulation of iron. These findings raise the possibility that citrate may have therapeutic potential in the management of neurodegenerative conditions that involve cellular iron overload. (c) 2010 Elsevier Ltd. All rights reserved.
引用
收藏
页码:843 / 849
页数:7
相关论文
共 50 条
  • [1] Angiotensin II inhibits uptake of transferrin-bound iron but not non-transferrin-bound iron by cultured astrocytes
    Huang, Suna
    Du, Fang
    Li, Lan
    Liu, Yong
    Liu, Yuhong
    Zhang, Chao
    Qian, Zhong Ming
    NEUROPEPTIDES, 2014, 48 (03) : 161 - 166
  • [2] Accumulation of Non-Transferrin-Bound Iron by Neurons, Astrocytes, and Microglia
    Glenda M. Bishop
    Theresa N. Dang
    Ralf Dringen
    Stephen R. Robinson
    Neurotoxicity Research, 2011, 19 : 443 - 451
  • [4] Effects of overexpression of the transferrin receptor on the rates of transferrin recycling and uptake of non-transferrin-bound iron
    Callus, BA
    Iacopetta, BJ
    Kuhn, LC
    Morgan, EH
    EUROPEAN JOURNAL OF BIOCHEMISTRY, 1996, 238 (02): : 463 - 469
  • [5] Accumulation of Non-Transferrin-Bound Iron by Neurons, Astrocytes, and Microglia
    Bishop, Glenda M.
    Dang, Theresa N.
    Dringen, Ralf
    Robinson, Stephen R.
    NEUROTOXICITY RESEARCH, 2011, 19 (03) : 443 - 451
  • [6] Transferrin receptor 2 mediates uptake of transferrin-bound and non-transferrin-bound iron
    Graham, Ross M.
    Reutens, Gail M.
    Herbison, Carly E.
    Delima, Roheeth D.
    Chua, Anita C. G.
    Olynyk, John K.
    Trinder, Debbie
    JOURNAL OF HEPATOLOGY, 2008, 48 (02) : 327 - 334
  • [7] NON-TRANSFERRIN-BOUND IRON UPTAKE BY ISOLATED RAT HEPATOCYTES
    BARISANI, D
    BERG, CL
    WESSLINGRESNICK, M
    GOLLAN, JL
    GASTROENTEROLOGY, 1994, 106 (04) : A864 - A864
  • [8] Non-transferrin-bound iron transporters
    Knutson, Mitchell D.
    FREE RADICAL BIOLOGY AND MEDICINE, 2019, 133 : 101 - 111
  • [9] SPECIATION OF NON-TRANSFERRIN-BOUND IRON
    Ma, Yongmin
    Hider, Robert
    AMERICAN JOURNAL OF HEMATOLOGY, 2016, 91 (03) : E40 - E40
  • [10] Pitfalls in assessing specificity and affinity of non-transferrin-bound iron uptake
    Brunner-Döpper, L
    Kriegerbeckova, K
    Kovar, J
    Goldenberg, H
    ANALYTICAL BIOCHEMISTRY, 1998, 261 (01) : 128 - 130