Biofuel production improvement with genome-scale models: The role of cell composition

被引:25
作者
Senger, Ryan S. [1 ]
机构
[1] Virginia Tech, Dept Biol Syst Engn, Blacksburg, VA 24061 USA
关键词
Biofuels; Biomass constituting equations; Genome-scale model; Metabolic engineering; Systems biology; FLUX BALANCE ANALYSIS; CLOSTRIDIUM-ACETOBUTYLICUM ATCC-824; ESCHERICHIA-COLI; SACCHAROMYCES-CEREVISIAE; LIPID-COMPOSITION; METABOLIC NETWORKS; MASS-SPECTROMETRY; BACILLUS-SUBTILIS; CORYNEBACTERIUM-GLUTAMICUM; COMBINATORIAL BIOSYNTHESIS;
D O I
10.1002/biot.201000007
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Genome-scale models have developed into a vital tool for rational metabolic engineering. These models balance cofactors and energetic requirements and determine biosynthetic precursor availability in response to environmental and genetic perturbations. In particular, allocation of additional reducing power is an important strategy for engineering potential biofuel production from microbes. Many potential biofuel solvents induce biomolecular changes on the host organism that are not yet captured by genome-scale models. Here, methods of construction for several biomass constituting equations are reviewed along with potential changes to cellular composition with potential biofuels exposure. The biomass constituting equations of potential host organisms with existing genome-scale models are compared side-by-side to explore their evolution over the years and to explore differences that arise when these equations are compiled by different research groups. Genome-scale model simulation results attempt to address and provide guidance for further research into: (i) whether inconsistencies in the biomass constituting equations are relevant to predictions of solvent production, (ii) what level of detail is necessary to accurately describe cellular composition, and (iii) future developments that may enable more accurate characterizations of biomolecular composition.
引用
收藏
页码:671 / 685
页数:15
相关论文
共 124 条
[1]   Biocrude oils from the fast pyrolysis of poultry litter and hardwood [J].
Agblevor, F. A. ;
Beis, S. ;
Kim, S. S. ;
Tarrant, R. ;
Mante, N. O. .
WASTE MANAGEMENT, 2010, 30 (02) :298-307
[2]  
ALEXANDRE H, 1994, BIOTECHNOL APPL BIOC, V20, P173
[3]   Construction of lycopene-overproducing E-coli strains by combining systematic and combinatorial gene knockout targets [J].
Alper, H ;
Miyaoku, K ;
Stephanopoulos, G .
NATURE BIOTECHNOLOGY, 2005, 23 (05) :612-616
[4]   Transcriptional program of early sporulation and stationary-phase events in Clostridium acetobutylicum [J].
Alsaker, KV ;
Papoutsakis, ET .
JOURNAL OF BACTERIOLOGY, 2005, 187 (20) :7103-7118
[5]   Metabolic engineering for advanced biofuels production from Escherichia coli [J].
Atsumi, Shota ;
Liao, James C. .
CURRENT OPINION IN BIOTECHNOLOGY, 2008, 19 (05) :414-419
[6]   Metabolic engineering of Escherichia coli for 1-butanol production [J].
Atsumi, Shota ;
Cann, Anthony F. ;
Connor, Michael R. ;
Shen, Claire R. ;
Smith, Kevin M. ;
Brynildsen, Mark P. ;
Chou, Katherine J. Y. ;
Hanai, Taizo ;
Liao, James C. .
METABOLIC ENGINEERING, 2008, 10 (06) :305-311
[7]   Non-fermentative pathways for synthesis of branched-chain higher alcohols as biofuels [J].
Atsumi, Shota ;
Hanai, Taizo ;
Liao, James C. .
NATURE, 2008, 451 (7174) :86-U13
[8]   EFFECT OF BUTANOL CHALLENGE AND TEMPERATURE ON LIPID-COMPOSITION AND MEMBRANE FLUIDITY OF BUTANOL-TOLERANT CLOSTRIDIUM-ACETOBUTYLICUM [J].
BAER, SH ;
BLASCHEK, HP ;
SMITH, TL .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1987, 53 (12) :2854-2861
[9]   TOWARD A SCIENCE OF METABOLIC ENGINEERING [J].
BAILEY, JE .
SCIENCE, 1991, 252 (5013) :1668-1675
[10]  
BEAVEN MJ, 1982, J GEN MICROBIOL, V128, P1447