Regulatory mechanisms of intestinal iron absorption-Uncovering of a fast-response mechanism based on DMT1 and ferroportin endocytosis

被引:26
作者
Nunez, Marco T. [1 ,2 ]
机构
[1] Univ Chile, Fac Ciencias, Dept Biol, Santiago 3425, Chile
[2] Univ Chile, Fac Ciencias, Millennium Inst Cell Dynam & Biotechnol, Santiago 3425, Chile
关键词
divalent metal transporter 1; mucosal block; iron transport; antisense; DIVALENT-METAL TRANSPORTER-1; MUCOSAL BLOCK; BETA-THALASSEMIA; HUMAN HEPHAESTIN; PLASMA-MEMBRANE; EXPRESSION; HEPCIDIN; PROTEIN; RAT; MACROPHAGES;
D O I
10.1002/biof.84
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
Knowledge on the intestinal iron transport process and the regulation of body iron stores has greatly increased during the last decade. The liver, through the sensing of circulating iron, is now recognized as the central organ in this regulation. High iron levels induce the synthesis of hepcidin, which in turn decreases circulating iron by inhibiting its recycling from macrophages and its absorption at the intestine. Another mechanism for the control of iron absorption by the enterocyte is an active Iron Responsive Element (IRE)/Iron Regulatory Protein (IRP) system. The IRE/IRP system regulates the expression of iron uptake and storage proteins thus regulating iron absorption. Similarly, increasing evidence points to the transcriptional regulation of both divalent metal transporter 1 (DMT1) and ferroportin expression. A new mechanism of regulation related to a phenomenon called the mucosa, block is starting to be unveiled. The mucosal block describes the ability of an initial dose of ingested iron to block absorption of a second dose given 2-4 h later. Here, we review the mechanisms involved in the expression of DMT1 and ferroportin, and present recent evidence on the molecular components and cellular processes involved in the mucosal block response. Our studies indicate that mucosal block is a fast-response endocytic mechanism destined to decrease intestinal iron absorption during a high ingest of iron.
引用
收藏
页码:88 / 97
页数:10
相关论文
共 87 条
[21]   A rapid decrease in the expression of DMT1 and Dcytb but not Ireg1 or hephaestin explains the mucosal block phenomenon of iron absorption [J].
Frazer, DM ;
Wilkins, SJ ;
Becker, EM ;
Murphy, TL ;
Vulpe, CD ;
McKie, AT ;
Anderson, GJ .
GUT, 2003, 52 (03) :340-346
[22]   Hepcidin expression inversely correlates with the expression of duodenal iron transporters and iron absorption in rats [J].
Frazer, DM ;
Wilkins, SJ ;
Becker, EM ;
Vulpe, CD ;
McKie, AT ;
Trinder, D ;
Anderson, GJ .
GASTROENTEROLOGY, 2002, 123 (03) :835-844
[23]   Delayed hepcidin response explains the lag period in iron absorption following a stimulus to increase erythropoiesis [J].
Frazer, DM ;
Inglis, HR ;
Wilkins, SJ ;
Millard, KN ;
Steele, TM ;
McLaren, GD ;
McKie, AT ;
Vulpe, CD ;
Anderson, GJ .
GUT, 2004, 53 (10) :1509-1515
[24]   Iron regulatory proteins are essential for intestinal function and control key iron absorption molecules in the duodenum [J].
Galy, Bruno ;
Ferring-Appel, Dunja ;
Kaden, Sylvia ;
Groene, Hermann-Josef ;
Hentze, Matthias W. .
CELL METABOLISM, 2008, 7 (01) :79-85
[25]  
GANZ T, 1990, AM J PHYSIOL-GASTR L, V290, pG199
[26]   Overexpression of the ferritin iron-responsive element decreases the labile iron pool and abolishes the regulation of iron absorption by intestinal epithelial (Caco-2) cells [J].
Gárate, MA ;
Núñez, MT .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2000, 275 (03) :1651-1655
[27]   Ineffective erythropoiesis in β-thalassemia is characterized by increased iron absorption mediated by down-regulation of hepcidin and up-regulation of ferroportin [J].
Gardenghi, Sara ;
Marongiu, Maria F. ;
Ramos, Pedro ;
Guy, Ella ;
Breda, Laura ;
Chadburn, Amy ;
Liu, YiFang ;
Amariglio, Ninette ;
Rechavi, Gideon ;
Rachmilewitz, Eliezer A. ;
Breuer, William ;
Cabantchik, Z. Ioav ;
Wrighting, Diedra M. ;
Andrews, Nancy C. ;
de Sousa, Maria ;
Giardina, Patricia J. ;
Grady, Robert W. ;
Rivella, Stefano .
BLOOD, 2007, 109 (11) :5027-5035
[28]   DMT1: A mammalian transporter for multiple metals [J].
Garrick, MD ;
Dolan, KG ;
Horbinski, C ;
Ghio, AJ ;
Higgins, D ;
Porubcin, M ;
Moore, EG ;
Hainsworth, LN ;
Umbreit, JN ;
Conrad, ME ;
Feng, L ;
Lis, A ;
Roth, JA ;
Singleton, S ;
Garrick, LM .
BIOMETALS, 2003, 16 (01) :41-54
[29]   Recombinant expression and functional characterization of human hephaestin: A multicopper oxidase with ferroxidase activity [J].
Griffiths, TAM ;
Mauk, AG ;
MacGillivray, RTA .
BIOCHEMISTRY, 2005, 44 (45) :14725-14731
[30]   Cloning and characterization of a mammalian proton-coupled metal-ion transporter [J].
Gunshin, H ;
Mackenzie, B ;
Berger, UV ;
Gunshin, Y ;
Romero, MF ;
Boron, WF ;
Nussberger, S ;
Gollan, JL ;
Hediger, MA .
NATURE, 1997, 388 (6641) :482-488