ACQUISITION OF ETHANOL TOLERANCE IN SACCHAROMYCES-CEREVISIAE - THE KEY ROLE OF THE MITOCHONDRIAL SUPEROXIDE-DISMUTASE

被引:76
作者
COSTA, V
REIS, E
QUINTANILHA, A
MORADASFERREIRA, P
机构
[1] UNIV PORTO, INST CIENCIAS BIOMED ABEL SALAZAR, DEPT BIOL MOLEC, P-4000 OPORTO, PORTUGAL
[2] UNIV PORTO, CTR CITOL EXPTL, P-4000 OPORTO, PORTUGAL
关键词
D O I
10.1006/abbi.1993.1084
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Saccharomyees cerevisiae aBR10 cells are able to develop resistance to lethal ethanol concentrations (14%, v/v), by preexposure to a sublethal heat shock (37°C) or ethanol stress (8%, v/v). Heat shock and 8% ethanol stress had no effect on the concentrations of glutathione [reduced (GSH) and oxidized (GSSG) forms] and on glutathione reductase and CuZn superoxide dismutase (SOD) activities, suggesting that the development of resistance to lethal ethanol concentrations is independent of these antioxidant defenses. In fact, a S. cerevisiae mutant, deficient in CuZnSOD, had an even higher ethanol tolerance, compared to the wild-type strain, and this mutation did not impair a further acquisition of ethanol tolerance. In contrast to CuZnSOD, the MnSOD activity seems to play a more important role in ethanol resistance. The MnSOD activity of the S. cerevisiae aBR10 cells increased upon exposure to heat shock or 8% ethanol. The higher tolerance to 14% ethanol in CuZnSOD deficient cells was also associated to a higher MnSOD activity, as compared to the aBR10 cells; this activity decreased during both stress pretreatments (while still higher than that observed in the wild-type strain). The results obtained suggest that maximum ethanol tolerance is attained with a MnSOD activity close to 1.0 U/mg protein. On either side of this value, the increased sensitivity of S. cerevisiae cells to 14% ethanol might be due to an inability to prevent either superoxide radical- or hydrogen peroxide-induced damages, respectively. These results are supported by the fact that a MnSOD deficiency renders yeast cells more ethanol sensitive. © 1993 Academic Press, Inc.
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页码:608 / 614
页数:7
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