Glucose uptake kinetics and transcription of HXT genes chemostat cultures of Saccharomyces cerevisiae

被引:176
作者
Diderich, JA
Schepper, M
van Hoek, P
Luttik, MAH
van Dijken, JP
Pronk, JT
Klaassen, P
Boelens, HFM
de Mattos, RJT
van Dam, K
Kruckeberg, AL
机构
[1] Univ Amsterdam, EC Slater Inst, NL-1018 TV Amsterdam, Netherlands
[2] Delft Univ Technol, Kluyver Lab Biotechnol, NL-2628 BC Delft, Netherlands
[3] Gist Brocades BV, NL-2600 MA Delft, Netherlands
[4] Univ Amsterdam, Dept Chem Engn, NL-1018 WV Amsterdam, Netherlands
关键词
D O I
10.1074/jbc.274.22.15350
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
The kinetics of glucose transport and the transcription of all 20 members of the HXT hexose transporter gene family were studied in relation to the steady state in situ carbon metabolism of Saccharomyces cerevisiae CEN.PK113-7D grown in chemostat cultures. Cells were cultivated at a dilution rate of 0.10 h(-1) under various nutrient-limited conditions (anaerobically glucose- or nitrogen-limited or aerobically glucose-, galactose-, fructose-, ethanol-, or nitrogen-limited), or at dilution rates ranging between 0.05 and 0.38 h(-1) in aerobic glucose-limited cultures. Transcription of HXT1-HXT7 was correlated with the extracellular glucose concentration in the cultures. Transcription of GAL2, encoding the galactose transporter, was only detected in galactose-limited cultures. SNF3 and RGT2, two members of the HXT family that encode glucose sensors, were transcribed at low levels. HXT8-HXT17 transcripts were detected at very low levels. A consistent relationship was observed between the expression of individual HXT genes and the glucose transport kinetics determined from zero-trans influx of C-14-glucose during 5 s, This relationship was in broad agreement with the transport kinetics of Hxt1-Hxt7 and Gal2 deduced in previous studies on single-HXT strains. At lower dilution rates the glucose transport capacity estimated from zero-trans influx experiments and the residual glucose concentration exceeded the measured in situ glucose consumption rate. At high dilution rates, however, the estimated glucose transport capacity was too low to account for the in situ glucose consumption rate.
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页码:15350 / 15359
页数:10
相关论文
共 54 条
[1]  
ADAMS J, 1985, GENETICS, V110, P173
[2]  
Bergmeyer H.V., 1974, Methods of Enzymatic Analysis
[3]   YEAST SUGAR TRANSPORTERS [J].
BISSON, LF ;
COONS, DM ;
KRUCKEBERG, AL ;
LEWIS, DA .
CRITICAL REVIEWS IN BIOCHEMISTRY AND MOLECULAR BIOLOGY, 1993, 28 (04) :259-308
[4]   HIGH-AFFINITY GLUCOSE-TRANSPORT IN SACCHAROMYCES-CEREVISIAE IS UNDER GENERAL GLUCOSE REPRESSION CONTROL [J].
BISSON, LF .
JOURNAL OF BACTERIOLOGY, 1988, 170 (10) :4838-4845
[5]   The molecular genetics of hexose transport in yeasts [J].
Boles, E ;
Hollenberg, CP .
FEMS MICROBIOLOGY REVIEWS, 1997, 21 (01) :85-111
[6]   Multiple duplications of yeast hexose transport genes in response to selection in a glucose-limited environment [J].
Brown, CJ ;
Todd, KM ;
Rosenzweig, RF .
MOLECULAR BIOLOGY AND EVOLUTION, 1998, 15 (08) :931-942
[7]   THE YEAST SNF3-GENE ENCODES A GLUCOSE TRANSPORTER HOMOLOGOUS TO THE MAMMALIAN PROTEIN [J].
CELENZA, JL ;
MARSHALLCARLSON, L ;
CARLSON, M .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1988, 85 (07) :2130-2134
[8]  
CIRIACY M, 1997, YEAST SUGAR METABOLI, P45
[9]   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
[10]   Yeast carbon catabolite repression [J].
Gancedo, JM .
MICROBIOLOGY AND MOLECULAR BIOLOGY REVIEWS, 1998, 62 (02) :334-+