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Volumn 16, Issue 1, 2011, Pages 15-23

Acetate but not propionate induces oxidative stress in bakers' yeast Saccharomyces cerevisiae

Author keywords

ABC transporter pdr12p; Acetic acid; Antioxidant enzymes; Propionic acid; Protein carbonyls; Yeast cross protection

Indexed keywords

ABC TRANSPORTER; ACETIC ACID; CATALASE; FLUORESCEIN; FOOD PRESERVATIVE; HYDROGEN PEROXIDE; PROPIONIC ACID; PROTEIN PDR12; PROTEIN WAR1; SACCHAROMYCES CEREVISIAE PROTEIN; SUPEROXIDE DISMUTASE; TRANSCRIPTION FACTOR; TRANSCRIPTION FACTOR YAP1; UNCLASSIFIED DRUG;

EID: 79957871574     PISSN: 13510002     EISSN: 17432928     Source Type: Journal    
DOI: 10.1179/174329211X12968219310954     Document Type: Article
Times cited : (44)

References (47)
  • 1
    • 0032439653 scopus 로고    scopus 로고
    • Oxidative stress responses of the yeast Saccharomyces cerevisiae
    • Jamieson DJ. Oxidative stress responses of the yeast Saccharomyces cerevisiae. Yeast 1998;14:1511-27.
    • (1998) Yeast , vol.14 , pp. 1511-1527
    • Jamieson, D.J.1
  • 2
    • 0033458078 scopus 로고    scopus 로고
    • Yeast superoxide dismutase mutants reveal a prooxidant action of weak organic acid food preservatives
    • Piper P. Yeast superoxide dismutase mutants reveal a prooxidant action of weak organic acid food preservatives. Free Radic Biol Med 1999;17:1219-27.
    • (1999) Free Radic Biol Med , vol.17 , pp. 1219-1227
    • Piper, P.1
  • 3
    • 4143122202 scopus 로고    scopus 로고
    • Benzoic acid, a weak organic acid food preservative, exerts specific effects on intracellular membrane trafficking pathways in Saccharomyces cerevisiae
    • Hazan R, Levine A, Abeliovich H. Benzoic acid, a weak organic acid food preservative, exerts specific effects on intracellular membrane trafficking pathways in Saccharomyces cerevisiae. Appl Environ Microbiol 2004;70:4449-57.
    • (2004) Appl Environ Microbiol , vol.70 , pp. 4449-4457
    • Hazan, R.1    Levine, A.2    Abeliovich, H.3
  • 4
    • 0037174286 scopus 로고    scopus 로고
    • The multidrug resistance transporters of the major facilitator superfamily, 6 years after disclosure of Saccharomyces cerevisiae genome sequence
    • Sá-Correia I, Tenreiro S. The multidrug resistance transporters of the major facilitator superfamily, 6 years after disclosure of Saccharomyces cerevisiae genome sequence. J Biotechnol 2002; 98:215-26.
    • (2002) J Biotechnol , vol.98 , pp. 215-226
    • Sá-Correia, I.1    Tenreiro, S.2
  • 5
    • 77958162502 scopus 로고    scopus 로고
    • Adaptive response and tolerance to weak acids in Saccharomyces cerevisiae: A genome-wide view
    • Mira NP, Teixeira MC, Sá-Correia I. Adaptive response and tolerance to weak acids in Saccharomyces cerevisiae: a genome-wide view. OMICS 2010;14:525-40.
    • (2010) OMICS , vol.14 , pp. 525-540
    • Mira, N.P.1    Teixeira, M.C.2    Sá-Correia, I.3
  • 6
    • 78650598564 scopus 로고    scopus 로고
    • Adaptive response to oxidative stress: Bacteria, fungi, plants and animals
    • Lushchak VI. Adaptive response to oxidative stress: bacteria, fungi, plants and animals. Comp Biochem Physiol 2011;153: 175-90.
    • (2011) Comp Biochem Physiol , vol.153 , pp. 175-190
    • Lushchak, V.I.1
  • 8
    • 0034807841 scopus 로고    scopus 로고
    • Saccharomyces cerevisiae commits to a programmed cell death process in response to acetic acid
    • Ludovico P, Sousa MJ, Silva MT, Leão C, Côrte-Real M. Saccharomyces cerevisiae commits to a programmed cell death process in response to acetic acid. Microbiology 2001;147: 2409-15.
    • (2001) Microbiology , vol.147 , pp. 2409-2415
    • Ludovico, P.1    Sousa, M.J.2    Silva, M.T.3    Leão, C.4    Côrte-Real, M.5
  • 9
    • 17144404923 scopus 로고    scopus 로고
    • Natural conditions inducing programmed cell death in the yeast Saccharomyces cerevisiae
    • Knorre DA, Smirnova EA, Severin FF. Natural conditions inducing programmed cell death in the yeast Saccharomyces cerevisiae. Biochemistry (Moscow) 2005;70:264-6.
    • (2005) Biochemistry (Moscow) , vol.70 , pp. 264-266
    • Knorre, D.A.1    Smirnova, E.A.2    Severin, F.F.3
  • 10
    • 42049087857 scopus 로고    scopus 로고
    • Cytochrome c is released from coupled mitochondria of yeast en route to acetic acid-induced programmed cell death and can work as an electron donor and a ROS scavenger
    • Giannattasio S, Atlante A, Antonacci L, Guaragnella N, Lattanzio P, Passarella S, et al. Cytochrome c is released from coupled mitochondria of yeast en route to acetic acid-induced programmed cell death and can work as an electron donor and a ROS scavenger. FEBS Lett 2008;582:1519-25.
    • (2008) FEBS Lett , vol.582 , pp. 1519-1525
    • Giannattasio, S.1    Atlante, A.2    Antonacci, L.3    Guaragnella, N.4    Lattanzio, P.5    Passarella, S.6
  • 11
    • 38049068839 scopus 로고    scopus 로고
    • Catalase T and Cu,Zn-superoxide dismutase in the acetic acid-induced programmed cell death in Saccharomyces cerevisiae
    • Guaragnella N, Antonacci L, Giannattasio S, Marra E, Passarella S. Catalase T and Cu,Zn-superoxide dismutase in the acetic acid-induced programmed cell death in Saccharomyces cerevisiae. FEBS Lett 2008;582:210-4.
    • (2008) FEBS Lett , vol.582 , pp. 210-214
    • Guaragnella, N.1    Antonacci, L.2    Giannattasio, S.3    Marra, E.4    Passarella, S.5
  • 12
    • 60549114895 scopus 로고    scopus 로고
    • Yeast protein expression profile during acetic acid-induced apoptosis indicates causal involvement of the TOR pathway
    • Almeida B, Ohlmeier S, Almeida AJ, Madeo F, Leão C, Rodrigues F, et al. Yeast protein expression profile during acetic acid-induced apoptosis indicates causal involvement of the TOR pathway. Proteomics 2009;9:720-32.
    • (2009) Proteomics , vol.9 , pp. 720-732
    • Almeida, B.1    Ohlmeier, S.2    Almeida, A.J.3    Madeo, F.4    Leão, C.5    Rodrigues, F.6
  • 13
    • 0035131223 scopus 로고    scopus 로고
    • Genetic manipulation of 6- phosphofructo-1-kinase and fructose 2,6-bisphosphate levels affects the extent to which benzoic acid inhibits the growth of Saccharomyces cerevisiae
    • Pearce AK, Booth IR, Brown AJ. Genetic manipulation of 6- phosphofructo-1-kinase and fructose 2,6-bisphosphate levels affects the extent to which benzoic acid inhibits the growth of Saccharomyces cerevisiae. Microbiology 2001;147:403-10.
    • (2001) Microbiology , vol.147 , pp. 403-410
    • Pearce, A.K.1    Booth, I.R.2    Brown, A.J.3
  • 14
    • 0034769551 scopus 로고    scopus 로고
    • Weak acid adaptation: The stress response that confers yeasts with resistance to organic acid food preservatives
    • Piper P, Calderon CO, Hatzixanthis K, Mollapour M.Weak acid adaptation: the stress response that confers yeasts with resistance to organic acid food preservatives. Microbiology 2001;147: 2635-42.
    • (2001) Microbiology , vol.147 , pp. 2635-2642
    • Piper, P.1    Calderon, C.O.2    Hatzixanthis, K.3    Mollapour, M.4
  • 16
    • 41549121934 scopus 로고    scopus 로고
    • Novel stress responses facilitate Saccharomyces cerevisiae growth in the presence of the monocarboxylate preservatives
    • Mollapour M, Shepherd A, Piper PW. Novel stress responses facilitate Saccharomyces cerevisiae growth in the presence of the monocarboxylate preservatives. Yeast 2008;25:169-77.
    • (2008) Yeast , vol.25 , pp. 169-177
    • Mollapour, M.1    Shepherd, A.2    Piper, P.W.3
  • 18
    • 0032766243 scopus 로고    scopus 로고
    • The Saccharomyces cerevisiae weak-acid inducible ABC transporter Pdr12 transports fluorescein and preservative anions from the cytosol by an energy-dependent mechanism
    • Holyoak CD, Bracey D, Piper PW, Kuchler K, Coote PJ. The Saccharomyces cerevisiae weak-acid inducible ABC transporter Pdr12 transports fluorescein and preservative anions from the cytosol by an energy-dependent mechanism. J Bacteriol 1999; 181:4644-52.
    • (1999) J Bacteriol , vol.181 , pp. 4644-4652
    • Holyoak, C.D.1    Bracey, D.2    Piper, P.W.3    Kuchler, K.4    Coote, P.J.5
  • 19
    • 33747353371 scopus 로고    scopus 로고
    • A new physiological role for Pdr12p in Saccharomyces cerevisiae: Exportofaromatic and branchedchain organic acids produced in amino acid catabolism
    • Hazelwood LA, Tai SL, Boer VM, de Winde JH, Pronk JT, Daran JM. A new physiological role for Pdr12p in Saccharomyces cerevisiae: exportofaromatic and branchedchain organic acids produced in amino acid catabolism. FEMS Yeast Res 2006;6:937-45.
    • (2006) FEMS Yeast Res , vol.6 , pp. 937-945
    • Hazelwood, L.A.1    Tai, S.L.2    Boer, V.M.3    de Winde, J.H.4    Pronk, J.T.5    Daran, J.M.6
  • 20
    • 56049101906 scopus 로고    scopus 로고
    • Pdr12pdependent and -independent fluorescein extrusion from baker's yeast cells
    • Lushchak V, Abrat O, Miedzobrodzki J, Semchyshyn H. Pdr12pdependent and -independent fluorescein extrusion from baker's yeast cells. Acta Biochim Pol 2008;55:595-601.
    • (2008) Acta Biochim Pol , vol.55 , pp. 595-601
    • Lushchak, V.1    Abrat, O.2    Miedzobrodzki, J.3    Semchyshyn, H.4
  • 21
    • 0041767568 scopus 로고    scopus 로고
    • Weak organic acid stress inhibits aromatic amino acid uptake by yeast, causing a strong influence of amino acid auxotrophies on the phenotypes of membrane transporter mutants
    • Bauer B, Rossington D, Mollapour M, Mamnun Y, Kuchler K, Piper P. Weak organic acid stress inhibits aromatic amino acid uptake by yeast, causing a strong influence of amino acid auxotrophies on the phenotypes of membrane transporter mutants. Eur J Biochem 2003;270:3189-95.
    • (2003) Eur J Biochem , vol.270 , pp. 3189-3195
    • Bauer, B.1    Rossington, D.2    Mollapour, M.3    Mamnun, Y.4    Kuchler, K.5    Piper, P.6
  • 22
    • 33845918735 scopus 로고    scopus 로고
    • High Pdr12 levels in spoilage yeast (Saccharomyces cerevisiae) correlate directly with sorbic acid levels in the culture medium but are not sufficient to provide cells with acquired resistance to the food preservative
    • Papadimitriou MN, Resende C, Kuchler K, Brul S. High Pdr12 levels in spoilage yeast (Saccharomyces cerevisiae) correlate directly with sorbic acid levels in the culture medium but are not sufficient to provide cells with acquired resistance to the food preservative. Int J Food Microbiol 2007;113:173-9.
    • (2007) Int J Food Microbiol , vol.113 , pp. 173-179
    • Papadimitriou, M.N.1    Resende, C.2    Kuchler, K.3    Brul, S.4
  • 23
    • 0026513954 scopus 로고
    • Inducibility of the response of yeast cells to peroxide stress
    • Collinson LP, Dawes IW. Inducibility of the response of yeast cells to peroxide stress. J Gen Microbiol 1992;138:329-35.
    • (1992) J Gen Microbiol , vol.138 , pp. 329-335
    • Collinson, L.P.1    Dawes, I.W.2
  • 24
    • 55449104987 scopus 로고    scopus 로고
    • Stress-activated genomic expression changes serve a preparative role for impending stress in yeast
    • Berry DB, Gasch AP. Stress-activated genomic expression changes serve a preparative role for impending stress in yeast. Mol Biol Cell 2008;19:4580-7.
    • (2008) Mol Biol Cell , vol.19 , pp. 4580-4587
    • Berry, D.B.1    Gasch, A.P.2
  • 25
    • 67349187753 scopus 로고    scopus 로고
    • Hydrogen peroxide-induced response in E. coli and S. cerevisiae: Different stages of the flow of the genetic information
    • Semchyshyn H. Hydrogen peroxide-induced response in E. coli and S. cerevisiae: different stages of the flow of the genetic information. Cent Eur J Biol 2009;4:142-53.
    • (2009) Cent Eur J Biol , vol.4 , pp. 142-153
    • Semchyshyn, H.1
  • 26
    • 0029844594 scopus 로고    scopus 로고
    • Importance of catalase in the adaptive response to hydrogen peroxide: Analysis of acatalasaemic Saccharomyces cerevisiae
    • Izawa S, Inoue Y, Kimura A. Importance of catalase in the adaptive response to hydrogen peroxide: analysis of acatalasaemic Saccharomyces cerevisiae. Biochem J 1996;320:61-7.
    • (1996) Biochem J , vol.320 , pp. 61-67
    • Izawa, S.1    Inoue, Y.2    Kimura, A.3
  • 27
    • 0033578750 scopus 로고    scopus 로고
    • Genetic analysis of glutathione peroxidase in oxidative stress response of Saccharomyces cerevisiae
    • Inoue Y, Matsuda T, Sugiyama K, Izawa S, Kimura A. Genetic analysis of glutathione peroxidase in oxidative stress response of Saccharomyces cerevisiae. J Biol Chem 1999;274:27002-9.
    • (1999) J Biol Chem , vol.274 , pp. 27002-27009
    • Inoue, Y.1    Matsuda, T.2    Sugiyama, K.3    Izawa, S.4    Kimura, A.5
  • 28
    • 0025938799 scopus 로고
    • Null mutants of Saccharomyces cerevisiae Cu, Zn superoxide dismutase: Characterization and spontaneous mutation rates
    • Gralla EB, Valentine JS. Null mutants of Saccharomyces cerevisiae Cu, Zn superoxide dismutase: characterization and spontaneous mutation rates. J Bacteriol 1991;173:5918-20.
    • (1991) J Bacteriol , vol.173 , pp. 5918-5920
    • Gralla, E.B.1    Valentine, J.S.2
  • 29
    • 51149096729 scopus 로고    scopus 로고
    • Fluorescein transport and antioxidant systems in the yeast Saccharomyces cerevisiae under acid stress
    • Abrat O, Semchyshyn H, Miedzobrodzki J, Lushchak V. Fluorescein transport and antioxidant systems in the yeast Saccharomyces cerevisiae under acid stress. Ukrainian Biochem J 2008;80:70-7.
    • (2008) Ukrainian Biochem J , vol.80 , pp. 70-77
    • Abrat, O.1    Semchyshyn, H.2    Miedzobrodzki, J.3    Lushchak, V.4
  • 30
    • 0036209598 scopus 로고    scopus 로고
    • Influence of medium buffering capacity on inhibition of Saccharomyces cerevisiae growth by acetic and lactic acids
    • Thomas KC, Hynes SH, Ingledew WM. Influence of medium buffering capacity on inhibition of Saccharomyces cerevisiae growth by acetic and lactic acids. Appl Environ Microbiol 2002;68:1616-23.
    • (2002) Appl Environ Microbiol , vol.68 , pp. 1616-1623
    • Thomas, K.C.1    Hynes, S.H.2    Ingledew, W.M.3
  • 31
    • 27844572415 scopus 로고    scopus 로고
    • Diethyldithiocarbamate inhibits in vivo Cu,Zn-superoxide dismutase and perturbs free radical processes in the yeast Saccharomyces cerevisiae cells
    • Lushchak V, Semchyshyn H, Lushchak O, Mandryk S. Diethyldithiocarbamate inhibits in vivo Cu,Zn-superoxide dismutase and perturbs free radical processes in the yeast Saccharomyces cerevisiae cells. Biochem Biophys Res Commun 2005;338:1739-44.
    • (2005) Biochem Biophys Res Commun , vol.338 , pp. 1739-1744
    • Lushchak, V.1    Semchyshyn, H.2    Lushchak, O.3    Mandryk, S.4
  • 32
    • 0017184389 scopus 로고
    • A rapid and sensitive method for the quantification of microgram quantities of protein utilizing the principle of protein-dye binding
    • Bradford MM. A rapid and sensitive method for the quantification of microgram quantities of protein utilizing the principle of protein-dye binding. Anal Biochem 1976;72:289-92.
    • (1976) Anal Biochem , vol.72 , pp. 289-292
    • Bradford, M.M.1
  • 33
    • 25844432253 scopus 로고    scopus 로고
    • Saccharomyces cerevisiae adaptation to weak acids involves the transcription factor Haa1p and Haa1p-regulated genes
    • Fernandes AR, Mira NP, Vargas RC, Canelhas I, Sá-Correia I. Saccharomyces cerevisiae adaptation to weak acids involves the transcription factor Haa1p and Haa1p-regulated genes. Biochem Biophys Res Commun 2005;337:95-103.
    • (2005) Biochem Biophys Res Commun , vol.337 , pp. 95-103
    • Fernandes, A.R.1    Mira, N.P.2    Vargas, R.C.3    Canelhas, I.4    Sá-Correia, I.5
  • 34
    • 34548775911 scopus 로고    scopus 로고
    • Hog1 mitogen-activated protein kinase phosphorylation targets the yeast Fps1 aquaglyceroporin for endocytosis, thereby rendering cells resistant to acetic acid
    • Mollapour M, Piper PW. Hog1 mitogen-activated protein kinase phosphorylation targets the yeast Fps1 aquaglyceroporin for endocytosis, thereby rendering cells resistant to acetic acid. Mol Cell Biol 2007;27:6446-56.
    • (2007) Mol Cell Biol , vol.27 , pp. 6446-6456
    • Mollapour, M.1    Piper, P.W.2
  • 36
    • 71049194353 scopus 로고    scopus 로고
    • Presence of the Fps1p aquaglyceroporin channel is essential for Hog1p activation, but suppresses Slt2(Mpk1)p activation, with acetic acid stress of yeast
    • Mollapour M, Shepherd A, Piper PW. Presence of the Fps1p aquaglyceroporin channel is essential for Hog1p activation, but suppresses Slt2(Mpk1)p activation, with acetic acid stress of yeast. Microbiology 2009;155:3304-11.
    • (2009) Microbiology , vol.155 , pp. 3304-3311
    • Mollapour, M.1    Shepherd, A.2    Piper, P.W.3
  • 37
    • 77958135565 scopus 로고    scopus 로고
    • Genome-wide identification of Saccharomyces cerevisiae genes required for tolerance to acetic acid
    • Mira NP, Palma M, Guerreiro JF, Sá-Correia I. Genome-wide identification of Saccharomyces cerevisiae genes required for tolerance to acetic acid. Microb Cell Fact 2010;9:79.
    • (2010) Microb Cell Fact , vol.9 , pp. 79
    • Mira, N.P.1    Palma, M.2    Guerreiro, J.F.3    Sá-Correia, I.4
  • 38
    • 79954414844 scopus 로고    scopus 로고
    • A genome-wide perspective on the response and tolerance to food-relevant stresses in Saccharomyces cerevisiae
    • in press. DOI:10.1016/j.copbio.2010.10.011
    • Teixeira MC, Mira NP, Sá-Correia I. A genome-wide perspective on the response and tolerance to food-relevant stresses in Saccharomyces cerevisiae. Curr Opin Biotechnol 2010, in press. DOI:10.1016/j.copbio.2010.10.011.
    • (2010) Curr Opin Biotechnol
    • Teixeira, M.C.1    Mira, N.P.2    Sá-Correia, I.3
  • 39
    • 0038290314 scopus 로고    scopus 로고
    • Moderately lipophilic carboxylate compounds are the selective inducers of the Saccharomyces cerevisiae Pdr12p ATP-binding cassette transporter
    • Hatzixanthis K, Mollapour M, Seymour I, Bauer BE, Krapf G, Schuller C, et al. Moderately lipophilic carboxylate compounds are the selective inducers of the Saccharomyces cerevisiae Pdr12p ATP-binding cassette transporter. Yeast 2003;20:575-85.
    • (2003) Yeast , vol.20 , pp. 575-585
    • Hatzixanthis, K.1    Mollapour, M.2    Seymour, I.3    Bauer, B.E.4    Krapf, G.5    Schuller, C.6
  • 40
    • 77958169154 scopus 로고    scopus 로고
    • Genomic expression program involving the Haa1p-regulon in Saccharomyces cerevisiae response to acetic acid
    • Mira NP, Becker JD, Sá-Correia I. Genomic expression program involving the Haa1p-regulon in Saccharomyces cerevisiae response to acetic acid. OMICS 2010;14:587-601.
    • (2010) OMICS , vol.14 , pp. 587-601
    • Mira, N.P.1    Becker, J.D.2    Sá-Correia, I.3
  • 41
    • 23944451104 scopus 로고    scopus 로고
    • Possible role of superoxide dismutases in the yeast Saccharomyces cerevisiae under respiratory conditions
    • Lushchak V, Semchyshyn H, Mandryk S, Lushchak O. Possible role of superoxide dismutases in the yeast Saccharomyces cerevisiae under respiratory conditions. Arch Biochem Biophys 2005; 441:35-40.
    • (2005) Arch Biochem Biophys , vol.441 , pp. 35-40
    • Lushchak, V.1    Semchyshyn, H.2    Mandryk, S.3    Lushchak, O.4
  • 42
    • 67349260802 scopus 로고    scopus 로고
    • ABC transporter Pdr10 regulates the membrane microenvironment of Pdr12 in Saccharomyces cerevisiae
    • Rockwell NC, Wolfger H, Kuchler K, Thorner J. ABC transporter Pdr10 regulates the membrane microenvironment of Pdr12 in Saccharomyces cerevisiae. J Membr Biol 2009;229: 27-52.
    • (2009) J Membr Biol , vol.229 , pp. 27-52
    • Rockwell, N.C.1    Wolfger, H.2    Kuchler, K.3    Thorner, J.4
  • 43
    • 78651428997 scopus 로고    scopus 로고
    • Improvement of acetic acid tolerance and fermentation performance of Saccharomyces cerevisiae by disruption of the FPS1 aquaglyceroporin gene
    • Zhang JG, Liu XY, He XP, Guo XN, Lu Y, Zhang BR. Improvement of acetic acid tolerance and fermentation performance of Saccharomyces cerevisiae by disruption of the FPS1 aquaglyceroporin gene. Biotechnol Lett 2011;33:277-84.
    • (2011) Biotechnol Lett , vol.33 , pp. 277-284
    • Zhang, J.G.1    Liu, X.Y.2    He, X.P.3    Guo, X.N.4    Lu, Y.5    Zhang, B.R.6
  • 45
    • 34548444513 scopus 로고    scopus 로고
    • LushchakV.Free radical oxidation of proteins and its relationship with functional state of organisms
    • LushchakV.Free radical oxidation of proteins and its relationship with functional state of organisms. Biochemistry (Moscow) 2007; 72:809-995.
    • (2007) Biochemistry (Moscow) , vol.72 , pp. 809-995
  • 46
    • 0742270637 scopus 로고    scopus 로고
    • Global phenotypic analysis and transcriptional profiling defines the weak acid stress response regulon in Saccharomyces cerevisiae
    • Schuller C, Mamnun YM, Mollapour M, Krapf G, Schuster M, Bauer BE, et al. Global phenotypic analysis and transcriptional profiling defines the weak acid stress response regulon in Saccharomyces cerevisiae. Mol Biol Cell 2004;15:706-20.
    • (2004) Mol Biol Cell , vol.15 , pp. 706-720
    • Schuller, C.1    Mamnun, Y.M.2    Mollapour, M.3    Krapf, G.4    Schuster, M.5    Bauer, B.E.6
  • 47
    • 34547837362 scopus 로고    scopus 로고
    • Possible accumulation of non-active molecules of catalase and superoxide dismutase in S. cerevisiae cells under hydrogen peroxide induced stress
    • Bayliak MM, Semchyshyn HM, Lushchak VI. Possible accumulation of non-active molecules of catalase and superoxide dismutase in S. cerevisiae cells under hydrogen peroxide induced stress. Cent Eur J Biol 2007;2:326-36.
    • (2007) Cent Eur J Biol , vol.2 , pp. 326-336
    • Bayliak, M.M.1    Semchyshyn, H.M.2    Lushchak, V.I.3


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