RNA-Seq of the xylose-fermenting yeast Scheffersomyces stipitis cultivated in glucose or xylose

被引:27
|
作者
Yuan, Tiezheng [1 ]
Ren, Yan [2 ,3 ]
Meng, Kun [1 ]
Feng, Yun [2 ,3 ]
Yang, Peilong [1 ]
Wang, Shaojing [2 ,3 ]
Shi, Pengjun [1 ]
Wang, Lei [2 ,3 ]
Xie, Daoxin [4 ]
Yao, Bin [1 ]
机构
[1] Chinese Acad Agr Sci, Key Lab Feed Biotechnol, Minist Agr, Feed Res Inst, Beijing 100081, Peoples R China
[2] Nankai Univ, TEDA Sch Biol Sci & Biotechnol, Tianjin 300457, Peoples R China
[3] Tianjin Res Ctr Funct Genom & Biochip, Tianjin 300457, Peoples R China
[4] Tsinghua Univ, Sch Biol Sci, Beijing 100084, Peoples R China
关键词
Scheffersomyces stipitis; Xylose fermentation; Transcriptome; RNA-Seq; Metabolic networks; Protein-protein interactions; RECOMBINANT SACCHAROMYCES-CEREVISIAE; ETHANOL-PRODUCTION; PICHIA-STIPITIS; ALCOHOL-DEHYDROGENASE; GENE-EXPRESSION; METABOLISM; SEQUENCE; MECHANISMS; IRON;
D O I
10.1007/s00253-011-3607-6
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Xylose is the second most abundant lignocellulosic component besides glucose, but it cannot be fermented by the widely used ethanol-producing yeast Saccharomyces cerevisiae. The yeast Scheffersomyces stipitis, however, is well known for its high native capacity to ferment xylose. Here, we applied next-generation sequencing technology for RNA (RNA-Seq) to generate two high-resolution transcriptional maps of the S. stipitis genome when this yeast was grown using glucose or xylose as the sole carbon source. RNA-Seq revealed that 5,176 of 5,816 annotated open reading frames had a uniform transcription and that 214 open reading frames were differentially transcribed. Differential expression analysis showed that, compared with other biological processes, carbohydrate metabolism and oxidation-reduction reactions were highly enhanced in yeast grown on xylose. Measurement of metabolic indicators of fermentation showed that, in yeast grown on xylose, the concentrations of cysteine and ornithine were twofold higher and the concentrations of unsaturated fatty acids were also increased. Analysis of metabolic profiles coincided with analysis of certain differentially expressed genes involved in metabolisms of amino acid and fatty acid. In addition, we predicted protein-protein interactions of S. stipitis through integration of gene orthology and gene expression. Further analysis of metabolic and protein-protein interactions networks through integration of transcriptional and metabolic profiles predicted correlations of genes involved in glycolysis, the tricarboxylic acid cycle, gluconeogenesis, sugar uptake, amino acid metabolism, and fatty acid beta-oxidation. Our study reveals potential target genes for xylose fermentation improvement and provides insights into the mechanisms underlying xylose fermentation in S. stipitis.
引用
收藏
页码:1237 / 1249
页数:13
相关论文
共 50 条
  • [31] Development of xylose-fermenting yeast Pichia stipitis for ethanol production through adaptation on hardwood hemicellulose acid prehydrolysate
    Nigam, JN
    JOURNAL OF APPLIED MICROBIOLOGY, 2001, 90 (02) : 208 - 215
  • [32] NAD(P)H-DEPENDENT ALDOSE REDUCTASE FROM THE XYLOSE-FERMENTING YEAST PICHIA-STIPITIS
    VERDUYN, C
    VANKLEEF, R
    JZN, JF
    SCHREUDER, H
    VANDIJKEN, JP
    SCHEFFERS, WA
    ANTONIE VAN LEEUWENHOEK JOURNAL OF MICROBIOLOGY, 1985, 51 (5-6): : 562 - 562
  • [33] Comparative Metabolic Profiling Revealed Limitations in Xylose-Fermenting Yeast During Co-Fermentation of Glucose and Xylose in the Presence of Inhibitors
    Wang, Xin
    Jin, Mingjie
    Balan, Venkatesh
    Jones, A. Daniel
    Li, Xia
    Li, Bing-Zhi
    Dale, Bruce E.
    Yuan, Ying-Jin
    BIOTECHNOLOGY AND BIOENGINEERING, 2014, 111 (01) : 152 - 164
  • [34] Xylose and cellobiose fermentation to ethanol by the thermotolerant methylotrophic yeast Hansenula polymorpha and by xylose fermenting yeast Pichia stipitis.
    Sibirny, AA
    Ryabova, OB
    Chmil, OM
    Sibirny, V
    Kotylak, Z
    Grabek, D
    YEAST, 2003, 20 : S219 - S219
  • [35] Nonhomologous end joining and homologous recombination DNA repair pathways in integration mutagenesis in the xylose-fermenting yeast Pichia stipitis
    Maassen, Nicole
    Freese, Stefan
    Schruff, Barbara
    Passoth, Volkmar
    Klinner, Ulrich
    FEMS YEAST RESEARCH, 2008, 8 (05) : 735 - 743
  • [36] Differential expression of the Trichoderma reesei β-xylanase II (xyn2) gene in the xylose-fermenting yeast Pichia stipitis
    Den Haan, R
    Van Zyl, WH
    APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2001, 57 (04) : 521 - 527
  • [37] Differential expression of Thetrichoderma reesei β-xylanase II (xyn2) gene in the xylose-fermenting yeast Pichia stipitis
    Den Haan R.
    Van Zyl W.H.
    Applied Microbiology and Biotechnology, 2001, 57 (4) : 521 - 527
  • [38] FORMATION OF SPHEROPLASTS AND PROTOPLASTS IN THE XYLOSE-FERMENTING YEAST PACHYSOLEN-TANNOPHILUS
    KAVANAGH, K
    WHITTAKER, PA
    BIOTECHNOLOGY AND APPLIED BIOCHEMISTRY, 1990, 12 (01) : 57 - 62
  • [39] Proteome analysis of the xylose-fermenting mutant yeast strain TMB 3400
    Karhumaa, Kaisa
    Pahlman, Anna-Karin
    Hahn-Hagerdal, Barbel
    Levander, Fredrik
    Gorwa-Grauslund, Marie-F.
    YEAST, 2009, 26 (07) : 371 - 382
  • [40] Inhibition of alternative respiration system of Scheffersomyces stipitis and effect on glucose or xylose fermentation
    Granados-Arvizu, J. A.
    Canizal-Garcia, M.
    Madrigal-Perez, L. A.
    Gonzalez-Hernandez, J. C.
    Regalado-Gonzalez, C.
    FEMS YEAST RESEARCH, 2021, 21 (02)