Haemolysis and perturbations in the systemic iron metabolism of suckling, copper-deficient mosaic mutant mice - an animal model of Menkes disease.

The biological interaction between copper and iron is best exemplified by the decreased activity of multicopper ferroxidases under conditions of copper deficiency that limits the availability of iron for erythropoiesis. However, little is known about how copper deficiency affects iron homeostasis th...

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Main Authors: Małgorzata Lenartowicz, Rafał R Starzyński, Wojciech Krzeptowski, Paweł Grzmil, Aleksandra Bednarz, Mateusz Ogórek, Olga Pierzchała, Robert Staroń, Anna Gajowiak, Paweł Lipiński
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4172471?pdf=render
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spelling doaj-34726466e3924bb787e8b68a0371e3542020-11-24T21:35:48ZengPublic Library of Science (PLoS)PLoS ONE1932-62032014-01-0199e10764110.1371/journal.pone.0107641Haemolysis and perturbations in the systemic iron metabolism of suckling, copper-deficient mosaic mutant mice - an animal model of Menkes disease.Małgorzata LenartowiczRafał R StarzyńskiWojciech KrzeptowskiPaweł GrzmilAleksandra BednarzMateusz OgórekOlga PierzchałaRobert StarońAnna GajowiakPaweł LipińskiThe biological interaction between copper and iron is best exemplified by the decreased activity of multicopper ferroxidases under conditions of copper deficiency that limits the availability of iron for erythropoiesis. However, little is known about how copper deficiency affects iron homeostasis through alteration of the activity of other copper-containing proteins, not directly connected with iron metabolism, such as superoxide dismutase 1 (SOD1). This antioxidant enzyme scavenges the superoxide anion, a reactive oxygen species contributing to the toxicity of iron via the Fenton reaction. Here, we analyzed changes in the systemic iron metabolism using an animal model of Menkes disease: copper-deficient mosaic mutant mice with dysfunction of the ATP7A copper transporter. We found that the erythrocytes of these mutants are copper-deficient, display decreased SOD1 activity/expression and have cell membrane abnormalities. In consequence, the mosaic mice show evidence of haemolysis accompanied by haptoglobin-dependent elimination of haemoglobin (Hb) from the circulation, as well as the induction of haem oxygenase 1 (HO1) in the liver and kidney. Moreover, the hepcidin-ferroportin regulatory axis is strongly affected in mosaic mice. These findings indicate that haemolysis is an additional pathogenic factor in a mouse model of Menkes diseases and provides evidence of a new indirect connection between copper deficiency and iron metabolism.http://europepmc.org/articles/PMC4172471?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Małgorzata Lenartowicz
Rafał R Starzyński
Wojciech Krzeptowski
Paweł Grzmil
Aleksandra Bednarz
Mateusz Ogórek
Olga Pierzchała
Robert Staroń
Anna Gajowiak
Paweł Lipiński
spellingShingle Małgorzata Lenartowicz
Rafał R Starzyński
Wojciech Krzeptowski
Paweł Grzmil
Aleksandra Bednarz
Mateusz Ogórek
Olga Pierzchała
Robert Staroń
Anna Gajowiak
Paweł Lipiński
Haemolysis and perturbations in the systemic iron metabolism of suckling, copper-deficient mosaic mutant mice - an animal model of Menkes disease.
PLoS ONE
author_facet Małgorzata Lenartowicz
Rafał R Starzyński
Wojciech Krzeptowski
Paweł Grzmil
Aleksandra Bednarz
Mateusz Ogórek
Olga Pierzchała
Robert Staroń
Anna Gajowiak
Paweł Lipiński
author_sort Małgorzata Lenartowicz
title Haemolysis and perturbations in the systemic iron metabolism of suckling, copper-deficient mosaic mutant mice - an animal model of Menkes disease.
title_short Haemolysis and perturbations in the systemic iron metabolism of suckling, copper-deficient mosaic mutant mice - an animal model of Menkes disease.
title_full Haemolysis and perturbations in the systemic iron metabolism of suckling, copper-deficient mosaic mutant mice - an animal model of Menkes disease.
title_fullStr Haemolysis and perturbations in the systemic iron metabolism of suckling, copper-deficient mosaic mutant mice - an animal model of Menkes disease.
title_full_unstemmed Haemolysis and perturbations in the systemic iron metabolism of suckling, copper-deficient mosaic mutant mice - an animal model of Menkes disease.
title_sort haemolysis and perturbations in the systemic iron metabolism of suckling, copper-deficient mosaic mutant mice - an animal model of menkes disease.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2014-01-01
description The biological interaction between copper and iron is best exemplified by the decreased activity of multicopper ferroxidases under conditions of copper deficiency that limits the availability of iron for erythropoiesis. However, little is known about how copper deficiency affects iron homeostasis through alteration of the activity of other copper-containing proteins, not directly connected with iron metabolism, such as superoxide dismutase 1 (SOD1). This antioxidant enzyme scavenges the superoxide anion, a reactive oxygen species contributing to the toxicity of iron via the Fenton reaction. Here, we analyzed changes in the systemic iron metabolism using an animal model of Menkes disease: copper-deficient mosaic mutant mice with dysfunction of the ATP7A copper transporter. We found that the erythrocytes of these mutants are copper-deficient, display decreased SOD1 activity/expression and have cell membrane abnormalities. In consequence, the mosaic mice show evidence of haemolysis accompanied by haptoglobin-dependent elimination of haemoglobin (Hb) from the circulation, as well as the induction of haem oxygenase 1 (HO1) in the liver and kidney. Moreover, the hepcidin-ferroportin regulatory axis is strongly affected in mosaic mice. These findings indicate that haemolysis is an additional pathogenic factor in a mouse model of Menkes diseases and provides evidence of a new indirect connection between copper deficiency and iron metabolism.
url http://europepmc.org/articles/PMC4172471?pdf=render
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