Related Experiment Video
Updated: May 26, 2026

Functional Neuroimaging Using Ultrasonic Blood-brain Barrier Disruption and Manganese-enhanced MRI
Published on: July 12, 2012
Pathophysiology of manganese-associated neurotoxicity
Brad A Racette1, Michael Aschner, Tomas R Guilarte
1Department of Neurology, Washington University School of Medicine, St. Louis, MO 63131, USA. racetteb@neuro.wustl.edu
Abstract:
Manganese (Mn) is a well established neurotoxin associated with specific damage to the basal ganglia in humans. The phenotype associated with Mn neurotoxicity was first described in two workers with occupational exposure to Mn oxide (Couper, 1837). Although the description did not use modern clinical terminology, a parkinsonian illness characterized by slowness of movement (bradykinesia), masked facies, and gait impairment (postural instability) appears to have predominated. Nearly 100 years later an outbreak of an atypical parkinsonian illness in a Chilean Mn mine provided a phenotypic description of a fulminant neurologic disorder with parkinsonism, dystonia, and neuropsychiatric symptoms (Rodier, 1955). Exposures associated with this syndrome were massive and an order of magnitude greater than modern exposures (Rodier, 1955; Hobson et al., 2011). The clinical syndrome associated with Mn neurotoxicity has been called manganism. Modern exposures to Mn occur primarily through occupations in the steel industry and welding. These exposures are often chronic and varied, occurring over decades in the healthy workforce. Although the severe neurologic disorder described by Rodier and Couper are no longer seen, several reports have suggested a possible increased risk of neurotoxicity in these workers (Racette et al., 2005b; Bowler et al., 2007; Harris et al., 2011). Based upon limited prior imaging and pathologic investigations into the pathophysiology of neurotoxicity in Mn exposed workers (Huang et al., 2003), many investigators have concluded that the syndrome spares the dopamine system distinguishing manganism from Parkinson disease (PD), the most common cause of parkinsonism in the general population, and a disease with characteristic degenerative changes in the dopaminergic system (Jankovic, 2005). The purpose of this symposium was to highlight recent advances in the understanding of the pathophysiology of Mn associated neurotoxicity from Caenorhabditis elegans to humans. Dr. Aschner's presentation discussed mechanisms of dopaminergic neuronal toxicity in C. elegans and demonstrates a compelling potential role of Mn in dopaminergic degeneration. Dr. Guilarte's experimental, non-human primate model of Mn neurotoxicity suggests that Mn decreases dopamine release in the brain without loss of neuronal integrity markers, including dopamine. Dr. Racette's presentation demonstrates a unique pattern of dopaminergic dysfunction in active welders with chronic exposure to Mn containing welding fumes. Finally, Dr. Dydak presented novel magnetic resonance (MR) spectroscopy data in Mn exposed smelter workers and demonstrated abnormalities in the thalamus and frontal cortex for those workers. This symposium provided some converging evidence of the potential neurotoxic impact of Mn on the dopaminergic system and challenged existing paradigms on the pathophysiology of Mn in the central nervous system.
Insights
Manganese (Mn) exposure can cause neurotoxicity, potentially impacting the dopaminergic system. Recent research using models from C. elegans to humans suggests Mn may play a role in dopaminergic degeneration, challenging previous understandings.
Area of Science:
- Neuroscience
- Toxicology
- Occupational Health
Background:
- Manganese (Mn) is a known neurotoxin, historically linked to parkinsonian symptoms in exposed workers.
- Manganism, the clinical syndrome of Mn neurotoxicity, was previously thought to spare the dopamine system, distinguishing it from Parkinson's disease.
- Chronic, low-level Mn exposure in modern occupations like steel industries and welding raises concerns about potential neurotoxic risks.
Purpose of the Study:
- To review recent advancements in understanding the pathophysiology of Mn-associated neurotoxicity across different model systems.
- To explore the potential role of Mn in dopaminergic degeneration and its impact on the central nervous system.
- To challenge existing paradigms regarding Mn's neurotoxic mechanisms.
Main Methods:
- Review of presentations from a symposium covering research from Caenorhabditis elegans to human studies.
- Discussion of experimental models, including non-human primates and human occupational exposure studies.
- Utilizing magnetic resonance (MR) spectroscopy to assess brain abnormalities in Mn-exposed workers.
Main Results:
- Evidence suggests Mn may be involved in dopaminergic neuronal toxicity and degeneration in C. elegans.
- A primate model indicated Mn decreases dopamine release without causing neuronal integrity loss.
- Human studies revealed dopaminergic dysfunction in welders and abnormalities in the thalamus and frontal cortex of smelter workers exposed to Mn.
Conclusions:
- Converging evidence suggests Mn has a potential neurotoxic impact on the dopaminergic system.
- These findings challenge the long-held view that Mn neurotoxicity spares dopaminergic pathways.
- Further research is needed to fully elucidate the mechanisms of Mn neurotoxicity and its long-term effects.
More Related Videos
04:48Setup of Capillary Electrophoresis-Inductively Coupled Plasma Mass Spectrometry (CE-ICP-MS) for Quantification of Iron Redox Species (Fe(II), Fe(III))
Published on: May 4, 2020
08:09Gene-environment Interaction Models to Unmask Susceptibility Mechanisms in Parkinson's Disease
Published on: January 7, 2014
Related Concept Videos
Parkinson Disease ll: Pathophysiology
Hepatic Encephalopathy
Disorders of the Nervous Tissue
Homeostatic Imbalances:
Alzheimer's disease manifests as a gradual decline in memory and cognitive abilities, attributed to the buildup of amyloid plaques and neurofibrillary tangles in the brain.
Parkinson's disease arises from the...
Bacterial Meningitis II: Pathophysiology
Toxic Reactions: Overview
Toxicity falls into two primary categories: local and systemic.
Local toxicity appears at the exposure site, such as protein denaturation caused by caustic substances.
In contrast, systemic toxicity requires the toxic agent's absorption and distribution,...
Drug Toxicity: Dose-Dependent Reactions