Innovative metabolic pathway design for efficient L-glutamate production by suppressing CO2 emission

被引:57
作者
Chinen, Akito
Kozlov, Yuri I.
Hara, Yoshihiko
Izui, Hiroshi
Yasueda, Hisashi
机构
[1] Ajinomoto Co Inc, Cent Res Labs, Fermentat & Biotechnol Labs, Kawasaki Ku, Kawasaki, Kanagawa 2108681, Japan
[2] Ajinomoto Genet Res Inst, Moscow 117545, Russia
关键词
L-glutamate production; phosphoketolase; metabolic engineering; Corynebacterium glutamicum; theoretical production yield; carbon dioxide; bifidobacterium;
D O I
10.1263/jbb.103.262
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
In the pathway of L-glutamic acid (L-Glu) biosynthesis in Corynebacterium glutamicum, 1 mol of L-Glu is synthesized from 1 mol of glucose at a cost of I mol of carbon dioxide (CO2), with a maximum theoretical yield of 81.7% by weight. We have designed an innovative pathway for efficient L-Glu production employing phosphoketolase (PKT) to bypass the CO2-releasing pyruvate dehydrogenase reaction, thereby increasing the maximum theoretical yield of L-Glu from glucose to up to 98.0% by weight (120% mol/mol L-Glu produced/glucose consumed). The xfp gene encoding PKT was cloned from Bifidobacterium animalis and overexpressed under the strong cspB promoter in C. glulamicum. A functional enzyme was detected in an L-Glu-producing strain of C. glutamicum (odhA). When cells of this producer strain with the xfp gene and those without the XfP gene were cultivated in a controlled fermentation system, the L-Glu production yield of the strain expressing the xfp gene was much higher than that of the original strain, coupled with the suppression of CO, emission. Consequently, we could successfully enhance L-glutamate production by installing the PKT pathway of B. animalis into C. glutamicum L-Glu metabolism, and this novel metabolic design will be able to increase L-Glu production yield beyond the maximum theoretical yield obtained from the conventional metabolic pathway of biosynthesis from glucose.
引用
收藏
页码:262 / 269
页数:8
相关论文
共 29 条
[21]  
MIWA K, 1985, GENE, V39, P281
[22]   PRODUCT INHIBITION OF FERMENTATIVE FORMATION OF GLUTAMIC ACID [J].
NUNHEIMER, TD ;
BIRNBAUM, J ;
IHNEN, ED ;
DEMAIN, AL .
APPLIED MICROBIOLOGY, 1970, 20 (02) :215-+
[23]  
PETERWENDISH PG, 2001, J MOL MICROB BIOTECH, V3, P294
[24]   CHARACTERIZATION OF THE CSPB GENE ENCODING PS2, AN ORDERED SURFACE-LAYER PROTEIN IN CORYNEBACTERIUM-GLUTAMICUM [J].
PEYRET, JL ;
BAYAN, N ;
JOLIFF, G ;
GULIKKRZYWICKI, T ;
MATHIEU, L ;
SHECHTER, E ;
LEBLON, G .
MOLECULAR MICROBIOLOGY, 1993, 9 (01) :97-109
[25]  
SCHRAMM M, 1958, J BIOL CHEM, V233, P1283
[26]   EFFECT OF BIOTIN ON BACTERIAL FORMATION OF GLUTAMIC ACID .1. GLUTAMATE FORMATION AND CELLULAR PERMEABILITY OF AMINO ACIDS [J].
SHIIO, I ;
OTSUKA, S ;
TAKAHASHI, M .
JOURNAL OF BIOCHEMISTRY, 1962, 51 (01) :56-&
[27]   Metabolic engineering of a phosphoketolase pathway for pentose catabolism in Saccharomyces cerevisiae [J].
Sonderegger, M ;
Schümperli, M ;
Sauer, U .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2004, 70 (05) :2892-2897
[28]   GltS, the sodium-coupled L-glutamate uptake system of Corynebacterium glutamicum:: identification of the corresponding gene and impact on L-glutamate production [J].
Trötschel, C ;
Kandirali, S ;
Diaz-Achirica, P ;
Meinhardt, A ;
Morbach, S ;
Krämer, R ;
Burkovski, A .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2003, 60 (06) :738-742
[29]   The gene encoding xylulose-5-phosphate/fructose-6-phosphate phosphoketolase (xfp) is conserved among Bifidobacterium species within a more variable region of the genome and both are useful for strain identification [J].
Yin, XH ;
Chambers, JR ;
Barlow, K ;
Park, AS ;
Wheatcroft, R .
FEMS MICROBIOLOGY LETTERS, 2005, 246 (02) :251-257