Catabolism of hyaluronan: Involvement of transition metals
By: Ladislav Šoltés and Grigorij Kogan
Open Access
|Jan 2010References
- Buettner GR, Jurkiewicz BA. (1993). The ascorbate free radical as a marker of oxidative stress: An EPR study.: 49-55.
- Delmage JM, Powars DR, Jaynes PK, Allerton SE. (1986). The selective suppression of immunogenicity by hyaluronic acid.: 303-310.
- Feinberg RN, Beebe DC. (1983). Hyaluronate in vasculogenesis.: 1177-1179.
- Fisher AEO, Naughton DP. (2003). Vitamin C contributes to inflammation via radical generating mechanisms: a cautionary note.: 657-660.
- Fisher AEO, Naughton DP. (2004). Iron supplements: the quick fix with longterm consequences.: 1-5.
- Fisher AEO, Naughton DP. (2005). Therapeutic chelators for the twenty first Century: new treatments for iron and copper mediated inflammatory and neurological disorders.: 261-268.
- Flemmig J, Arnhold J. (2007). Ferrous ion-induced strand breaks in the DNA plasmid pBR322 are not mediated by hydrogen peroxide.: 377-384.
- Gaetke LM, Chow CK. (2003). Copper toxicity, oxidative stress, and antioxidant nutrients.: 147-163.
- Grootveld M, Henderson EB, Farrell A, Blake DR, Parkes HG, Haycock P. (1991). Oxidative damage to hyaluronate and glucose in synovial fluid during exercise of the inflamed rheumatoid joint. Detection of abnormal low-molecular-mass metabolites by proton-n.m.r. spectroscopy.: 459-467.
- Halliwell B, Gutteridge JMC. (1990). Role of free radicals and catalytic metal ions in human disease: An overview.: 1-85.
- HaMai D, Bondy SC, Becaria A, Campbell A. (2001). The chemistry of transition metals in relation to their potential role in neurodegenerative processes.: 541-551.
- Hardingham T. (2004). Solution Properties of Hyaluronan, in(Garg HG and Hales CA eds) pp. 1-19, Elsevier Press, Amsterdam.
- Hawkins CL, Davies MJ. (1996). Direct detection and identification of radicals generated during the hydroxyl radical-induced degradation of hyaluronic acid and related materials.(3): 275-290.
- Itano N, Sawai T, Yoshida M, Lenas P, Yamada Y, Imagawa M, Shinomura T, Hamaguchi M, Yoshida Y, Ohnuki Y, Miyauchi S, Spicer AP, McDonald JA, Kimata K. (1999). Three isoforms of mammalian hyaluronan synthases have distinct enzymatic properties.: 25085-25092.
- Jiang D, Liang J, Noble PW. (2007). Hyaluronan in Tissue Injury and Repair.: 435-461.
- Khan MMT, Martell AE. (1967). Metal ion and metal chelate catalyzed oxidation of ascorbic acid by molecular oxygen. I. Cupric and ferric ion catalyzed oxidation.: 4176-4185.
- Kogan G, Šoltés L, Stern R, Mendichi R. (2007). Chapter 31: Hyaluronic Acid: A Biopolymer with Versatile Physico-Chemical and Biological Properties, in(Pethrick RA, Ballada A, Zaikov GE eds), pp. 393-439, Nova Science Publishers, New York.
- Kogan G, Šoltés L, Stern R, Schiller J, Mendichi R. (2008). Hyaluronic Acid: Its Function and Degradation in In Vivo Systems, in(Atta-ur-Rahman ed) pp. 789-882, Elsevier, Amsterdam.
- Koppenol WH. (1994). Chemistry of Iron and Copper in Radical Reactions in(Rice-Evans CA and Burdon RH eds) pp. 3-24, Elsevier Science B.V., Amsterdam.
- Magnani A, Silvestri V, Barbucci R. (1999). Hyaluronic acid and sulphated hyaruronic acid in aqueous solution: effect of the sulphation in the polyelectrolyte behaviour and complex formation with Cuand Znions.: 2003-2014.
- McBride WH, Bard JB. (1979). Hyaluronidase-sensitive halos around adherent cells. Their role in blocking lymphocyte-mediated cytolysis.: 507-515.
- Myint P, Deeble DH, Beaumont PC, Blake SM, Phyllips GO. (1987). The reactivity of various free radicals with hyaluronic acid: steady-state and pulse radiolysis studies,: 194-202.
- Niedermeier W, Griggs JH. (1971). Trace metal composition of synovial fluid and blood serum of patients with rheumatoid arthritis.: 527-536.
- Noble PW. (2002). Hyaluronan and its catabolic products in tissue injury and repair.: 25-29.
- Pirc ET, Arčcon I, Kodre A, Bukovec P. (2004). Metal-ion environment in solid Mn(II), Co(II) and Ni(II) hyaluronates.: 2549-2554.
- Presti D, Scott JE. (1994). Hyaluronan-mediated protective effect against cell damage caused by enzymatically produced hydroxyl (OH·) radicals is dependent on hyaluronan molecular mass.: 281-288.
- Qian SY., Buettner GR. (1999). Iron and dioxygen chemistry is an important route to initiation of biological free radical oxidations: An electron paramagnetic resonance spin trapping study.: 1447-1456.
- Roth JA. (2006). Homeostatic and toxic mechanisms regulating manganese uptake, retention, and elimination.: 45-57.
- Rychlý J, Šoltés L, Stankovská M, Janigová I, Csomorová K, Sasinková V, Kogan G, Gemeiner P. (2006). Unexplored capabilities of chemiluminescence and thermoanalytical methods in characterization of intact and degraded hyaluronans.: 3174-3184.
- Shukla N, Maher J, Masters J, Angelini GD, Jeremy JY. (2006). Does oxidative stress change ceruloplasmin from a protective to a vasculopathic risk factor?: 238-250.
- Šoltés L, Kogan G, Stankovská M, Mendichi R, Rýchly J, Schiller J, Gemeiner P. (2007). Degradation of high-molecular-mass hyaluronan and characterization of fragments.: 2697-2705.
- Šoltés L, Mendichi R, Kogan G, Schiller J, Stankovská M, Arnhold J. (2006). Degradative action of reactive oxygen species on hyaluronan.: 659-668.
- Šoltés L, Stankovská M, Brezová V, Schiller J, Arnhold J, Kogan G, Gemeiner P. (2006). Degradation of high-molecular-weight hyaluronan by hydrogen peroxide in the presence of cupric ions.: 2826-2834.
- Šoltés L, Valachová K, Mendichi R, Kogan G, Arnhold J, Gemeiner P. (2007). Solution properties of high-molar-mass hyaluronans: the biopolymer degradation by ascorbate.: 1071-1077.
- Stern R, Asari AA, Sugahara KN. (2006), Hyaluronan fragments: an information-rich system.(8): 699-715.
- Stern R, Kogan G, Jedrzejas MJ, Šoltés L. (2007). The many ways to cleave hyaluronan.: 537-557.
- Szilagyi RK, Bryngelson PA, Maroney MJ, Hedman B, Hodgson KO, Solomon EI. (2004). S K-edge C-ray absorption spectroscopic investigation of the Ni-containing superoxide dismutase active site.: 3018-3019.
- Thornalley PJ. (2003). Protecting the genome: defence against nucleotide glycation and emerging role of glyoxalase I overexpression in multidrug resistance in cancer chemotherapy.: 1343-1348.
- Udenfriend S, Clark CT, Axelrod J, Brodie BB. (1954). Ascorbic acid in aromatic hydroxylation. I. A model system for aromatic hydroxylation.: 731-739.
- Valachova K, Kogan G, Gemeiner P, Soltes L. (2009). Hyaluronan degradation by ascorbate: Protective effects of manganese(II) chloride, in(Pearce EM, Zaikov GE, Kirshenbaum G eds), pp. 201-215, Nova Science Publishers, New York.
- Valko M, Morris H, Cronin MTD. (2005). Metals,: 1161-1208.
- Weigel PH, DeAngelis PL. (2007). Hyaluronan Synthases: A Decade-plus of Novel Glycosyltransferases: 36777-36781.
- Weissberger A, LuValle JE, Thomas DS Jr. (1943). Oxidation processes. XVI. The autooxidation of ascorbic acid.: 1934-1939.
- West DC, Hampson IN, Arnold F, Kumar S. (1985). Angiogenesis induced by degradation products of hyaluronic acid.: 1324-1326.
- Wong SF, Halliwell B, Richmond R, Skowroneck WR. (1981). The role of superoxide and hydroxyl radicals in the degradation of hyaluronic acid induced by metal ions and by ascorbic acid.: 127-134.
Language: English
Page range: 229 - 238
Published on: Jan 6, 2010
Published by: Slovak Academy of Sciences, Institute of Experimental Pharmacology & Toxicology, Centre of Experimental Medicine
In partnership with: Paradigm Publishing Services
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© 2010 Ladislav Šoltés, Grigorij Kogan, published by Slovak Academy of Sciences, Institute of Experimental Pharmacology & Toxicology, Centre of Experimental Medicine
This work is licensed under the Creative Commons License.