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Detection of Nitric Oxide and Superoxide Radical Anion by Electron Paramagnetic Resonance Spectroscopy from Cells using Spin Traps
Published on: August 18, 2012
Radical trapping and inhibition of iron-dependent CNS damage by cyclic nitrone spin traps
C E Thomas1, D F Ohlweiler, V L Taylor
1Hoechst Marion Roussel, Inc., Cincinnati, Ohio, USA.
Abstract:
Oxidative damage in the CNS is proposed to play a role in many acute and chronic neurodegenerative disorders. Accordingly, the nitrone spin trap alpha-phenyl-N-tert-butylnitrone (PBN), which reacts covalently with free radicals, has shown efficacy in a variety of animal models of CNS injury. We have synthesized a number of cyclic variants of PBN and examined their activity as radical traps and protectants against oxidative damage in CNS tissue. By using electron spin resonance spectroscopy, the cyclic nitrones MDL 101,002 and MDL 102,832 were shown to trap radicals in a manner similar to that of PBN. All cyclic nitrones tested prevented hydroxyl radical-dependent degradation of 2-deoxyribose and peroxyl radical-dependent oxidation of synaptosomes more potently than PBN. The radical scavenging properties of the cyclic nitrones contributed to a three- to 25-fold increase in potency relative to PBN against oxidative damage and cytotoxicity in cerebellar granule cell cultures. Similar to the phenolic antioxidant MDL 74,722, the nitrones minimized seizures and delayed the time to death in mice following central injection of ferrous iron. Although iron-induced lipid peroxidation was inhibited by MDL 74,722, the nitrones had no effect on this biochemical end point, indicating that iron-induced mortality does not result solely from lipid peroxidation and suggesting additional neuroprotective properties for the nitrones. These results indicate that cyclic nitrones are more potent radical traps and inhibitors of lipid peroxidation in vitro than PBN, and their ability to delay significantly iron-induced mortality in vivo suggests they may be useful in the treatment of acute and chronic neurodegeneration. Furthermore, the stability of the spin trap adducts of the cyclic nitrones provides a new tool for the study of oxidative tissue injury.
Insights
New cyclic nitrones effectively trap free radicals and protect against CNS damage. These compounds show promise for treating neurodegenerative disorders by reducing oxidative stress.
Area of Science:
- Neuroscience
- Biochemistry
- Pharmacology
Background:
- Oxidative damage in the central nervous system (CNS) is implicated in various neurodegenerative diseases.
- Alpha-phenyl-N-tert-butylnitrone (PBN) is a spin trap effective in animal models of CNS injury.
Purpose of the Study:
- To synthesize and evaluate cyclic variants of PBN as radical traps and protectants against CNS oxidative damage.
- To compare the efficacy of cyclic nitrones with PBN in vitro and in vivo.
Main Methods:
- Electron spin resonance (ESR) spectroscopy to assess radical trapping.
- In vitro assays measuring protection against hydroxyl radical-induced 2-deoxyribose degradation and peroxyl radical-induced synaptosome oxidation.
- Assessment of cytotoxicity in cerebellar granule cell cultures.
- In vivo studies in mice involving central injection of ferrous iron to evaluate protection against seizures and mortality.
Main Results:
- Cyclic nitrones MDL 101,002 and MDL 102,832 demonstrated radical trapping similar to PBN.
- Cyclic nitrones were more potent than PBN in preventing oxidative degradation of 2-deoxyribose and synaptosomes.
- Potency against oxidative damage and cytotoxicity in cell cultures increased 3- to 25-fold with cyclic nitrones compared to PBN.
- Cyclic nitrones delayed iron-induced mortality in mice, similar to the antioxidant MDL 74,722, but did not inhibit lipid peroxidation.
Conclusions:
- Cyclic nitrones exhibit enhanced radical trapping and in vitro inhibition of oxidative damage compared to PBN.
- The in vivo neuroprotective effects against iron-induced mortality suggest mechanisms beyond lipid peroxidation inhibition.
- These findings indicate cyclic nitrones are promising therapeutic agents for acute and chronic neurodegeneration and offer new tools for studying oxidative injury.
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