Fermentation process development for the production of medium-chain-length poly-3-hyroxyalkanoates

被引:80
作者
Sun, Zhiyong
Ramsay, Juliana A.
Guay, Martin
Ramsay, Bruce A. [1 ]
机构
[1] Queens Univ, Dept Chem Engn, Kingston, ON K7L 3N6, Canada
[2] Polyferm Canada, Harrow, ON K0H 1V0, Canada
关键词
HIGH-CELL-DENSITY; PSEUDOMONAS-PUTIDA KT2442; FED-BATCH FERMENTATIONS; MCL-PHAS; ESCHERICHIA-COLI; POLYHYDROXYALKANOATE PRODUCTION; FLUORESCENT PSEUDOMONADS; OLEOVORANS; POLY(3-HYDROXYALKANOATES); BIOSYNTHESIS;
D O I
10.1007/s00253-007-0857-4
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
This paper presents a review of the existing fermentation processes for the production of medium-chain-length poly-3-hydroxyalkanoates (MCL-PHAs). These biodegradable polymers are usually produced most efficiently from structurally related carbon sources such as alkanes and alkanoic acids. Unlike alkanoic acids, alkanes exhibit little toxicity but their low aqueous solubility limits their use in high density culture. Alkanoic acids pose little mass transfer difficulty, but their toxicity requires that their concentration be well controlled. Using presently available technology, large-scale production of MCL-PHA from octane has been reported to cost from US $5 to 10 per kilogram, with expenditures almost evenly divided between carbon source, fermentation process, and the separation process. However, MCL-PHAs, even some with functional groups in their subunits, can also be produced from cheaper unrelated carbon sources, such as glucose. Metabolic engineering and other approaches should also allow increased PHA cellular content to be achieved. These approaches, as well as a better understanding of fermentation kinetics, will likely result in increased productivity and lower production costs.
引用
收藏
页码:475 / 485
页数:11
相关论文
共 69 条
[1]   Bacterial poly(hydroxyalkanoate) polymer production from the biodiesel co-product stream [J].
Ashby, RD ;
Solaiman, DKY ;
Foglia, TA .
JOURNAL OF POLYMERS AND THE ENVIRONMENT, 2004, 12 (03) :105-112
[2]   The application of polyhydroxyalkanoates as tissue engineering materials [J].
Chen, GQ ;
Wu, Q .
BIOMATERIALS, 2005, 26 (33) :6565-6578
[3]   Factors affecting the economics of polyhydroxyalkanoate production by bacterial fermentation [J].
Choi, J ;
Lee, SY .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 1999, 51 (01) :13-21
[4]   A process for the recovery of poly(hydroxyalkanoates) from Pseudomonads .2. Process development and economic evaluation [J].
deKoning, GJM ;
Kellerhals, M ;
vanMeurs, C ;
Witholt, B .
BIOPROCESS ENGINEERING, 1997, 17 (01) :15-21
[5]   CHARACTERIZATION OF INTRACELLULAR INCLUSIONS FORMED BY PSEUDOMONAS-OLEOVORANS DURING GROWTH ON OCTANE [J].
DESMET, MJ ;
EGGINK, G ;
WITHOLT, B ;
KINGMA, J ;
WYNBERG, H .
JOURNAL OF BACTERIOLOGY, 1983, 154 (02) :870-878
[6]   Accumulation of poly(3-hydroxybutyrate) from octanoate, in different Pseudomonas belonging to the rRNA homology group I [J].
Diard, S ;
Carlier, JP ;
Ageron, E ;
Grimont, PAD ;
Langlois, V ;
Guérin, P ;
Bouvet, OMM .
SYSTEMATIC AND APPLIED MICROBIOLOGY, 2002, 25 (02) :183-188
[7]   High-cell-density cultivation of Pseudomonas putida IPT 046 and medium-chain-length polyhydroxyalkanoate production from sugarcane carbohydrates [J].
Diniz, SC ;
Taciro, MK ;
Gomez, JGC ;
Pradella, JGD .
APPLIED BIOCHEMISTRY AND BIOTECHNOLOGY, 2004, 119 (01) :51-69
[8]   Preparation and characterization of a poly(β-hydroxyoctanoate) latex produced by Pseudomonas oleovorans [J].
Dufresne, A ;
Samain, E .
MACROMOLECULES, 1998, 31 (19) :6426-6433
[9]   Accumulation of poly[(R)-3-hydroxyalkanoates] in Pseudomonas oleovorans during growth with octanoate in continuous culture at different dilution rates [J].
Durner, R ;
Witholt, B ;
Egli, T .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2000, 66 (08) :3408-3414
[10]  
Durner R, 2001, BIOTECHNOL BIOENG, V72, P278, DOI 10.1002/1097-0290(20010205)72:3<278::AID-BIT4>3.0.CO