Literature DB >> 22542936

Intranasal exposure to manganese disrupts neurotransmitter release from glutamatergic synapses in the central nervous system in vivo.

Andrew H Moberly1, Lindsey A Czarnecki, Joseph Pottackal, Tom Rubinstein, Daniel J Turkel, Marley D Kass, John P McGann.   

Abstract

Chronic exposure to aerosolized manganese induces a neurological disorder that includes extrapyramidal motor symptoms and cognitive impairment. Inhaled manganese can bypass the blood-brain barrier and reach the central nervous system by transport down the olfactory nerve to the brain's olfactory bulb. However, the mechanism by which Mn disrupts neural function remains unclear. Here we used optical imaging techniques to visualize exocytosis in olfactory nerve terminals in vivo in the mouse olfactory bulb. Acute Mn exposure via intranasal instillation of 2-200 μg MnCl(2) solution caused a dose-dependent reduction in odorant-evoked neurotransmitter release, with significant effects at as little as 2 μg MnCl(2) and a 90% reduction compared to vehicle controls with a 200 μg exposure. This reduction was also observed in response to direct electrical stimulation of the olfactory nerve layer in the olfactory bulb, demonstrating that Mn's action is occurring centrally, not peripherally. This is the first direct evidence that Mn intoxication can disrupt neurotransmitter release, and is consistent with previous work suggesting that chronic Mn exposure limits amphetamine-induced dopamine increases in the basal ganglia despite normal levels of dopamine synthesis (Guilarte et al., J Neurochem 2008). The commonality of Mn's action between glutamatergic neurons in the olfactory bulb and dopaminergic neurons in the basal ganglia suggests that a disruption of neurotransmitter release may be a general consequence wherever Mn accumulates in the brain and could underlie its pleiotropic effects.
Copyright © 2012 Elsevier Inc. All rights reserved.

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Year:  2012        PMID: 22542936      PMCID: PMC3432160          DOI: 10.1016/j.neuro.2012.04.014

Source DB:  PubMed          Journal:  Neurotoxicology        ISSN: 0161-813X            Impact factor:   4.294


  97 in total

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2.  Visualizing an olfactory sensory map.

Authors:  P Mombaerts; F Wang; C Dulac; S K Chao; A Nemes; M Mendelsohn; J Edmondson; R Axel
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3.  Uptake and transport of manganese in primary and secondary olfactory neurones in pike.

Authors:  H Tjälve; C Mejàre; K Borg-Neczak
Journal:  Pharmacol Toxicol       Date:  1995-07

4.  Uptake of manganese and cadmium from the nasal mucosa into the central nervous system via olfactory pathways in rats.

Authors:  H Tjälve; J Henriksson; J Tallkvist; B S Larsson; N G Lindquist
Journal:  Pharmacol Toxicol       Date:  1996-12

5.  Neurobehavioral functioning after cessation of manganese exposure: a follow-up after 14 years.

Authors:  M Bouchard; D Mergler; M Baldwin; M Panisset; R Bowler; H A Roels
Journal:  Am J Ind Med       Date:  2007-11       Impact factor: 2.214

6.  Increased APLP1 expression and neurodegeneration in the frontal cortex of manganese-exposed non-human primates.

Authors:  Tomás R Guilarte; Neal C Burton; Tatyana Verina; Vinaykumar V Prabhu; Kevin G Becker; Tore Syversen; Jay S Schneider
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Authors:  E Bonilla; A Arrieta; F Castro; J O Dávila; I Quiroz
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9.  Allopurinol protects against manganese-induced oxidative stress in the striatum and in the brainstem of the rat.

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Review 2.  The role of metals in mammalian olfaction of low molecular weight organosulfur compounds.

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6.  Changes in the neural representation of odorants after olfactory deprivation in the adult mouse olfactory bulb.

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8.  Odor-specific, olfactory marker protein-mediated sparsening of primary olfactory input to the brain after odor exposure.

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