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1.
Blood ; 143(23): 2433-2437, 2024 Jun 06.
Article in English | MEDLINE | ID: mdl-38518102

ABSTRACT

ABSTRACT: Iron-mediated induction of bone morphogenetic protein (BMP)6 expression by liver endothelial cells is essential for iron homeostasis regulation. We used multiple dietary and genetic mouse cohorts to demonstrate a minor functional role for the metal-ion transporter ZIP8 in regulating BMP6 expression under high-iron conditions.


Subject(s)
Bone Morphogenetic Protein 6 , Cation Transport Proteins , Iron , Animals , Bone Morphogenetic Protein 6/metabolism , Bone Morphogenetic Protein 6/genetics , Mice , Cation Transport Proteins/metabolism , Cation Transport Proteins/genetics , Iron/metabolism , Endothelial Cells/metabolism , Mice, Knockout , Gene Expression Regulation , Liver/metabolism , Mice, Inbred C57BL , Homeostasis
2.
Blood ; 142(15): 1312-1322, 2023 10 12.
Article in English | MEDLINE | ID: mdl-37478395

ABSTRACT

Hepcidin is the master regulator of systemic iron homeostasis. The bone morphogenetic protein (BMP) signaling pathway is a critical regulator of hepcidin expression in response to iron and erythropoietic drive. Although endothelial-derived BMP6 and BMP2 ligands have key functional roles as endogenous hepcidin regulators, both iron and erythropoietic drives still regulate hepcidin in mice lacking either or both ligands. Here, we used mice with an inactivating Bmp5 mutation (Bmp5se), either alone or together with a global or endothelial Bmp6 knockout, to investigate the functional role of BMP5 in hepcidin and systemic iron homeostasis regulation. We showed that Bmp5se-mutant mice exhibit hepcidin deficiency at age 10 days, blunted hepcidin induction in response to oral iron gavage, and mild liver iron loading when fed on a low- or high-iron diet. Loss of 1 or 2 functional Bmp5 alleles also leads to increased iron loading in Bmp6-heterozygous mice and more profound hemochromatosis in global or endothelial Bmp6-knockout mice. Moreover, double Bmp5- and Bmp6-mutant mice fail to induce hepcidin in response to long-term dietary iron loading. Finally, erythroferrone binds directly to BMP5 and inhibits BMP5 induction of hepcidin in vitro. Although erythropoietin suppresses hepcidin in Bmp5se-mutant mice, it fails to suppress hepcidin in double Bmp5- and Bmp6-mutant males. Together, these data demonstrate that BMP5 plays a functional role in hepcidin and iron homeostasis regulation, particularly under conditions in which BMP6 is limited.


Subject(s)
Hemochromatosis , Hepcidins , Animals , Male , Mice , Bone Morphogenetic Protein 6/metabolism , Hemochromatosis/genetics , Hepcidins/genetics , Hepcidins/metabolism , Homeostasis , Iron/metabolism , Liver/metabolism , Mice, Knockout
3.
Blood ; 141(4): 422-432, 2023 01 26.
Article in English | MEDLINE | ID: mdl-36322932

ABSTRACT

Transferrin receptor 1 (TfR1) performs a critical role in cellular iron uptake. Hepatocyte TfR1 is also proposed to influence systemic iron homeostasis by interacting with the hemochromatosis protein HFE to regulate hepcidin production. Here, we generated hepatocyte Tfrc knockout mice (Tfrcfl/fl;Alb-Cre+), either alone or together with Hfe knockout or ß-thalassemia, to investigate the extent to which hepatocyte TfR1 function depends on HFE, whether hepatocyte TfR1 impacts hepcidin regulation by serum iron and erythropoietic signals, and its contribution to hepcidin suppression and iron overload in ß-thalassemia. Compared with Tfrcfl/fl;Alb-Cre- controls, Tfrcfl/fl;Alb-Cre+ mice displayed reduced serum and liver iron; mildly reduced hematocrit, mean cell hemoglobin, and mean cell volume; increased erythropoietin and erythroferrone; and unchanged hepcidin levels that were inappropriately high relative to serum iron, liver iron, and erythroferrone levels. However, ablation of hepatocyte Tfrc had no impact on iron phenotype in Hfe knockout mice. Tfrcfl/fl;Alb-Cre+ mice also displayed a greater induction of hepcidin by serum iron compared with Tfrcfl/fl;Alb-Cre- controls. Finally, although acute erythropoietin injection similarly reduced hepcidin in Tfrcfl/fl;Alb-Cre+ and Tfrcfl/fl;Alb-Cre- mice, ablation of hepatocyte Tfrc in a mouse model of ß-thalassemia intermedia ameliorated hepcidin deficiency and liver iron loading. Together, our data suggest that the major nonredundant function of hepatocyte TfR1 in iron homeostasis is to interact with HFE to regulate hepcidin. This regulatory pathway is modulated by serum iron and contributes to hepcidin suppression and iron overload in murine ß-thalassemia.


Subject(s)
Hemochromatosis Protein , Iron , Receptors, Transferrin , beta-Thalassemia , Animals , Mice , beta-Thalassemia/genetics , beta-Thalassemia/metabolism , Erythropoietin/metabolism , Hemochromatosis Protein/genetics , Hemochromatosis Protein/metabolism , Hepatocytes/metabolism , Hepcidins/genetics , Hepcidins/metabolism , Homeostasis , Iron/metabolism , Iron Overload/genetics , Iron Overload/metabolism , Mice, Knockout , Receptors, Transferrin/genetics , Receptors, Transferrin/metabolism
4.
Am J Hematol ; 97(12): 1548-1559, 2022 12.
Article in English | MEDLINE | ID: mdl-36069607

ABSTRACT

Systemic iron homeostasis is regulated by the hepatic hormone hepcidin to balance meeting iron requirements while limiting toxicity from iron excess. Iron-mediated induction of bone morphogenetic protein (BMP) 6 is a central mechanism for regulating hepcidin production. Liver endothelial cells (LECs) are the main source of endogenous BMP6, but how they sense iron to modulate BMP6 transcription and thereby hepcidin is uncertain. Here, we investigate the role of endothelial cell transferrin receptor 1 (TFR1) in iron uptake, BMP6 regulation, and systemic iron homeostasis using primary LEC cultures and endothelial Tfrc (encoding TFR1) knockout mice. We show that intracellular iron regulates Bmp6 expression in a cell-autonomous manner, and TFR1 mediates iron uptake and Bmp6 expression by holo-transferrin in primary LEC cultures. In addition, endothelial Tfrc knockout mice exhibit altered iron homeostasis compared with littermate controls when fed a limited iron diet, as evidenced by increased liver iron and inappropriately low Bmp6 and hepcidin expression relative to liver iron. However, endothelial Tfrc knockout mice have a similar iron phenotype compared to littermate controls when fed an iron-rich standard diet. Finally, ferritin and non-transferrin bound iron (NTBI) are additional sources of iron that mediate Bmp6 induction in primary LEC cultures via TFR1-independent mechanisms. Together, our data demonstrate a minor functional role for endothelial cell TFR1 in iron uptake, BMP6 regulation, and hepatocyte hepcidin regulation under iron limiting conditions, and suggest that ferritin and/or NTBI uptake by other transporters have a dominant role when iron availability is high.


Subject(s)
Hepcidins , Iron , Mice , Animals , Hepcidins/genetics , Hepcidins/metabolism , Iron/metabolism , Endothelial Cells/metabolism , Bone Morphogenetic Protein 6/genetics , Bone Morphogenetic Protein 6/metabolism , Receptors, Transferrin/genetics , Receptors, Transferrin/metabolism , Homeostasis , Hepatocytes/metabolism , Ferritins , Transferrin/metabolism , Mice, Knockout
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