The yeast mitochondrial proteome, a study of fermentative and respiratory growth

被引:131
作者
Ohlmeier, S
Kastaniotis, AJ
Hiltunen, JK
Bergmann, U
机构
[1] Univ Oulu, Bioctr Oulu, FIN-90014 Oulu, Finland
[2] Univ Oulu, Dept Biochem, FIN-90014 Oulu, Finland
关键词
D O I
10.1074/jbc.M310160200
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
Saccharomyces cerevisiae is able to switch from fermentation to respiration (diauxic shift) with major changes in metabolic activity. This phenomenon has been previously studied on the transcriptional level. Here we present a parallel analysis of the yeast mitochondrial proteome and the corresponding transcriptional activity in cells grown on glucose (fermentation) and glycerol (respiration). A two-dimensional reference gel for this organelle proteome was established (available at www.biochem.oulu.fi/proteomics/), which contains about 800 intense spots. From 459 spots 253 individual proteins were identified, among them low abundant and hydrophobic proteins, and 37 proteins previously deemed hypothetical, with partially unknown cellular localization. After the diauxic shift, mitochondrial levels of only 18 proteins were changed (17 increased, with 1 decreased), among them proteins involved in the tricarboxylic acid cycle (Sdh1p, Sdh2p, and Sdh4p) and the respiratory chain (Cox4p, Cyb2p, and Qcr7p), proteins contributing to other respiratory pathways (Ach1p, Adh2p, Ald4p, Cat2p, Icl2p, and Pdh1p), and two proteins with unknown function (Om45p and Ybr230p). Apart from an overall increase in mitochondrial protein mass, the mitochondrial proteome remains remarkably constant, even in a major metabolic adaptation. This seemingly disagrees with results of the DNA microarray analyses, where a rather heterogenous up- or down-regulation of genes encoding mitochondrial proteins implies large changes in the proteome. We propose that the discrepancy between proteome and transcriptional regulation, apart from different translation efficiency, indicates a changed turnover rate of proteins in different physiological conditions.
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收藏
页码:3956 / 3979
页数:24
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共 97 条
[21]  
Büttner K, 2001, ELECTROPHORESIS, V22, P2908, DOI 10.1002/1522-2683(200108)22:14<2908::AID-ELPS2908>3.0.CO
[22]  
2-M
[23]  
CAPEILLEREBLANDIN C, 1982, EUR J BIOCHEM, V128, P533
[24]   Inheritance of mitochondrial disorders [J].
Chinnery, PF .
MITOCHONDRION, 2002, 2 (1-2) :149-155
[25]   Exploring the metabolic and genetic control of gene expression on a genomic scale [J].
DeRisi, JL ;
Iyer, VR ;
Brown, PO .
SCIENCE, 1997, 278 (5338) :680-686
[26]  
DEWINDE JH, 1997, YEAST STRESS RESPONS, P7
[27]   Fast 100-nm resolution three-dimensional microscope reveals structural plasticity of mitochondria in live yeast [J].
Egner, A ;
Jakobs, S ;
Hell, SW .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2002, 99 (06) :3370-3375
[28]   Proteins involved in peroxisome biogenesis and functioning [J].
Elgersma, Y ;
Tabak, HF .
BIOCHIMICA ET BIOPHYSICA ACTA-REVIEWS ON BIOMEMBRANES, 1996, 1286 (03) :269-283
[29]   REGULATION OF SUGAR UTILIZATION BY SACCHAROMYCES-CEREVISIAE [J].
ENTIAN, KD ;
BARNETT, JA .
TRENDS IN BIOCHEMICAL SCIENCES, 1992, 17 (12) :506-510
[30]   Genome-wide responses to mitochondrial dysfunction [J].
Epstein, CB ;
Waddle, JA ;
Hale, W ;
Davé, V ;
Thornton, J ;
Macatee, TL ;
Garner, HR ;
Butow, RA .
MOLECULAR BIOLOGY OF THE CELL, 2001, 12 (02) :297-308