Growth-rate recovery of Escherichia coli cultures carrying a multicopy plasmid, by engineering of the pentose-phosphate pathway

被引:62
作者
Flores, S [1 ]
de Anda-Herrera, R [1 ]
Gosset, G [1 ]
Bolívar, FG [1 ]
机构
[1] Univ Nacl Autonoma Mexico, Inst Biotechnol, Dept Ingn Celular & Biocatal, Cuernavaca 62250, Morelos, Mexico
关键词
pentose pathway engineering; zwf gene expression; growth-rate recovery;
D O I
10.1002/bit.20137
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
Expression of plasmid-encoded genes in bacteria is the most common strategy for the production of specific proteins in biotechnological processes. However, the synthesis of plasmid-encoded proteins and plasmid-DNA replication often places a metabolic load (metabolic burden) into the cell's biochemical capacities that usually reduces the growth rate of the producing culture (Glick BR. Biotechnol Adv 1995;13:247-261). This metabolic burden may be related to a limited capacity of the cell to supply the extra demand of building blocks and energy required to replicate plasmid DNA and express foreign multicopy genes. Some of these required blocks are intermediaries of the pentose phosphate (PP) pathway, e.g., ribose-5-phosphate, erythrose-4-phosphate. Due to the important impact of metabolic burden on biotechnological processes, several groups have worked on developing strategies to overcome this problem, like reduction of plasmid copy number (Seo JH, Bailey JE. Biotechnol Bioeng 1985; 27:1668-1674; Jones KL, Kim S, Keasling JD. Metab Eng 2000;3:328-338), chromosomal insertion of the gene which product is desired, or changing the plasmid-coded antibiotic resistance gene (Hong Y, Pasternak JJ, Glick BR. Can J Microbiol 1995;41:624-628). However, few efforts have been attempted to overcome the reduction of growth rate due to protein over-expression, by modifying central metabolic pathways (Chou C-H, Bennett GN, San KY. Biotechnol Bioeng 1994;44:952-960). We constructed a high-copy number plasmid carrying the gene for glucose-6-phosphate dehydrogenase, zwf, under the control of an inducible trc promoter (pTRzwf04 plasmid). By transforming a wild-type strain and inducing with IPTG, it was possible to recover growth-rate from 0.46 h(-1) (uninduced) to 0.64 h(-1) (induced). The same transformation in an Escherichia coli zwf(-), allows a growth-rate recovery from 0.43 h(-1) (uninduced) to 0.62 h(-1) (induced). We also studied this effect as part of a laboratory-scale biotechnology process: production of a recombinant insulin peptide by co-transforming E. coli JM101 strain with pTRzwf07, a low-copy-number plasmid that carries the same inducible construction as pTRzwf04, and with the pTEXP-MMRPI vector that carries a TrpLE-proinsulin hybrid gene. In this system, production of TrpLE-proinsulin strongly reduces growth rate; however, overexpression of zwf gene recovers with a growth rate from 0.1 h(-1) in the TrpLE-proinsulin induced strain, to 0.37 h(-1) when both zwf and TrpLE-proinsulin genes were induced. In this paper, we show that the engineering of the pentose phosphate pathway by modulation of the zwf gene expression level partially overcomes the possible bottleneck for the supply of building blocks and reducing power synthesized through the PP pathway, that are required for plasmid replication and plasmid-encoded protein expression. (C) 2004 Wiley Periodicals, Inc.
引用
收藏
页码:485 / 494
页数:10
相关论文
共 49 条
[21]   METABOLIC LOAD AND HETEROLOGOUS GENE-EXPRESSION [J].
GLICK, BR .
BIOTECHNOLOGY ADVANCES, 1995, 13 (02) :247-261
[22]   EXPRESSION IN ESCHERICHIA-COLI OF CHEMICALLY SYNTHESIZED GENES FOR HUMAN INSULIN [J].
GOEDDEL, DV ;
KLEID, DG ;
BOLIVAR, F ;
HEYNEKER, HL ;
YANSURA, DG ;
CREA, R ;
HIROSE, T ;
KRASZEWSKI, A ;
ITAKURA, K ;
RIGGS, AD .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1979, 76 (01) :106-110
[23]   MOLECULAR-CLONING OF THE PHOSPHOENOLPYRUVATE CARBOXYLASE GENE OF ANABAENA-VARIABILIS [J].
HARRINGTON, TR ;
GLICK, BR ;
LEM, NW .
GENE, 1986, 45 (01) :113-116
[24]   On-line estimation of the metabolic burden resulting from the synthesis of plasmid-encoded and heat-shock proteins by monitoring respiratory energy generation [J].
Hoffmann, F ;
Rinas, U .
BIOTECHNOLOGY AND BIOENGINEERING, 2001, 76 (04) :333-340
[25]   OVERCOMING THE METABOLIC LOAD ASSOCIATED WITH THE PRESENCE OF PLASMID DNA IN THE PLANT-GROWTH PROMOTING RHIZOBACTERIUM PSEUDOMONAS-PUTIDA GR12-2 [J].
HONG, YW ;
PASTERNAK, JJ ;
GLICK, BR .
CANADIAN JOURNAL OF MICROBIOLOGY, 1995, 41 (07) :624-628
[26]   EXPRESSION IN ESCHERICHIA-COLI OF A CHEMICALLY SYNTHESIZED GENE FOR HORMONE SOMATOSTATIN [J].
ITAKURA, K ;
HIROSE, T ;
CREA, R ;
RIGGS, AD ;
HEYNEKER, HL ;
BOLIVAR, F ;
BOYER, HW .
SCIENCE, 1977, 198 (4321) :1056-1063
[27]   Low-Copy Plasmids can Perform as Well as or Better Than High-Copy Plasmids for Metabolic Engineering of Bacteria [J].
Jones, Kristala L. ;
Kim, Seon-Won ;
Keasling, J. D. .
METABOLIC ENGINEERING, 2000, 2 (04) :328-338
[28]   Escherichia coli transformant expressing the glucose dehydrogenase gene from Bacillus megaterium as a cofactor regenerator in a chiral alcohol production system [J].
Kataoka, M ;
Rohani, LPS ;
Wada, M ;
Kita, K ;
Yanase, H ;
Urabe, I ;
Shimizu, S .
BIOSCIENCE BIOTECHNOLOGY AND BIOCHEMISTRY, 1998, 62 (01) :167-169
[29]   LABELING OF PENTOSE PHOSPHATE FROM GLUCOSE-14C AND ESTIMATION OF RATES OF TRANSALDOLASE TRANSKETOLASE CONTRIBUTION OF PENTOSE CYCLE AND RIBOSE PHOSPHATE SYNTHESIS [J].
KATZ, J ;
ROGNSTAD, R .
BIOCHEMISTRY, 1967, 6 (07) :2227-&
[30]   Kinetic studies for the optimization of recombinant protein formation [J].
Kramer, W ;
Elmecker, G ;
Weik, R ;
Mattanovich, D ;
Bayer, K .
RECOMBINANT DNA BIOTECHNOLOGY III: THE INTEGRATION OF BIOLOGICAL AND ENGINEERING SCIENCES, 1996, 782 :323-333