
Oxidative stress response ofInonotus obliquusinduced by hydrogen peroxide
Author(s) -
Weifa Zheng,
Yanxia Zhao,
Meimei Zhang,
Zhiwen Wei,
Kangjie Miao,
Weiguo Sun
Publication year - 2009
Publication title -
medical mycology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.004
H-Index - 86
eISSN - 1460-2709
pISSN - 1369-3786
DOI - 10.3109/13693780802653933
Subject(s) - catalase , chemistry , arbutin , superoxide dismutase , oxidative stress , hydrogen peroxide , biochemistry , polyphenol , inonotus obliquus , polyphenol oxidase , antioxidant , enzyme , food science , superoxide , mycelium , biology , botany , peroxidase
While the medicinal fungus Inonotus obliquus produces polyphenols as one of its main metabolites in natural habitats, it accumulates less polyphenols under laboratory conditions. In this study we found that the continuous addition of 1 mM H(2)O(2) at a rate of 1.6 ml/h into a submerged culture of the fungus enhanced its production of mycelia, melanins, flavonoids and hispidin analogs (HA). Simultaneous exposure of the fungus to both H(2)O(2) and arbutin resulted in reduced production of mycelia, glycosylated flavonoids (GF) and HA, and inhibition of melanogenesis. However, superoxide dismutases (SOD) and catalase (CAT) activity were enhanced following the addition of H(2)O(2) or H(2)O(2) plus arbutin. The maximum levels of SOD and CAT activities reached 355.2 U/mg protein and 39.8 U/mg protein respectively in H(2)O(2)-added medium, and 264 U/mg protein and 35.9 U/mg protein respectively in H(2)O(2) plus arbutin medium. Thus, detoxification of H(2)O(2) is conducted mainly by polyphenols under normal physiological conditions, and by both polyphenols and antioxidant enzymes under oxidative stress when melanogenesis is inhibited. Although enhanced HA production occurred after melanogenesis inactivation, total extracellular polyphenol levels were reduced. These findings suggest that enzymatic activities convert superoxide to H(2)O(2), and non-enzymatic mechanisms are largely responsible for detoxifying H(2)O(2). Enhanced production of melanins is the most important non-enzymatic response of this fungus against oxidative stress.
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