A mutation in succinate dehydrogenase cytochrome b causes oxidative stress and ageing in nematodes (original) (raw)
- Letter
- Published: 13 August 1998
- Michihiko Fujii2,
- Philip S. Hartman3,
- Michio Tsuda1,
- Kayo Yasuda1,
- Nanami Senoo-Matsuda1,4,
- Sumino Yanase1,
- Dai Ayusawa2 &
- …
- Kenshi Suzuki1
Nature volume 394, pages 694–697 (1998)Cite this article
- 3030 Accesses
- 557 Citations
- 3 Altmetric
- Metrics details
Abstract
Much attention has focused on the aetiology of oxidative damagein cellular and organismal ageing1,2,3,4. Especially toxic arethe reactive oxygen byproducts of respiration and other biological processes5. A mev-1 (kn1 ) mutant of Caenorhabditis elegans has been found to be hypersensitive to raised oxygen concentrations6,7. Unlike the wild type, its lifespan decreases dramatically as oxygen concentrations are increased from 1 to 60% (ref. 7). Strains bearing this mutation accumulate markers of ageing (such as fluorescent materials and protein carbonyls) faster than the wild type8,9. We show here that mev-1 encodes a subunit of the enzyme succinate dehydrogenase cytochrome b , which is a component of complex II of the mitochondrial electron transport chain. We found that the ability of complex II to catalyse electron transport from succinate to ubiquinone is compromised in mev-1 animals. This may cause an indirect increase in superoxide levels, which in turn leads to oxygen hypersensitivity and premature ageing. Our results indicate that mev-1 governs the rate of ageing by modulating the cellular response to oxidative stress.
This is a preview of subscription content, access via your institution
Access options
Subscribe to this journal
Receive 51 print issues and online access
$199.00 per year
only $3.90 per issue
Buy this article
- Purchase on SpringerLink
- Instant access to full article PDF
Prices may be subject to local taxes which are calculated during checkout
Additional access options:
Similar content being viewed by others
References
- Harman, D. Free radical theory of aging: effect of free radical reaction inhibitors on the mortality rate of male LAF mice. J. Geront. 23, 476–482 (1968).
Article CAS Google Scholar - Martin, G. M., Austad, S. N. & Johnson, T. E. Genetic analysis of ageing: role of oxidative damage and environmental stresses. Nature Genet. 13, 25–34 (1996).
Article CAS Google Scholar - Larsen, P. L. Aging and resistance to oxidative damage in Caenorhabditis elegans . Proc. Natl Acad. Sci. USA 90, 8905–8909 (1993).
Article ADS CAS Google Scholar - Agarwal, S. & Sohal, R. S. DNA oxidative damage and life expectancy in houseflies. Proc. Natl Acad. Sci. USA 91, 12332–12335 (1994).
Article ADS CAS Google Scholar - McCord, J. M. & Fridovich, I. Superoxide dismutase: An enzymic function for erythrocuprein (hemocuprein). J. Biol. Chem. 244, 6049–6055 (1969).
CAS PubMed Google Scholar - Ishii, N. et al. Amethyl viologen-sensitive mutant of the nematode Caenorhabditis elegans . Mut. Res. 237, 165–171 (1990).
Article CAS Google Scholar - Honda, S., Ishii, N., Suzuki, K. & Matsuo, M. Oxygen-dependent perturbation of life span and aging rate in the nematode. J. Geront. 48, B57–B61 (1993).
Article CAS Google Scholar - Hosokawa, H. et al. Rapid accumulation of fluorescent material with aging in an oxygen-sensitive mutant mev-1 of Caenorhabditis elegans . Mech. Ageing Dev. 74, 161–170 (1994).
Article CAS Google Scholar - Adachi, H., Fujiwara, Y. & Ishii, N. Effects of oxygen on protein carbonyl and aging in Caenorhabditis elegans mutants with long (age-1 ) and short (mev-1 ) life spans. J. Geront. 53A, B240–B244 (1998).
Article CAS Google Scholar - Fire, A. Integrative transformation of Caenorhabditis elegans . EMBO J. 5, 2673–2680 (1986).
Article CAS Google Scholar - Cochran, B., Capaldi, R. A. & Ackrell, B. A. C. The cDNA sequence of beef heart CII-3, a membrane-intrinsic subunit of succinate-ubiquinone oxidoreductase. Biochim. Biophys. Acta 1188, 162–166 (1994).
Article CAS Google Scholar - Hengartner, M. O. & Horvitz, H. R. C. elegans cell survival gene ced-9 encodes a functional homolog of the mammalian proto-oncogene bcl-2 . Cell 76, 665–676 (1994).
Article CAS Google Scholar - Yu, L., Xu, J.-X., Haley, P. E. & Yu, C.-A. Properties of bovine heart mitochondrial cytochrome b560. J. Biol. Chem. 262, 1137–1143 (1987).
CAS PubMed Google Scholar - Friden, H. & Hederstedt, L. Role of His residues in Bacillus subtilis cytochrome b558for haem binding and assembly of succinate:quinone oxidoreductase (complex II). Mol. Microbiol. 4, 1045–1056 (1990).
Article CAS Google Scholar - Cadenas, E. & Boveris, A. Enhancement of hydrogen peroxide formation by protophores and ionophores in antimycin-supplemented mitochondria. Biochem. J. 188, 31–37 (1980).
Article CAS Google Scholar - Turrens, J. F., Alexandre, A. & Lehninger, A. Ubisemiquinone is the electron donor for superoxide formation by complex III of heart mitochondria. Arch. Biochem. Biophys. 237, 408–414 (1985).
Article CAS Google Scholar - Wallace, D. C. Diseases of the mitochondrial DNA. Annu. Rev. Biochem. 61, 1175–1212 (1992).
Article CAS Google Scholar - Munnich, A. et al. Clinical aspects of mitochondrial disorders. J. Inher. Metab. Dis. 15, 448–455 (1992).
Article CAS Google Scholar - Riggs, J. E. et al. Mitochondrial encephalomyopathy with decreased succinate-cytochrome c reductase activity. Neurology 34, 48–53 (1984).
Article CAS Google Scholar - Martin, J. J. et al. Defect in succinate oxidation by isolated muscle mitochondria in a patient with symmetrical lesions in the basal ganglia. J. Neurol. Sci. 84, 189–200 (1988).
Article CAS Google Scholar - Bourgeron, T. et al. Mutation of a nuclear succinate dehydrogenase gene results in mitochondrial respiratory chain deficiency. Nature Genet. 11, 144–149 (1995).
Article CAS Google Scholar - Taylor, R. W. et al. Deficiency of complex II of the mitochondrial respiratory chain in late-onset optic atrophy and ataxia. Ann. Neurol. 39, 224–232 (1996).
Article CAS Google Scholar - Chomczynski, P. & Sacchi, N. Single-step method fo RNA isolation by acid guinidium thiocyanate–phenol–chloroform extraction. Analyt. Biochem. 162, 156–159 (1987).
Article CAS Google Scholar - Robinson, K. M. & Lemire, B. D. Flavinylation of succinate: ubiquinone oxidoreductase from Saccharomyces cervisiae . Meth. Enzymol. 260, 34–51 (1995).
Article CAS Google Scholar - Ackrell, B. A. C., Kearney, E. B. & Singer, T. P. Mammalian succinate dehydrogenase. Meth. Enzymol. 53, 466–483 (1978).
Article CAS Google Scholar
Acknowledgements
We thank M. Hengartner for strains and for suggestions that facilitated the mapping of mev-1 . The wild-type strain was from the C. elegans Genetics Center, which is supported by the National Center for Research Resources (NCRR). This work was supported by Tokai University School of Medicine Research Project and by a Grant in Aid for Aging Research from the Ministry of Human and Welfare, Japan, and for Scientific Research from the Ministry of Education, Science, Sports and Culture, Japan.
Author information
Authors and Affiliations
- Department of Molecular Life Science, Tokai University School of Medicine, Isehara, 259-1193, Kanagawa, Japan
Naoaki Ishii, Michio Tsuda, Kayo Yasuda, Nanami Senoo-Matsuda, Sumino Yanase & Kenshi Suzuki - Department of Biochemistry, Kihara Institute for Biological Research, Yokohama City University, Totsuka, Kanagawa, 244-0813, Yokohama, Japan
Michihiko Fujii & Dai Ayusawa - Department of Biology, Texas Christian University, Fort Worth, 76129, Texas, USA
Philip S. Hartman - Tokyo Research Laboratory, Kyowa Hakko Kogyo Co. Ltd., Machida, 194-8533, Tokyo, Japan
Nanami Senoo-Matsuda
Authors
- Naoaki Ishii
You can also search for this author inPubMed Google Scholar - Michihiko Fujii
You can also search for this author inPubMed Google Scholar - Philip S. Hartman
You can also search for this author inPubMed Google Scholar - Michio Tsuda
You can also search for this author inPubMed Google Scholar - Kayo Yasuda
You can also search for this author inPubMed Google Scholar - Nanami Senoo-Matsuda
You can also search for this author inPubMed Google Scholar - Sumino Yanase
You can also search for this author inPubMed Google Scholar - Dai Ayusawa
You can also search for this author inPubMed Google Scholar - Kenshi Suzuki
You can also search for this author inPubMed Google Scholar
Corresponding author
Correspondence toNaoaki Ishii.
Rights and permissions
About this article
Cite this article
Ishii, N., Fujii, M., Hartman, P. et al. A mutation in succinate dehydrogenase cytochrome b causes oxidative stress and ageing in nematodes.Nature 394, 694–697 (1998). https://doi.org/10.1038/29331
- Received: 05 May 1998
- Accepted: 18 June 1998
- Issue Date: 13 August 1998
- DOI: https://doi.org/10.1038/29331