Publication Cover
Redox Report
Communications in Free Radical Research
Volume 7, 2002 - Issue 1
2,779
Views
186
CrossRef citations to date
0
Altmetric
Correspondence

The Haber-Weiss cycle—70 years later: an alternative view

&
Pages 55-57 | Published online: 19 Jul 2013

  • Koppenol WH. The Haber-Weiss cycle —70 years later. Red ox Rep 2001;6: 229–234.
  • Haber F, Willstätter R. Unpaarigkeit und Radicalketten im Reaction-mechanismus organisher and enzymatischer Vörgange. Ber Deutsch Chem Ges 1931;64: 2844–2856.
  • Haber F, Weiss J. The catalytic decomposition of hydrogen peroxide by iron salts. Proc R Soc Lond [A] 1934; 147: 332–351.
  • Barb WG, Baxendale JH, George P, Hargrave KR. Reactions of ferrous and ferric ions with hydrogen peroxide. Part I — The ferrous ion reaction. Trans Faraday Soc 1951; 47: 462–500.
  • Beauchamp CO, Fridovich I. A mechanism for the production of ethylene from methional. The generation of hydroxyl radical by xanthine oxidase. J Biol Chem 1970; 245: 4641–4646.
  • Halliwell B. Superoxide-dependent formation of hydroxyl radicals in the presence of iron chelates: is it a mechanism for hydroxyl radical production in biochemical systems? FEBS Lett 1978; 92: 321–326.
  • McCord JM, Day ED Jr. Superoxide-dependent production of hydroxyl radical catalyzed by the iron-EDTA complex. FEBS Lett 1978;86: 139–142.
  • Liochev SI, Fridovich I. Superoxide and iron: partners in crime. IUBMB Life 1999; 48: 157–161.
  • Fridovich I. Oxygen toxicity: a radical explanation. J Exp Biol 1998; 201: 1203–1209.
  • Liochev SI. The mechanism of `Fenton-like' reactions and their importance for biological systems. A biologist's view. In: Sigel A, Sigel H. (eds) Metal Ions in Biological Systems. vol 36. New York: Marcel Dekker 1999; 1-39.
  • Wardman P, Candeias LP. Fenton chemistry: an introduction. Radiat Res 1996; 145: 523–531.
  • Halliwell B, Gutteridge JMC. Role of free radicals and catalytic metal ions in human disease: an overview. Methods Enzymol 1990; 186: 1–85.
  • Liochev SI, Fridovich I. The role of 02- in the production of HO': in vitro and in vivo. Free Radic Biol Med 1994; 16: 29–33.
  • Winterbourn CC. Superoxide as an intracellular sink. Free Radic Biol Med 1993; 14: 85–90.
  • Carlioz A, Touati D. Isolation of superoxide dismutase mutants in Escherichia coli: is superoxide dismutase strictly necessary for aerobic life? EMBO J1986; 5: 623-630.
  • Keyer K, Strohmeier-Gort A, Imlay JA. Superoxide and the production of oxidative DNA damage. J Bacteriol 1995; 177: 6782–6790.
  • Liochev SI. The role of iron-sulfur clusters in in vivo hydroxyl radical production. Free Radic Res 1996; 5:369–384.
  • Koppenol WH. Chemistry of peroxynitrite and its relevance to biological systems. In: Sigel A, Sigel H. (eds) Metal Ions in Biological Systems. vol 36. New York: Marcel Dekker 1999; 597-619.
  • Koppenol WH. The basic chemistry of nitrogen monoxide and peroxynitrite Free Radic Biol Med 1998; 25: 385–391.
  • Bielski BHJ, Allen AO. Mechanism of the disproportionation of superoxide radicals. J Phys Chem 1977; 81: 1048–1050.
  • Flint DH, Tuminello JF, Emptage MH. The inactivation of Fe-S cluster containing hydrolyases by superoxide. J Biol Chem 1993; 268: 22369–22376.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.