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Updated: Nov 7, 2025

Functional Neuroimaging Using Ultrasonic Blood-brain Barrier Disruption and Manganese-enhanced MRI
Published on: July 12, 2012
Molecular Targets of Manganese-Induced Neurotoxicity: A Five-Year Update
Alexey A Tinkov1,2, Monica M B Paoliello3,4, Aksana N Mazilina5
1Laboratory of Molecular Dietetics, Department of Neurological Diseases and Neurosurgery, Department of Analytical and Forensic Toxicology, IM Sechenov First Moscow State Medical University (Sechenov University), 119435 Moscow, Russia.
Abstract:
Understanding of the immediate mechanisms of Mn-induced neurotoxicity is rapidly evolving. We seek to provide a summary of recent findings in the field, with an emphasis to clarify existing gaps and future research directions. We provide, here, a brief review of pertinent discoveries related to Mn-induced neurotoxicity research from the last five years. Significant progress was achieved in understanding the role of Mn transporters, such as SLC39A14, SLC39A8, and SLC30A10, in the regulation of systemic and brain manganese handling. Genetic analysis identified multiple metabolic pathways that could be considered as Mn neurotoxicity targets, including oxidative stress, endoplasmic reticulum stress, apoptosis, neuroinflammation, cell signaling pathways, and interference with neurotransmitter metabolism, to name a few. Recent findings have also demonstrated the impact of Mn exposure on transcriptional regulation of these pathways. There is a significant role of autophagy as a protective mechanism against cytotoxic Mn neurotoxicity, yet also a role for Mn to induce autophagic flux itself and autophagic dysfunction under conditions of decreased Mn bioavailability. This ambivalent role may be at the crossroad of mitochondrial dysfunction, endoplasmic reticulum stress, and apoptosis. Yet very recent evidence suggests Mn can have toxic impacts below the no observed adverse effect of Mn-induced mitochondrial dysfunction. The impact of Mn exposure on supramolecular complexes SNARE and NLRP3 inflammasome greatly contributes to Mn-induced synaptic dysfunction and neuroinflammation, respectively. The aforementioned effects might be at least partially mediated by the impact of Mn on α-synuclein accumulation. In addition to Mn-induced synaptic dysfunction, impaired neurotransmission is shown to be mediated by the effects of Mn on neurotransmitter systems and their complex interplay. Although multiple novel mechanisms have been highlighted, additional studies are required to identify the critical targets of Mn-induced neurotoxicity.
Insights
Manganese (Mn) neurotoxicity involves complex pathways including stress responses and neurotransmitter disruption. Recent research clarifies Mn transporters and identifies new therapeutic targets for Mn-induced neurotoxicity.
Area of Science:
- Neuroscience
- Toxicology
- Biochemistry
Background:
- Manganese (Mn) neurotoxicity mechanisms are complex and under active investigation.
- Recent advancements have shed light on Mn transport and its cellular impacts.
Purpose of the Study:
- To summarize recent findings (last 5 years) on Mn-induced neurotoxicity.
- To clarify knowledge gaps and suggest future research directions.
Main Methods:
- Review of recent discoveries in Mn neurotoxicity research.
- Analysis of genetic and molecular pathways affected by Mn exposure.
Main Results:
- Identified key Mn transporters (SLC39A14, SLC39A8, SLC30A10) regulating Mn handling.
- Highlighted Mn's impact on oxidative stress, ER stress, apoptosis, neuroinflammation, and neurotransmitter metabolism.
- Revealed Mn's dual role in autophagy and its effects on mitochondrial dysfunction, SNARE complexes, and NLRP3 inflammasome.
Conclusions:
- Mn neurotoxicity involves multifaceted pathways including synaptic dysfunction and neuroinflammation.
- Autophagy plays a complex role in Mn toxicity.
- Further research is needed to pinpoint critical Mn neurotoxicity targets.
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