Dietary iron intake rapidly influences iron regulatory proteins, ferritin subunits and mitochondrial aconitase in rat liver

被引:39
作者
Chen, OS [1 ]
Blemings, KP [1 ]
Schalinske, KL [1 ]
Eisenstein, RS [1 ]
机构
[1] Univ Wisconsin, Dept Nutr Sci, Madison, WI 53706 USA
关键词
iron; iron regulatory proteins; mitochondrial aconitase; ferritin; rats;
D O I
10.1093/jn/128.3.525
中图分类号
R15 [营养卫生、食品卫生]; TS201 [基础科学];
学科分类号
100403 ;
摘要
Iron regulatory protein 1 (IRP1) and IRP2 are cytoplasmic RNA binding proteins that are central regulators of mammalian iron homeostasis. We investigated the time-dependent effect of dietary iron deficiency on liver IRP activity in relation to the abundance of ferritin and the iron-sulfur protein mitochondrial aconitase (macon), which are targets of IRP action. Rats were fed a diet containing 2 or 34 mg iron/kg diet for 1-28 d. Liver IRP activity increased rapidly in rats fed the iron-deficient diet with IRP1 stimulated by d 1 and IRP2 by d 2. The maximal activation of IRP2 was five-fold (d 7) and three-fold (d 4) for IRP1. By d 4, liver ferritin subunits were undetectable and m-acon abundance eventually fell by 50% (P < 0.05) in iron-deficient rats. m-Acon abundance declined most rapidly from d 1 to 11 and in a manner that was suggestive of a cause and effect type of relationship between IRP activity and m-acon abundance. In liver, iron deficiency did not decrease the activity of cytosolic aconitase, catalase or complex I of the electron transport chain nor was there an effect on the maximal rate of mitochondrial oxygen consumption with the use of malate and pyruvate as substrates. Thus, the decline in macon abundance in iron deficiency is not reflective of a global decrease in liver iron-sulfur proteins nor does it appear to limit ATP production, Our results suggest a novel role for m-acon in cellular iron metabolism. We conclude that, in liver, iron deficiency preferentially affects the activities of IRPs and the targets of IRP action.
引用
收藏
页码:525 / 535
页数:11
相关论文
共 48 条
  • [1] CITRATE-MEDIATED EXCHANGE OF FE3+ AMONG TRANSFERRIN MOLECULES
    AISEN, P
    LEIBMAN, A
    [J]. BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1968, 32 (02) : 220 - &
  • [2] [Anonymous], 1995, Nutrient Requirements of Laboratory Animals, VFourth, DOI [10.17226/4758, DOI 10.17226/4758]
  • [3] RECIPROCAL CHANGES OF MUSCLE OXIDASES AND LIVER-ENZYMES WITH RECOVERY FROM IRON-DEFICIENCY
    AZEVEDO, JL
    WILLIS, WT
    TURCOTTE, LP
    ROVNER, AS
    DALLMAN, PR
    BROOKS, GA
    [J]. AMERICAN JOURNAL OF PHYSIOLOGY, 1989, 256 (03): : E401 - E405
  • [4] BAILEYWOOD R, 1975, BRIT J EXP PATHOL, V56, P193
  • [5] IRON RELEASE FROM ISOLATED HEPATOCYTES
    BAKER, E
    VICARY, FR
    HUEHNS, ER
    [J]. BRITISH JOURNAL OF HAEMATOLOGY, 1981, 47 (04) : 493 - 504
  • [6] Beard JL, 1996, NUTR REV, V54, P295, DOI 10.1111/j.1753-4887.1996.tb03794.x
  • [7] BEERS RF, 1952, J BIOL CHEM, V195, P133
  • [8] IRON ENZYMES IN IRON DEFICIENCY .5. SUCCINIC DEHYDROGENASE IN RAT LIVER, KIDNEY AND HEART
    BEUTLER, E
    BLAISDELL, RK
    [J]. BLOOD, 1960, 15 (01) : 30 - 35
  • [9] BEUTLER E, 1958, C J LAB CLIN MED, V52, P694
  • [10] XANTHINE OXIDASE FOR CALIBRATION OF OXYGEN ELECTRODE APPARATUS
    BILLIAR, RB
    KNAPPENBERGER, M
    LITTLE, B
    [J]. ANALYTICAL BIOCHEMISTRY, 1970, 36 (01) : 101 - +