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Science 25 April 2003: Vol. 300. no. 5619, pp. 650 - 653 DOI: 10.1126/science.1080405
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Reports
Peroxiredoxin Evolution and the Regulation of Hydrogen Peroxide Signaling
Zachary A. Wood,1*
Leslie B. Poole,2
P. Andrew Karplus1
Eukaryotic 2-Cys peroxiredoxins (2-Cys Prxs) not only act as antioxidants, but also appear to regulate hydrogen peroxidemediated signal transduction. We showthat bacterial 2-Cys Prxs are much less sensitive to oxidative inactivation than are eukaryotic 2-Cys Prxs. By identifying two sequence motifs unique to the sensitive 2-Cys Prxs and comparing the crystal structure of a bacterial 2-Cys Prx at 2.2 angstrom resolution with other Prx structures, we define the structural origins of sensitivity. We suggest this adaptation allows 2-Cys Prxs to act as floodgates, keeping resting levels of hydrogen peroxide low, while permitting higher levels during signal transduction.
1 Department of Biochemistry and Biophysics, Oregon State University, Corvallis, OR 97333, USA.
2 Department of Biochemistry, Wake Forest University School of Medicine, Winston-Salem, NC 27157, USA.
* Present address: Institute of Molecular Biology, Howard Hughes Medical Institute, University of Oregon, Eugene, OR 97403, USA.
To whom correspondence should be addressed. E-mail: karplusp{at}ucs.orst.edu
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| Abstract »
| Full Text »
| PDF »
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| Abstract »
| Full Text »
| PDF »
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| Full Text »
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J. Cell Sci.
120, 2284-2294
| Abstract »
| Full Text »
| PDF »
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18, 2288-2295
| Abstract »
| Full Text »
| PDF »
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J. Biol. Chem.
282, 11885-11892
| Abstract »
| Full Text »
| PDF »
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| Abstract »
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- Q. Zang, D. L. Maass, J. White, and J. W. Horton (2007)
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102, 103-112
| Abstract »
| Full Text »
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J. Cell Biol.
175, 779-789
| Abstract »
| Full Text »
| PDF »
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J. Exp. Bot.
57, 3869-3881
| Abstract »
| Full Text »
| PDF »
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| Abstract »
| Full Text »
| PDF »
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103, 12517-12522
| Abstract »
| Full Text »
| PDF »
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18, 2035-2050
| Abstract »
| Full Text »
| PDF »
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- M. Trujillo, P. Mauri, L. Benazzi, M. Comini, A. De Palma, L. Flohe, R. Radi, M. Stehr, M. Singh, F. Ursini, et al. (2006)
J. Biol. Chem.
281, 20555-20566
| Abstract »
| Full Text »
| PDF »
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- A. A. Sayed, S. K. Cook, and D. L. Williams (2006)
J. Biol. Chem.
281, 17001-17010
| Abstract »
| Full Text »
| PDF »
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- J. Hirsch, K. C. Hansen, S. Choi, J. Noh, R. Hirose, J. P. Roberts, M. A. Matthay, A. L. Burlingame, J. J. Maher, and C. U. Niemann (2006)
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| Abstract »
| Full Text »
| PDF »
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- W. Jeong, S. J. Park, T.-S. Chang, D.-Y. Lee, and S. G. Rhee (2006)
J. Biol. Chem.
281, 14400-14407
| Abstract »
| Full Text »
| PDF »
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- S. Harder, M. Bente, K. Isermann, and I. Bruchhaus (2006)
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5, 861-870
| Abstract »
| Full Text »
| PDF »
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103, 2552-2557
| Abstract »
| Full Text »
| PDF »
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J. Exp. Bot.
56, 3193-3206
| Abstract »
| Full Text »
| PDF »
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- T. Wang, D. Tamae, T. LeBon, J. E. Shively, Y. Yen, and J. J. Li (2005)
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65, 10338-10346
| Abstract »
| Full Text »
| PDF »
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- L. Espana, B. Martin, R. Aragues, C. Chiva, B. Oliva, D. Andreu, and A. Sierra (2005)
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167, 1125-1137
| Abstract »
| Full Text »
| PDF »
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J. Biol. Chem.
280, 28775-28784
| Abstract »
| Full Text »
| PDF »
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- A. P. Vivancos, E. A. Castillo, B. Biteau, C. Nicot, J. Ayte, M. B. Toledano, and E. Hidalgo (2005)
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102, 8875-8880
| Abstract »
| Full Text »
| PDF »
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- T. Schlecker, A. Schmidt, N. Dirdjaja, F. Voncken, C. Clayton, and R. L. Krauth-Siegel (2005)
J. Biol. Chem.
280, 14385-14394
| Abstract »
| Full Text »
| PDF »
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- J. C. Williams, C. Sue, G. S. Banting, H. Yang, D. M. Glerum, W. A. Hendrickson, and E. A. Schon (2005)
J. Biol. Chem.
280, 15202-15211
| Abstract »
| Full Text »
| PDF »
- Hydrogen peroxide generated extracellularly by receptor-ligand interaction facilitates cell signaling.
- G. J. DeYulia Jr., J. M. Carcamo, O. Borquez-Ojeda, C. C. Shelton, and D. W. Golde (2005)
PNAS
102, 5044-5049
| Abstract »
| Full Text »
| PDF »
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- I. Finkemeier, M. Goodman, P. Lamkemeyer, A. Kandlbinder, L. J. Sweetlove, and K.-J. Dietz (2005)
J. Biol. Chem.
280, 12168-12180
| Abstract »
| Full Text »
| PDF »
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- N. W Blackstone, M. M Kelly, V. Haridas, and J. U Gutterman (2005)
Proc R Soc B
272, 527-531
| Abstract »
| Full Text »
| PDF »
- SOD Inactivation in Asthma: Bad News or NO News?.
- Y. Janssen-Heininger, K. Ckless, N. Reynaert, and A. van der Vliet (2005)
Am. J. Pathol.
166, 649-652
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| PDF »
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- H. A. Woo, W. Jeong, T.-S. Chang, K. J. Park, S. J. Park, J. S. Yang, and S. G. Rhee (2005)
J. Biol. Chem.
280, 3125-3128
| Abstract »
| Full Text »
| PDF »
- Peroxiredoxin-linked Detoxification of Hydroperoxides in Toxoplasma gondii.
- S. E. Akerman and S. Muller (2005)
J. Biol. Chem.
280, 564-570
| Abstract »
| Full Text »
| PDF »
- Hydrogen peroxide as a signal controlling plant programmed cell death.
- T. S. Gechev and J. Hille (2005)
J. Cell Biol.
168, 17-20
| Abstract »
| Full Text »
| PDF »
- Contribution of the Helicobacter pylori Thiol Peroxidase Bacterioferritin Comigratory Protein to Oxidative Stress Resistance and Host Colonization.
- G. Wang, A. A. Olczak, J. P. Walton, and R. J. Maier (2005)
Infect. Immun.
73, 378-384
| Abstract »
| Full Text »
| PDF »
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- T.-S. Chang, W. Jeong, H. A. Woo, S. M. Lee, S. Park, and S. G. Rhee (2004)
J. Biol. Chem.
279, 50994-51001
| Abstract »
| Full Text »
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- J. Kwon, S.-R. Lee, K.-S. Yang, Y. Ahn, Y. J. Kim, E. R. Stadtman, and S. G. Rhee (2004)
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101, 16419-16424
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279, 49003-49009
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- A. M. Avery, S. A. Willetts, and S. V. Avery (2004)
J. Biol. Chem.
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279, 25830-25837
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| PDF »
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- A. V. Budanov, A. A. Sablina, E. Feinstein, E. V. Koonin, and P. M. Chumakov (2004)
Science
304, 596-600
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- Targets of stress-induced oxidative damage in plant mitochondria and their impact on cell carbon/nitrogen metabolism.
- N. L. Taylor, D. A. Day, and A. H. Millar (2004)
J. Exp. Bot.
55, 1-10
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- Crystal Structure of Escherichia coli Thiol Peroxidase in the Oxidized State: INSIGHTS INTO INTRAMOLECULAR DISULFIDE FORMATION AND SUBSTRATE BINDING IN ATYPICAL 2-CYS PEROXIREDOXINS.
- J. Choi, S. Choi, J. Choi, M.-K. Cha, I.-H. Kim, and W. Shin (2003)
J. Biol. Chem.
278, 49478-49486
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| PDF »
- Reversible Oxidation of the Active Site Cysteine of Peroxiredoxins to Cysteine Sulfinic Acid: IMMUNOBLOT DETECTION WITH ANTIBODIES SPECIFIC FOR THE HYPEROXIDIZED CYSTEINE-CONTAINING SEQUENCE.
- H. A. Woo, S. Won Kang, H. K. Kim, K.-S. Yang, H. Z. Chae, and S. G. Rhee (2003)
J. Biol. Chem.
278, 47361-47364
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| Full Text »
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- Seed 1-Cysteine Peroxiredoxin Antioxidants Are Not Involved in Dormancy, But Contribute to Inhibition of Germination during Stress.
- C. Haslekas, M. K. Viken, P. E. Grini, V. Nygaard, S. H. Nordgard, T. J. Meza, and R. B. Aalen (2003)
Plant Physiology
133, 1148-1157
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- Regeneration of Peroxiredoxins during Recovery after Oxidative Stress: ONLY SOME OVEROXIDIZED PEROXIREDOXINS CAN BE REDUCED DURING RECOVERY AFTER OXIDATIVE STRESS.
- M. Chevallet, E. Wagner, S. Luche, A. van Dorsselaer, E. Leize-Wagner, and T. Rabilloud (2003)
J. Biol. Chem.
278, 37146-37153
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| Full Text »
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