Oxidative damage and neurodegeneration in manganese-induced neurotoxicity

Dejan Milatovic1, Snjezana Zaja-Milatovic, Ramesh C Gupta

  • 1Vanderbilt University Medical Center, Department of Pediatrics/Pediatric Toxicology, 2215-B Garland Avenue, 11415 MRB IV, Nashville, TN 37232-0414, USA. dejan.milatovic@vanderbilt.edu

Insights

Excessive manganese (Mn) exposure causes Parkinson's disease-like symptoms by inducing oxidative stress, mitochondrial dysfunction, and neuroinflammation, leading to neuronal damage. This study investigates these mechanisms in brain cells and mice.

Area of Science:

  • Neuroscience
  • Toxicology
  • Biochemistry

Background:

  • Manganese (Mn) overexposure causes neurotoxicity and Parkinson's disease (PD)-like symptoms (manganism).
  • The precise mechanisms of Mn-induced neurodegeneration, including oxidative injury, mitochondrial dysfunction, and neuroinflammation, remain incompletely understood.

Purpose of the Study:

  • To investigate the mechanisms underlying manganese neurotoxicity.
  • To examine the effects of Mn on reactive oxygen species (ROS) formation, high-energy phosphates (HEP), and neuroinflammation mediators.

Main Methods:

  • In vitro: Primary cortical neuronal cultures exposed to Mn.
  • In vivo: Adult mice injected with Mn.
  • Analyses included oxidative damage biomarkers (F2-isoprostanes), ATP levels, prostaglandin E2 (PGE2), and morphometric analysis of neuronal structures.

Main Results:

  • In vitro, Mn exposure caused concentration-dependent oxidative damage and mitochondrial dysfunction (ATP depletion).
  • Mn exposure increased prostaglandin E2 (PGE2) levels, an inflammatory biomarker.
  • In vivo, Mn injections elevated F2-isoprostanes and PGE2, and caused spine degeneration and dendritic damage in medium spiny neurons (MSNs).

Conclusions:

  • Oxidative stress, mitochondrial dysfunction, and neuroinflammation are key mechanisms in manganese-induced neurodegeneration.
  • These findings provide insights into the pathogenesis of manganism and related neurotoxic effects.

Related Concept Videos

Radical Oxidation of Allylic and Benzylic Alcohols01:21

Radical Oxidation of Allylic and Benzylic Alcohols

Activated manganese(IV) oxide can selectively oxidize allylic and benzylic alcohols via a radical intermediate mechanism. Primary allylic alcohols are oxidized to aldehydes, while secondary allylic alcohols yield ketones. The redox reaction of potassium permanganate with an Mn(II) salt such as manganese sulfate (under either alkaline or acidic conditions), followed by thorough drying, yields the oxidizing agent: activated MnO2. While MnO2 is insoluble in the solvents used for the reaction, the...
Necrosis01:16

Necrosis

Necrosis is considered as an “accidental” or unexpected form of cell death that ends in cell lysis. The first noticeable mention of “necrosis” was in 1859 when Rudolf Virchow used this term to describe advanced tissue breakdown in his compilation titled “Cell Pathology”.
Morphological Manifestations of Necrosis
Necrotic cells show different types of morphological appearance depending on the type of tissue and infection. In coagulative necrosis, cells become anucleated and die, but their...
Parkinson Disease ll: Pathophysiology01:24

Parkinson Disease ll: Pathophysiology

Parkinson disease (PD) is a progressive neurodegenerative disorder primarily affecting movement, with additional non-motor features. Its pathophysiology involves complex interactions among genetic susceptibility, environmental exposures, and cellular dysfunction, including dopaminergic neuron loss, protein aggregation, and mitochondrial impairment.Selective NeurodegenerationA key feature is the degeneration of dopaminergic neurons in the substantia nigra pars compacta, leading to reduced...
Drugs Affecting Neurotransmitter Synthesis01:29

Drugs Affecting Neurotransmitter Synthesis

Drugs affecting neurotransmitter synthesis can impact the adrenergic neuron and the synthesis of neurotransmitters. For example, α-methyltyrosine and carbidopa target specific enzymes involved in catecholamine synthesis. α-methyltyrosine inhibits the enzyme tyrosine hydroxylase, which converts tyrosine into dopamine. By blocking this enzyme, α-methyltyrosine reduces dopamine production and other catecholamines. Carbidopa, on the other hand, inhibits the enzyme dopa decarboxylase, which converts...
Alzheimer Disease ll: Pathophysiology01:23

Alzheimer Disease ll: Pathophysiology

Alzheimer disease involves structural changes in the brain that begin long before symptoms appear. The most distinctive features are extracellular neuritic plaques and intracellular neurofibrillary tangles.Neuritic plaques form in the cerebral cortex and around blood vessels. These plaques contain a dense core of beta-amyloid (Aβ)—a toxic protein fragment that clumps outside neurons. The core is surrounded by damaged neuronal extensions, as well as reactive astrocytes and microglia. Abnormal...