Literature DB >> 12729948

Alterations in cellular IRP-dependent iron regulation by in vitro manganese exposure in undifferentiated PC12 cells.

Catherine L Kwik-Uribe1, Stephen Reaney, Zhiwu Zhu, Donald Smith.   

Abstract

Manganese (Mn) may interfere with iron regulation by altering the binding of iron regulatory proteins (IRPs) to their response elements found on the mRNA encoding proteins critical to iron homeostasis. To explore this, the effects of 24-h in vitro manganese exposure (1, 10, 50, and 200 microM Mn) on: (i) total intracellular and labile iron concentrations; (ii) the cellular abundance of transferrin receptor (TfR), H- and L-ferritin, and mitochondrial aconitase proteins; and (iii) IRP binding to a [32P](-) labeled mRNA sequence of L-ferritin were evaluated in undifferentiated PC12 cells. In vitro manganese exposure altered the cellular abundance of TfR, H-/L-ferritin, and m-aconitase, resulting in an increase in labile iron. This latter effect led to a decrease in IRP binding activity at the lower (10 and 50 microM) manganese exposures. In contrast, 200 microM manganese exposure increased IRP binding, in spite of the significant increase in labile iron. These data indicate that at lower exposures, manganese directly interfered with IRP-dependent translational events, producing an increase in labile iron, which in turn signaled a decrease in IRP binding at 24 h. At higher exposures, the intracellular burden of manganese resulted in overt cytotoxicity and appeared to compromise the normal compensatory response to increased labile iron, producing increased IRP binding. We conclude that low to moderate manganese exposure interferes with cellular iron regulation, and thus may serve as a contributory mechanism underlying manganese neurotoxicity.

Entities:  

Mesh:

Substances:

Year:  2003        PMID: 12729948     DOI: 10.1016/s0006-8993(03)02457-0

Source DB:  PubMed          Journal:  Brain Res        ISSN: 0006-8993            Impact factor:   3.252


  13 in total

1.  Manganese accumulates within golgi apparatus in dopaminergic cells as revealed by synchrotron X-ray fluorescence nanoimaging.

Authors:  Asunción Carmona; Guillaume Devès; Stéphane Roudeau; Peter Cloetens; Sylvain Bohic; Richard Ortega
Journal:  ACS Chem Neurosci       Date:  2009-12-17       Impact factor: 4.418

2.  Manganese causes neurotoxic iron accumulation via translational repression of amyloid precursor protein and H-Ferritin.

Authors:  Vivek Venkataramani; Thorsten R Doeppner; Desiree Willkommen; Catherine M Cahill; Yongjuan Xin; Guilin Ye; Yanyan Liu; Adam Southon; Allegra Aron; Ho Yu Au-Yeung; Xudong Huang; Debomoy K Lahiri; Fudi Wang; Ashley I Bush; Gerald G Wulf; Philipp Ströbel; Bernhard Michalke; Jack T Rogers
Journal:  J Neurochem       Date:  2018-11-19       Impact factor: 5.372

3.  Regulation of intracellular manganese homeostasis by Kufor-Rakeb syndrome-associated ATP13A2 protein.

Authors:  Jieqiong Tan; Tongmei Zhang; Li Jiang; Jingwei Chi; Dongshen Hu; Qian Pan; Danling Wang; Zhuohua Zhang
Journal:  J Biol Chem       Date:  2011-07-01       Impact factor: 5.157

4.  Syndrome of hepatic cirrhosis, dystonia, polycythemia, and hypermanganesemia caused by mutations in SLC30A10, a manganese transporter in man.

Authors:  Karin Tuschl; Peter T Clayton; Sidney M Gospe; Shamshad Gulab; Shahnaz Ibrahim; Pratibha Singhi; Roosy Aulakh; Reinaldo T Ribeiro; Orlando G Barsottini; Maha S Zaki; Maria Luz Del Rosario; Sarah Dyack; Victoria Price; Andrea Rideout; Kevin Gordon; Ron A Wevers; W K Kling Chong; Philippa B Mills
Journal:  Am J Hum Genet       Date:  2012-02-16       Impact factor: 11.025

5.  Altered manganese homeostasis and manganese toxicity in a Huntington's disease striatal cell model are not explained by defects in the iron transport system.

Authors:  B Blairanne Williams; Gunnar F Kwakye; Michal Wegrzynowicz; Daphne Li; Michael Aschner; Keith M Erikson; Aaron B Bowman
Journal:  Toxicol Sci       Date:  2010-06-13       Impact factor: 4.849

6.  Low-level manganese exposure alters glutamate metabolism in GABAergic AF5 cells.

Authors:  Daniel R Crooks; Nicholas Welch; Donald R Smith
Journal:  Neurotoxicology       Date:  2007-01-16       Impact factor: 4.294

7.  Effects of 12 metal ions on iron regulatory protein 1 (IRP-1) and hypoxia-inducible factor-1 alpha (HIF-1alpha) and HIF-regulated genes.

Authors:  Qin Li; Haobin Chen; Xi Huang; Max Costa
Journal:  Toxicol Appl Pharmacol       Date:  2006-01-04       Impact factor: 4.219

8.  Golgi phosphoprotein 4 (GPP130) is a sensitive and selective cellular target of manganese exposure.

Authors:  Melisa Masuda; Michelle Braun-Sommargren; Dan Crooks; Donald R Smith
Journal:  Synapse       Date:  2013-02-08       Impact factor: 2.562

9.  Improved visualization of neuronal injury following glial activation by manganese enhanced MRI.

Authors:  Aditya N Bade; Biyun Zhou; Adrian A Epstein; Santhi Gorantla; Larisa Y Poluektova; Jiangtao Luo; Howard E Gendelman; Michael D Boska; Yutong Liu
Journal:  J Neuroimmune Pharmacol       Date:  2013-06-01       Impact factor: 4.147

Review 10.  H(+)-coupled divalent metal-ion transporter-1: functional properties, physiological roles and therapeutics.

Authors:  Ali Shawki; Patrick B Knight; Bryan D Maliken; Eric J Niespodzany; Bryan Mackenzie
Journal:  Curr Top Membr       Date:  2012       Impact factor: 3.049

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.