| Literature DB >> 21496218 |
Ryosuke Yamada1, Naho Taniguchi, Tsutomu Tanaka, Chiaki Ogino, Hideki Fukuda, Akihiko Kondo.
Abstract
BACKGROUND: Hydrolysis of cellulose requires the action of the cellulolytic enzymes endoglucanase, cellobiohydrolase and β-glucosidase. The expression ratios and synergetic effects of these enzymes significantly influence the extent and specific rate of cellulose degradation. In this study, using our previously developed method to optimize cellulase-expression levels in yeast, we constructed a diploid Saccharomyces cerevisiae strain optimized for expression of cellulolytic enzymes, and attempted to improve the cellulose-degradation activity and enable direct ethanol production from rice straw, one of the most abundant sources of lignocellulosic biomass.Entities:
Year: 2011 PMID: 21496218 PMCID: PMC3095537 DOI: 10.1186/1754-6834-4-8
Source DB: PubMed Journal: Biotechnol Biofuels ISSN: 1754-6834 Impact factor: 6.040
Characteristics of the bacterial and yeast strains and plasmids used in this study
| Strains or plasmids | Relevant features | Reference |
|---|---|---|
| Novagen | ||
| MT8-1 | [ | |
| NBRC1440ΔHUWL | [ | |
| MT8-1/IBEC | [ | |
| MT8-1/cocδBEC3 | [ | |
| MT8-1/cocδBEC3/LEU2 | This study | |
| 1440/cocδBEC3 | This study | |
| MNII/cocδBEC3 | This study | |
| pδW-PGAGBGL | [ | |
| pδU-PGAGBGL | [ | |
| pδH-PGAGBGL | [ | |
| pδW-PGAGEG | [ | |
| pδU-PGAGEG | [ | |
| pδH-PGAGEG | [ | |
| pδW-PGAGCBH | [ | |
| pδU-PGAGCBH | [ | |
| pδH-PGAGCBH | [ | |
| pRS405 | Stratagene |
Figure 1Time course of ethanol production from PASC by haploid strains. Triangles = MT8-1; squares = MT8-1/IBEC; diamonds = MT8-1/cocδBEC3. Data are averages from three independent experiments (error bars represent SE).
Figure 2Transcription levels of cellulolytic enzymes of haploid strain MT8-1/cocδBEC3, 1440/cocδBEC3 and diploid strain MNII/cocδBEC3. Gray bar = β-glucosidase; white bar = endoglucanase; black bar = cellobiohydrolase. Data are averages from six independent experiments (error bars represent SE).
PASC degradation activity and cell growth of haploid and diploid strains
| Medium | Strain | PASC degradation activity (mU/g wet cell) | Cell growth (×107 cells/mL) |
|---|---|---|---|
| YPD | MT8-1/cocδBEC3 | 180.1 ± 5.7 | 5.3 ± 0.15 |
| MNII/cocδBEC3 | 234.1 ± 7.2 | 20.0 ± 0.51 | |
| Molasses | MT8-1/cocδBEC3 | 63.5 ± 6.2 | 1.4 ± 0.08 |
| MNII/cocδBEC3 | 381.4 ± 6.6 | 5.3 ± 0.13 |
Figure 3Time course of ethanol production from PASC by diploid strain MNII/cocδBEC3. Triangles = precultured using YPD; diamonds = precultured using molasses medium. Data are averages from three independent experiments (error bars represent SE).
Figure 4Time course of ethanol production from pretreated rice straw by diploid strain MNII/cocδBEC3 precultured in molasses medium. Data are averages from three independent experiments (error bars represent SE).
Comparison of ethanol productivity from PASC for several cellulase-expression systems in S. cerevisiae
| Strain | Cellulase expression | Initial PASC concentration, g/l | Maximum ethanol production, g/l | Maximum ethanol reaching time, hours | Ethanol yield of the theoretical yield from initial cellulose, %1 | Time and effort | Reference |
|---|---|---|---|---|---|---|---|
| Cell surface display | 10 | 2.9 | 40 | 57 | Triple yeast transformation | [ | |
| Secretion | 10 | 1.0 | 192 | 20 | Single yeast transformation | [ | |
| Minicellulosome constructed by | 10 | 3.5 | 48 | 69 | Single yeast transformation, cellulase production by | [ | |
| Minicellulosome | 10 | 1.8 | 70 | 35 | Double yeast transformation | [ | |
| Cell surface display in optimum ratio | 20 | 3.1 | 72 | 30 | Triple yeast transformation | This study | |
| Cell surface display in optimum ratio with diploidization | 20 | 7.6 | 72 | 75 | Triple yeast transformation and diploidization | This study |
1Calculated from each result.
2Saccharomyces cerevisiae.
3Escherichia coli.