Tokuhiro Kenro, Ishida Nobuhiro, Kondo Akihiko, Takahashi Haruo
Biotechnology Laboratory, Toyota Central R&D Labs Inc., Nagakute, Aichi, Japan.
Appl Microbiol Biotechnol. 2008 Jun;79(3):481-8. doi: 10.1007/s00253-008-1454-x. Epub 2008 Apr 29.
The Aspergillus aculeatus beta-glucosidase 1 (bgl1) gene was expressed in a lactic-acid-producing Saccharomyces cerevisiae strain to enable lactic fermentation with cellobiose. The recombinant beta-glucosidase enzyme was expressed on the yeast cell surface by fusing the mature protein to the C-terminal half region of the alpha-agglutinin. The beta-glucosidase expression plasmids were integrated into the genome. Three strong promoters of S. cerevisiae, the TDH3, PGK1, and PDC1 promoters, were used for beta-glucosidase expression. The specific beta-glucosidase activity varied with the promoter used and the copy number of the bgl1 gene. The highest activity was obtained with strain PB2 that possessed two copies of the bgl1 gene driven by the PDC1 promoter. PB2 could grow on cellobiose and glucose minimal medium at the same rate. Fermentation experiments were conducted in non-selective-rich media containing 95 g l(-1) cellobiose or 100 g l(-1) glucose as a carbon source under microaerobic conditions. The maximum rate of L-lactate production by PB2 on cellobiose (2.8 g l(-1) h(-1)) was similar to that on glucose (3.0 g l(-1) h(-1)). This indicates that efficient fermentation of cellobiose to L-lactate can be accomplished using a yeast strain expressing beta-glucosidase from a mitotically stable genomic integration plasmid.
将棘孢曲霉β-葡萄糖苷酶1(bgl1)基因在产乳酸的酿酒酵母菌株中表达,以实现利用纤维二糖进行乳酸发酵。通过将成熟蛋白与α-凝集素的C端半区融合,使重组β-葡萄糖苷酶在酵母细胞表面表达。β-葡萄糖苷酶表达质粒整合到基因组中。使用酿酒酵母的三个强启动子,即TDH3、PGK1和PDC1启动子来表达β-葡萄糖苷酶。特定的β-葡萄糖苷酶活性随所用启动子和bgl1基因的拷贝数而变化。在由PDC1启动子驱动的具有两个bgl1基因拷贝的PB2菌株中获得了最高活性。PB2能够以相同的速率在纤维二糖和葡萄糖基本培养基上生长。在微需氧条件下,以95 g l(-1)纤维二糖或100 g l(-1)葡萄糖作为碳源,在非选择性丰富培养基中进行发酵实验。PB2在纤维二糖上产生L-乳酸的最大速率(2.8 g l(-1) h(-1))与在葡萄糖上的最大速率(3.0 g l(-1) h(-1))相似。这表明使用从有丝分裂稳定的基因组整合质粒表达β-葡萄糖苷酶的酵母菌株可以实现纤维二糖向L-乳酸的高效发酵。