Literature DB >> 25115800

Hepcidin Suppresses Brain Iron Accumulation by Downregulating Iron Transport Proteins in Iron-Overloaded Rats.

Fang Du1, Zhong-Ming Qian, Qianqian Luo, Wing-Ho Yung, Ya Ke.   

Abstract

Iron accumulates progressively in the brain with age, and iron-induced oxidative stress has been considered as one of the initial causes for Alzheimer's disease (AD) and Parkinson's disease (PD). Based on the role of hepcidin in peripheral organs and its expression in the brain, we hypothesized that this peptide has a role to reduce iron in the brain and hence has the potential to prevent or delay brain iron accumulation in iron-associated neurodegenerative disorders. Here, we investigated the effects of hepcidin expression adenovirus (ad-hepcidin) and hepcidin peptide on brain iron contents, iron transport across the brain-blood barrier, iron uptake and release, and also the expression of transferrin receptor-1 (TfR1), divalent metal transporter 1 (DMT1), and ferroportin 1 (Fpn1) in cultured microvascular endothelial cells and neurons. We demonstrated that hepcidin significantly reduced brain iron in iron-overloaded rats and suppressed transport of transferrin-bound iron (Tf-Fe) from the periphery into the brain. Also, the peptide significantly inhibited expression of TfR1, DMT1, and Fpn1 as well as reduced Tf-Fe and non-transferrin-bound iron uptake and iron release in cultured microvascular endothelial cells and neurons, while downregulation of hepcidin with hepcidin siRNA retrovirus generated opposite results. We concluded that, under iron-overload, hepcidin functions to reduce iron in the brain by downregulating iron transport proteins. Upregulation of brain hepcidin by ad-hepcidin emerges as a new pharmacological treatment and prevention for iron-associated neurodegenerative disorders.

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Year:  2014        PMID: 25115800     DOI: 10.1007/s12035-014-8847-x

Source DB:  PubMed          Journal:  Mol Neurobiol        ISSN: 0893-7648            Impact factor:   5.590


  46 in total

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2.  Iron on the brain.

Authors:  T A Rouault
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3.  Ceruloplasmin promotes iron uptake rather than release in BT325 cells.

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4.  Effect of lipid peroxidation on transferrin-free iron uptake by rabbit reticulocytes.

Authors:  Z M Qian; P L Tang; E H Morgan
Journal:  Biochim Biophys Acta       Date:  1996-02-29

5.  Transferrin is required for normal distribution of 59Fe and 54Mn in mouse brain.

Authors:  E A Malecki; B M Cook; A G Devenyi; J L Beard; J R Connor
Journal:  J Neurol Sci       Date:  1999-11-30       Impact factor: 3.181

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Authors:  Wayne A Cass; Richard Grondin; Anders H Andersen; Zhiming Zhang; Peter A Hardy; Lindsay K Hussey-Andersen; William S Rayens; Greg A Gerhardt; Don M Gash
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7.  Increasing striatal iron content associated with normal aging.

Authors:  W R Martin; F Q Ye; P S Allen
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8.  Post-transcriptional expression of DMT1 in the heart of rat.

Authors:  Ya Ke; Yin Yin Chen; Yan Zhong Chang; Xiang Lin Duan; Kwok Ping Ho; De He Jiang; Kui Wang; Zhong Ming Qian
Journal:  J Cell Physiol       Date:  2003-07       Impact factor: 6.384

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Authors:  Xiao Hu Ge; Qin Wang; Zhong Ming Qian; Li Zhu; Fang Du; Wing Ho Yung; Lei Yang; Ya Ke
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7.  Overdosing on iron: Elevated iron and degenerative brain disorders.

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8.  Prenatal Alcohol Exposure Alters Fetal Iron Distribution and Elevates Hepatic Hepcidin in a Rat Model of Fetal Alcohol Spectrum Disorders.

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