Selective fluorescent imaging of superoxide in vivo using ethidium-based probes

被引:625
作者
Robinson, Kristine M.
Janes, Michael S.
Pehar, Mariana
Monette, Jeffrey S.
Ross, Meredith F.
Hagen, Tory M.
Murphy, Michael P.
Beckman, Joseph S. [1 ]
机构
[1] Oregon State Univ, Dept Biochem & Biophys, Linus Pauling Inst, Corvallis, OR 97331 USA
[2] Inst Invest Biol Clemente Estable, Dept Neurobiol Celular, Montevideo 11600, Uruguay
[3] MRC, Dunn Human Nutr Unit, Cambridge CB2 2XY, England
[4] Invitrogen Mol Probes Labeling & Detect Technol, Eugene, OR 97402 USA
基金
英国医学研究理事会;
关键词
detection; hydroethidine; MitoSOX; mitochondria; dihydroethidium;
D O I
10.1073/pnas.0601945103
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The putative oxidation of hydroethidine (HE) has become a widely used fluorescent assay for the detection of superoxide in cultured cells. By covalently joining HE to a hexyl triphenylphosphonium cation (Mito-HE), the HE moiety can be targeted to mitochondria. However, the specificity of HE and Mito-HE for superoxide in vivo is limited by autooxidation as well as by nonsuperoxide-dependent cellular processes that can oxidize HE probes to ethidium (Etd). Recently, superoxide was shown to react with HE to generate 2-hydroxyethidium [Zhao, H., Kalivendi, S., Zhang, H., Joseph, J., Nithipatikom, K., Vasquez-Vivar, J. & Kalyanaraman, B. (2003) Free Radic. BioL Med 34,1359-1368]. However, 2-hydroxyethidium is difficult to distinguish from Etcl by conventional fluorescence techniques exciting at 510 nm. While investigating the oxidation of Mito-HE by superoxide, we found that the superoxide product of both HE and Mito-HE could be selectively excited at 396 nm with minimal interference from other nonspecific oxidation products. The oxidation of Mito-HE monitored at 396 nm by antimycin-stimulated mitochondria was 30% slower than at 510 nm, indicating that superoxide production may be overestimated at 510 nm by even a traditional superoxide-stimulating mitochondrial inhibitor. The rate-limiting step for oxidation by superoxide was 4 x 10(6) M-1-s(-1), which is proposed to involve the formation of a radical from Mito-HE. The rapid reaction with a second superoxide anion through radical-radical coupling may explain how Mito-HE and HE can compete for superoxide in vivo with intracellular superoxide dismutases. Monitoring oxidation at both 396 and 510 nm of excitation wavelengths can facilitate the more selective detection of superoxide in vivo.
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页码:15038 / 15043
页数:6
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