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1.
Cell Death Dis ; 7: e2237, 2016 05 26.
Article in English | MEDLINE | ID: mdl-27228352

ABSTRACT

Friedreich's ataxia (FRDA) is an inherited neurodegenerative disease. The mutation consists of a GAA repeat expansion within the FXN gene, which downregulates frataxin, leading to abnormal mitochondrial iron accumulation, which may in turn cause changes in mitochondrial function. Although, many studies of FRDA patients and mouse models have been conducted in the past two decades, the role of frataxin in mitochondrial pathophysiology remains elusive. Are the mitochondrial abnormalities only a side effect of the increased accumulation of reactive iron, generating oxidative stress? Or does the progressive lack of iron-sulphur clusters (ISCs), induced by reduced frataxin, cause an inhibition of the electron transport chain complexes (CI, II and III) leading to reactive oxygen species escaping from oxidative phosphorylation reactions? To answer these crucial questions, we have characterised the mitochondrial pathophysiology of a group of disease-relevant and readily accessible neurons, cerebellar granule cells, from a validated FRDA mouse model. By using live cell imaging and biochemical techniques we were able to demonstrate that mitochondria are deregulated in neurons from the YG8R FRDA mouse model, causing a decrease in mitochondrial membrane potential (▵Ψm) due to an inhibition of Complex I, which is partially compensated by an overactivation of Complex II. This complex activity imbalance leads to ROS generation in both mitochondrial matrix and cytosol, which results in glutathione depletion and increased lipid peroxidation. Preventing this increase in lipid peroxidation, in neurons, protects against in cell death. This work describes the pathophysiological properties of the mitochondria in neurons from a FRDA mouse model and shows that lipid peroxidation could be an important target for novel therapeutic strategies in FRDA, which still lacks a cure.


Subject(s)
Iron-Binding Proteins/genetics , Lipid Peroxidation/genetics , Membrane Potential, Mitochondrial , Mitochondria/metabolism , Neurons/metabolism , Animals , Cerebellum/metabolism , Cerebellum/pathology , Disease Models, Animal , Electron Transport Complex I/genetics , Electron Transport Complex I/metabolism , Electron Transport Complex II/genetics , Electron Transport Complex II/metabolism , Electron Transport Complex III/genetics , Electron Transport Complex III/metabolism , Friedreich Ataxia/genetics , Friedreich Ataxia/metabolism , Friedreich Ataxia/pathology , Gene Expression Regulation , Glutathione/metabolism , Humans , Iron/metabolism , Iron-Binding Proteins/metabolism , Mice , Mitochondria/pathology , Mutation , Neurons/pathology , Oxidative Stress , Primary Cell Culture , Reactive Oxygen Species/metabolism , Signal Transduction , Frataxin
2.
Biochim Biophys Acta ; 1758(5): 597-605, 2006 May.
Article in English | MEDLINE | ID: mdl-16713990

ABSTRACT

Alteration of membrane surface charges represents one of the most interesting effects of the electromagnetic exposure on biological structures. Some evidence exists in the case of extremely low frequency whereas the same effect in the radiofrequency range has not been detected. Changes in transmembrane voltages are probably responsible for the mobilization of intracellular calcium described in some previous studies but not confirmed in others. These controversial results may be due to the cell type under examination and/or to the permeability properties of the membranes. According to such a hypothesis, calcium oscillations would be a secondary effect due to the induced change in the membrane voltage and thus dependent on the characteristics of ionic channels present in a particular preparation. Calcium increases could suggest more than one mechanism to explain the biological effects of exposure due to the fact that all the cellular pathways using calcium ions as a second messenger could be, in theory, disturbed by the electromagnetic field exposure. In the present work, we investigate the early phase of the signal transmission in the peripheral nervous system. We present evidence that the firing rate of rat sensory neurons can be modified by 50/60 Hz magnetic field but not by low level 900 MHz fields. The action of the 50/60 Hz magnetic field is biphasic. At first, the number of action potentials increases in time. Following this early phase, the firing rate decreases more rapidly than in control conditions. The explanation can be found at the single-channel level. Dynamic action current recordings in dorsal root ganglion neurons acutely exposed to the electromagnetic field show increased functionality of calcium channels. In parallel, a calcium-activated potassium channel is able to increase its mean open time.


Subject(s)
Electric Stimulation , Electromagnetic Fields , Ganglia, Spinal/radiation effects , Ion Channels/physiology , Neurons/radiation effects , Action Potentials , Animals , Cells, Cultured , Ganglia, Spinal/cytology , Ganglia, Spinal/physiology , Neurons/physiology , Rats
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