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Determination of Mitochondrial Membrane Potential and Reactive Oxygen Species in Live Rat Cortical Neurons
Published on: May 23, 2011
Manganese induces oxidative impairment in cultured rat astrocytes
Dejan Milatovic1, Zhaobao Yin, Ramesh C Gupta
1Department of Pediatrics, Vanderbilt University School of Medicine, Nashville, Tennessee 37232, USA.
Abstract:
Excessive free radical formation has been implicated as a causative factor in neurotoxic damage associated with exposures to a variety of metals, including manganese (Mn). It is well established that Mn accumulates in astrocytes, affecting their ability to indirectly induce and/or exacerbate neuronal dysfunction. The present study examined the effects of Mn treatment on the following endpoints in primary astrocyte cultures: (1) oxidative injury, (2) alterations in high-energy phosphate (adenosine 5'-triphosphate, ATP) levels, (3) mitochondrial inner membrane potential, and (4) glutamine uptake and the expression of glutamine transporters. We quantified astrocyte cerebral oxidative damage by measuring F(2)-isoprostanes (F(2)-IsoPs) using stable isotope dilution methods followed by gas chromatography-mass spectrometry with selective ion monitoring. Our data showed a significant (p < 0.01) elevation in F(2)-IsoPs levels at 2 h following exposure to Mn (100 microM, 500 microM, or 1 mM). Consistent with this observation, Mn induced a concentration-dependent reduction in ATP and the inner mitochondrial membrane potential (DeltaPsi(m)), measured by the high pressure liquid chromatography method and the potentiometric dye, tetramethyl rhodamine ethyl ester, respectively. Moreover, 30 min of pretreatment with Mn (100 microM, 500 microM, or 1 mM) inhibited the net uptake of glutamine (GLN) ((3)H-glutamine) measured at 1 and 5 min. Expression of the messenger RNA coding the GLN transporters, SNAT3/SN1 and SNAT1, was inhibited after 100 and 500 microM Mn treatment for 24 h. Our results demonstrate that induction of oxidative stress, associated mitochondrial dysfunction, and alterations in GLN/glutamate cycling in astrocytes represent key mechanisms by which Mn exerts its neurotoxicity.
Insights
Manganese exposure causes oxidative stress and mitochondrial dysfunction in astrocytes, impairing glutamine uptake and transporter expression, leading to neurotoxicity.
Area of Science:
- Neuroscience
- Toxicology
- Cell Biology
Background:
- Manganese (Mn) exposure is linked to neurotoxicity, with Mn accumulating in astrocytes.
- Astrocytes play a crucial role in neuronal function, and their dysfunction can exacerbate neurotoxic damage.
Purpose of the Study:
- To investigate the effects of manganese (Mn) on primary astrocyte cultures.
- To examine Mn-induced oxidative injury, energy metabolism, mitochondrial function, and glutamine transport.
Main Methods:
- Primary astrocyte cultures were treated with varying concentrations of Mn.
- Oxidative damage was measured via F(2)-isoprostanes (F(2)-IsoPs).
- Adenosine 5'-triphosphate (ATP) levels, mitochondrial membrane potential (DeltaPsi(m)), and glutamine (GLN) uptake were assessed. Glutamine transporter mRNA expression was also analyzed.
Main Results:
- Mn exposure significantly elevated F(2)-IsoPs, indicating oxidative stress.
- Mn reduced ATP levels and mitochondrial membrane potential in a dose-dependent manner.
- Glutamine uptake and the expression of SNAT3/SN1 and SNAT1 transporters were inhibited by Mn treatment.
Conclusions:
- Manganese induces oxidative stress and mitochondrial dysfunction in astrocytes.
- Impaired glutamine uptake and altered transporter expression contribute to Mn neurotoxicity.
- These mechanisms highlight the role of astrocyte dysfunction in manganese-induced neurotoxic damage.

