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Functional Neuroimaging Using Ultrasonic Blood-brain Barrier Disruption and Manganese-enhanced MRI
Published on: July 12, 2012
Impact of manganese on primary hippocampal neurons from rodents
Alexia Daoust1, Yasmina Saoudi, Jacques Brocard
1Inserm, U836, Grenoble, France; Université Grenoble Alpes, Grenoble Institut des Neurosciences, Grenoble, France.
Abstract:
Manganese-enhanced magnetic resonance imaging (MEMRI) is a powerful tool for in vivo tract tracing or functional imaging of the central nervous system. However Mn(2+) may be toxic at high levels. In this study, we addressed the impact of Mn(2+) on mouse hippocampal neurons (HN) and neuron-like N2a cells in culture, using several approaches. Both HN and N2a cells not exposed to exogenous MnCl2 were shown by synchrotron X-ray fluorescence to contain 5 mg/g Mn. Concentrations of Mn(2+) leading to 50% lethality (LC50) after 24 h of incubation were much higher for N2a cells (863 mM) than for HN (90 mM). The distribution of Mn(2+) in both cell types exposed to Mn(2+) concentrations below LC50 was perinuclear whereas that in cells exposed to concentrations above LC50 was more diffuse, suggesting an overloading of cell storage/detoxification capacity. In addition, Mn(2+) had a cell-type and dose-dependent impact on the total amount of intracellular P, Ca, Fe and Zn measured by synchrotron X-ray fluorescence. For HN neurons, immunofluorescence studies revealed that concentrations of Mn(2+) below LC50 shortened neuritic length and decreased mitochondria velocity after 24 h of incubation. Similar concentrations of Mn(2+) also facilitated the opening of the mitochondrial permeability transition pore in isolated mitochondria from rat brains. The sensitivity of primary HN to Mn(2+) demonstrated here supports their use as a relevant model to study Mn(2+) -induced neurotoxicity.
Insights
Manganese-enhanced magnetic resonance imaging (MEMRI) uses manganese (Mn2+), but high levels can be toxic. This study found primary hippocampal neurons are more sensitive to Mn2+ toxicity than N2a cells, highlighting their use in neurotoxicity research.
Area of Science:
- Neuroscience
- Toxicology
- Biophysics
Background:
- Manganese-enhanced magnetic resonance imaging (MEMRI) is valuable for central nervous system imaging.
- High concentrations of manganese (Mn2+) may cause toxicity.
- Understanding Mn2+ cellular effects is crucial for safe MEMRI applications.
Purpose of the Study:
- To investigate the impact of Mn2+ on mouse hippocampal neurons (HN) and N2a cells.
- To determine Mn2+ toxicity thresholds and cellular distribution.
- To assess Mn2+-induced changes in neuronal function and mitochondrial activity.
Main Methods:
- Cell culture (HN and N2a cells)
- Synchrotron X-ray fluorescence for elemental analysis
- Cell viability assays (LC50 determination)
- Immunofluorescence microscopy
- Mitochondrial function assays
Main Results:
- Hippocampal neurons (HN) exhibited higher sensitivity to Mn2+ toxicity (LC50 = 90 mM) compared to N2a cells (LC50 = 863 mM).
- Mn2+ distribution shifted from perinuclear to diffuse with increasing concentrations, indicating overloaded detoxification.
- Mn2+ exposure reduced neuritic length, mitochondrial velocity, and promoted mitochondrial permeability transition pore opening in HN.
Conclusions:
- Primary HN are a relevant model for studying Mn2+-induced neurotoxicity.
- Cell-type and dose-dependent effects of Mn2+ on cellular homeostasis were observed.
- Findings provide insights into the mechanisms of Mn2+ neurotoxicity relevant to MEMRI applications.
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