| Literature DB >> 22044771 |
Garima Goyal1, Shen-Long Tsai, Bhawna Madan, Nancy A DaSilva, Wilfred Chen.
Abstract
BACKGROUND: The recalcitrant nature of cellulosic materials and the high cost of enzymes required for efficient hydrolysis are the major impeding steps to their practical usage for ethanol production. Ideally, a recombinant microorganism, possessing the capability to utilize cellulose for simultaneous growth and ethanol production, is of great interest. We have reported recently the use of a yeast consortium for the functional presentation of a mini-cellulosome structure onto the yeast surface by exploiting the specific interaction of different cohesin-dockerin pairs. In this study, we engineered a yeast consortium capable of displaying a functional mini-cellulosome for the simultaneous growth and ethanol production on phosphoric acid swollen cellulose (PASC).Entities:
Mesh:
Substances:
Year: 2011 PMID: 22044771 PMCID: PMC3219590 DOI: 10.1186/1475-2859-10-89
Source DB: PubMed Journal: Microb Cell Fact ISSN: 1475-2859 Impact factor: 5.328
Figure 1Improved surface display of scaffoldin Scaf-ctf using the Agα1 anchor and the constitutive PGK promoter. (A) Schematic representation of the two different surface display approaches. (B) Confirmation of surface displayed Scaf-ctf by immunofluorescence microscopy. Cells were probed with anti-Cmyc sera and fluorescently stained with a goat anti-mouse IgG conjugated with Alexa Fluor 488. Yeast cells harboring pCEL15 were used as the control.
Strains and plasmids used in this study.
| Strain | Plasmid | Phenotype | Source |
|---|---|---|---|
| pCEL15 | Secretes a small peptide (negative control) | Tsai | |
| pAt | Secretes the endoglucanase At (CelA from | Tsai | |
| pCBH2c | Secretes the cellobiohydrolase CBHc (CBHII from | Tsai | |
| pBGLf | Secretes the β-glucosidase Bglf (Bg1I from | Tsai | |
| pAgα-scaf3 | Display of Scaf-ctf by an Agα1 anchor in a centromeric plasmid | This study |
S. cerevisiae strain BY4742 was used in all cases.
Figure 2A schematic of the different consortia used in this study.
Figure 3Cell growth and ethanol production by the cell consortia. (A) Cell growth and (B) PASC hydrolysis (dotted line) and ethanol production (solid line) by the different yeast consortia, i.e., consortium C2 without secreting enzymes (♦), consortium C3 only secreting enzymes (●) and consortium C1 forming the cellulosome structure (■). (C) Surface display of the mini-cellulosome was probed with either anti-C-myc sera for the displayed scaffoldin or anti-C-His6 sera for the three cellulases docked on the scaffoldin and fluorescently stained with a goat anti-mouse IgG conjugated with Alexa Fluor 488. Whole cell fluorescence was determined using a fluorescent microplate reader. Data shown are the mean values (± standard deviation) obtained from 3 independent experiments.
Primers used in this study
| Primers | Sequence (5'-3') | Relevance |
|---|---|---|
| CCGCCATGGTGTTTGCAAAAAGAACAAAACTG | Subcloning of Agα-Scaf | |
| CCGCCATGGCCCTATGCGGTGTGAAATACC | Subcloning of Agα-Scaf | |
| GCGCTCTAGAGGCGATTCTCTTAAAGTTACAGT | Subcloning of Agα-Scaf | |
| GCGCCAAAAGCTCTTTTATCTCAACC | qPCR | |
| CCACATCACTAATCACTTCTGATGTGGTG | qPCR | |
| GCAGAATGGGAAGACTGGAAGAGC | qPCR | |
| CCGCCGTCATGACTTGTAACATTGTTG | qPCR | |
| CGCAAAGGTTCCCTCTTTTATGTGGC | qPCR | |
| TCCGGATATCGGAATATTCCACGACAA | qPCR | |
| ATCATGGCGGCCTTTTACAAGGTTG | qPCR | |
| CCTCTCCAAAAACTCCGGTGAACTTTTC | qPCR |
Figure 4Growth dynamics of individual populations in (A) consortium C1 that could form cellulsosome structure and (B) consortium C3 that can only secret enzymes. Changes in cell number of individual yeast populations were probed by qPCR. Data shown are the mean values (± standard deviation) obtained from 3 independent experiments.