Literature DB >> 12505649

Manganese action in brain function.

Atsushi Takeda1.   

Abstract

Manganese, an essential trace metal, is supplied to the brain via both the blood-brain and the blood-cerebrospinal fluid barriers. There are some mechanisms in this process and transferrin may be involved in manganese transport into the brain. A large portion of manganese is bound to manganese metalloproteins, especially glutamine synthetase in astrocytes. A portion of manganese probably exists in the synaptic vesicles in glutamatergic neurons and the manganese is dynamically coupled to the electrophysiological activity of the neurons. Manganese released into the synaptic cleft may influence synaptic neurotransmission. Dietary manganese deficiency, which may enhance susceptibility to epileptic functions, appears to affect manganese homeostasis in the brain, probably followed by alteration of neural activity. On the other hand, manganese also acts as a toxicant to the brain because this metal has prooxidant activity. Abnormal concentrations of manganese in the brain, especially in the basal ganglia, are associated with neurological disorders similar to Parkinson's disease. Understanding the movement and action of manganese in synapses may be important to clarify the function and toxicity of manganese in the brain.

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Year:  2003        PMID: 12505649     DOI: 10.1016/s0165-0173(02)00234-5

Source DB:  PubMed          Journal:  Brain Res Brain Res Rev


  124 in total

1.  Manganese-enhanced magnetic resonance imaging (MEMRI).

Authors:  Cynthia A Massaad; Robia G Pautler
Journal:  Methods Mol Biol       Date:  2011

Review 2.  Role of manganese in neurodegenerative diseases.

Authors:  Aaron B Bowman; Gunnar F Kwakye; Elena Herrero Hernández; Michael Aschner
Journal:  J Trace Elem Med Biol       Date:  2011-10-01       Impact factor: 3.849

Review 3.  Iron and mechanisms of emotional behavior.

Authors:  Jonghan Kim; Marianne Wessling-Resnick
Journal:  J Nutr Biochem       Date:  2014-08-02       Impact factor: 6.048

4.  Acute and chronic hyperammonemia modulate antioxidant enzymes differently in cerebral cortex and cerebellum.

Authors:  Santosh Singh; Raj K Koiri; Surendra Kumar Trigun
Journal:  Neurochem Res       Date:  2007-08-04       Impact factor: 3.996

Review 5.  Current pathogenetic aspects of hepatic encephalopathy and noncirrhotic hyperammonemic encephalopathy.

Authors:  Halina Cichoż-Lach; Agata Michalak
Journal:  World J Gastroenterol       Date:  2013-01-07       Impact factor: 5.742

6.  Hippocampal to basal forebrain transport of Mn2+ is impaired by deletion of KLC1, a subunit of the conventional kinesin microtubule-based motor.

Authors:  Christopher S Medina; Octavian Biris; Tomas L Falzone; Xiaowei Zhang; Amber J Zimmerman; Elaine L Bearer
Journal:  Neuroimage       Date:  2016-10-14       Impact factor: 6.556

7.  Gender dependent APP processing in a transgenic mouse model of Alzheimer's disease.

Authors:  S Schäfer; O Wirths; G Multhaup; T A Bayer
Journal:  J Neural Transm (Vienna)       Date:  2006-10-31       Impact factor: 3.575

Review 8.  Manganese transport in eukaryotes: the role of DMT1.

Authors:  Catherine Au; Alexandre Benedetto; Michael Aschner
Journal:  Neurotoxicology       Date:  2008-05-14       Impact factor: 4.294

9.  Postnatal manganese exposure does not alter dopamine autoreceptor sensitivity in adult and adolescent male rats.

Authors:  Sanders A McDougall; Alena Mohd-Yusof; Graham J Kaplan; Zuhair I Abdulla; Ryan J Lee; Cynthia A Crawford
Journal:  Eur J Pharmacol       Date:  2013-02-28       Impact factor: 4.432

Review 10.  Manganese flux across the blood-brain barrier.

Authors:  Robert A Yokel
Journal:  Neuromolecular Med       Date:  2009-11-10       Impact factor: 3.843

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