Iron is an essential element of hemoglobin, and efficient iron recycling from senescent erythrocytes by splenic macrophages is required for erythrocyte hemoglobin synthesis during erythropoiesis. Ferroportin 1 (Fpn1) is the sole iron exporter in mammals, and it also regulates iron reutilization. In this study, we demonstrated genetically that a redox-sensitive transcription factor, Nrf2, regulates Fpn1 mRNA expression in macrophages. Nrf2 activation by several electrophilic compounds commonly resulted in the upregulation of Fpn1 mRNA in bone marrow-derived and peritoneal macrophages obtained from wild-type mice but not from Nrf2 knockout mice. Further, Nrf2 activation enhanced iron release from the J774.1 murine macrophage cell line. Previous studies showed that inflammatory stimuli, such as LPS, downregulates macrophage Fpn1 by transcriptional and hepcidin-mediated post-translational mechanisms leading to iron sequestration by macrophages. We showed that two Nrf2 activators, diethyl maleate and sulforaphane (SFN; a natural Nrf2 activator found in broccoli), restored the LPS-induced suppression of Fpn1 mRNA in human and mouse macrophages, respectively. Furthermore, SFN counteracted the LPS-induced increase of Hepcidin mRNA by an Nrf2-independent mechanism in mouse peritoneal macrophages. These results demonstrate that Nrf2 regulates iron efflux from macrophages through Fpn1 gene transcription and suggest that Nrf2 may control iron metabolism during inflammation.
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http://dx.doi.org/10.1016/j.abb.2011.02.001 | DOI Listing |
Orphanet J Rare Dis
December 2024
Discovery Research Division, Indian Council of Medical Research (ICMR) Headquarters, V. Ramalingaswami Bhawan, Ansari Nagar, P.O. Box 4911, New Delhi, 110029, India.
Background: Friedreich's ataxia (FA) is a rare genetic disorder caused by silencing of the frataxin gene (FXN), which leads to multiorgan damage. Nrf2 is a regulator of FXN, which is a modulator of oxidative stress in animals and humans. Omaveloxolone (Omav) is an Nrf2 activator and has been reported to have antioxidative potential in various disease conditions.
View Article and Find Full Text PDFBrain Res
December 2024
Department of Traditional Chinese Medicine, The First Affiliated Hospital of Shandong First Medical University (The Shandong Province Qianfoshan Hospital), Jinan 250014, PR China. Electronic address:
Background: Maintaining autophagic homeostasis has been proved to play an important role in Alzheimer's disease.
Object: The aim of this study was to investigate the effect of Fuzhisan(FZS) on autophagic function in Alzheimer's disease and to elucidate its potential mechanism through the P62 regulatory pathways.
Methods: FZS was extracted by water extraction-rotary evaporation method.
Front Vet Sci
December 2024
Veterinary Medical Center and College of Veterinary Medicine, Laboratory of Veterinary Embryology and Biotechnology (VETEMBIO), Chungbuk National University, Cheongju, Republic of Korea.
Objective: Myo-inositol (Myo-Ins), the most abundant form of inositol, is an antioxidant and plays a crucial role in the development and reproduction of mammals and humans. However, information elucidating the role of Myo-Ins in porcine embryonic development after parthenogenetic activation (PA) is still lacking. Therefore, we investigated the effect of Myo-Ins on porcine embryos and its underlying mechanisms.
View Article and Find Full Text PDFEur J Pharmacol
December 2024
Key Laboratory of Neuropsychiatric Drug Research of Zhejiang Province, Hangzhou medical college, Hangzhou, Zhejiang 310013, P.R. China. Electronic address:
MicroRNA-222 (miR-222) plays a crucial role in neurodegeneration and is up-regulated in Alzheimer's disease (AD) patients. Andrographolide (Andro) has been reported to have anti-inflammatory and neuroprotective effects, showing potential for treating AD. The relationship between Andro's anti-AD mechanism and the regulation of miR-222 was discussed in this study.
View Article and Find Full Text PDFMol Biol Rep
December 2024
Department of Biochemistry, Faculty of Medicine, Iran University of Medical Sciences, Tehran, Iran.
Introduction: Cataranthine is an alkaloid used in the development of anti-cancer drugs. In this study, the effect of cataranthine is assessed by measuring the levels of miR-34 and miRNA-29, which are effective regulators of BCL-2 and NRF-2 gene expression, and their relation to the survival of HCC cells.
Methods: This study used cataranthine, and the HepG2 cell line.
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