dc.contributor.author |
Hoshida H. |
|
dc.contributor.author |
Fujita T. |
|
dc.contributor.author |
Cha-Aim K. |
|
dc.contributor.author |
Akada R. |
|
dc.date.accessioned |
2021-04-05T03:33:03Z |
|
dc.date.available |
2021-04-05T03:33:03Z |
|
dc.date.issued |
2013 |
|
dc.identifier.issn |
1757598 |
|
dc.identifier.other |
2-s2.0-84878680062 |
|
dc.identifier.uri |
https://ir.swu.ac.th/jspui/handle/123456789/14061 |
|
dc.identifier.uri |
https://www.scopus.com/inward/record.uri?eid=2-s2.0-84878680062&doi=10.1007%2fs00253-012-4582-2&partnerID=40&md5=95a1e0319558003ab002836c13747b05 |
|
dc.description.abstract |
Expression of foreign enzymes in yeast is a traditional genetic engineering approach; however, useful secretory enzymes are not produced in every case. The hyperthermostable α-amylase encoded by the AmyL gene of Bacillus licheniformis was expressed in Saccharomyces cerevisiae; however, it was only weakly produced and was degraded by the proteasome. To determine the cause of low α-amylase production, AmyL was expressed in a panel of yeast mutants harboring knockouts in non-essential genes. Elevated AmyL production was observed in 44 mutants. The knockout genes were classified into six functional categories. Remarkably, all non-essential genes required for N-linked oligosaccharide synthesis and a gene encoding an oligosaccharyl transferase subunit were identified. Immunoblotting demonstrated that differently underglycosylated forms of AmyL were secreted from oligosaccharide synthesis-deficient mutants, while a fully glycosylated form was produced by wild-type yeast, suggesting that N-linked glycosylation of AmyL inhibited its secretion in yeast. Mutational analysis of six potential N-glycosylation sites in AmyL revealed that the N33Q and N309Q mutations remarkably affected AmyL production. To achieve higher AmyL production in yeast, all six N-glycosylation sites of AmyL were mutated. In wild-type yeast, production of the resulting non-glycosylated form of AmyL was threefold higher than that of the glycosylated form. © 2013 Springer-Verlag Berlin Heidelberg. |
|
dc.subject |
Bacillus licheniformis |
|
dc.subject |
Engineering approaches |
|
dc.subject |
Heterologous production |
|
dc.subject |
N-Glycosylation |
|
dc.subject |
N-glycosylation sites |
|
dc.subject |
N-linked glycosylation |
|
dc.subject |
Oligosaccharide synthesis |
|
dc.subject |
Oligosaccharyl transferase |
|
dc.subject |
Amylases |
|
dc.subject |
Bacteriology |
|
dc.subject |
Esterification |
|
dc.subject |
Gene encoding |
|
dc.subject |
Genetic engineering |
|
dc.subject |
Glycosylation |
|
dc.subject |
Oligosaccharides |
|
dc.subject |
Yeast |
|
dc.subject |
amylase |
|
dc.subject |
asparagine linked oligosaccharide |
|
dc.subject |
bacterium |
|
dc.subject |
enzyme |
|
dc.subject |
enzyme activity |
|
dc.subject |
genetic engineering |
|
dc.subject |
mutation |
|
dc.subject |
secretion |
|
dc.subject |
yeast |
|
dc.subject |
article |
|
dc.subject |
Bacillus licheniformis |
|
dc.subject |
carbohydrate synthesis |
|
dc.subject |
controlled study |
|
dc.subject |
enzyme stability |
|
dc.subject |
glycosylation |
|
dc.subject |
heterologous expression |
|
dc.subject |
immunoblotting |
|
dc.subject |
knockout gene |
|
dc.subject |
nonhuman |
|
dc.subject |
Saccharomyces cerevisiae |
|
dc.subject |
wild type |
|
dc.subject |
yeast |
|
dc.subject |
alpha-Amylases |
|
dc.subject |
Bacillus |
|
dc.subject |
DNA Mutational Analysis |
|
dc.subject |
Gene Knockout Techniques |
|
dc.subject |
Glycosylation |
|
dc.subject |
Metabolic Engineering |
|
dc.subject |
Mutation, Missense |
|
dc.subject |
Protein Processing, Post-Translational |
|
dc.subject |
Recombinant Proteins |
|
dc.subject |
Saccharomyces cerevisiae |
|
dc.subject |
Bacillus licheniformis |
|
dc.subject |
Saccharomyces cerevisiae |
|
dc.title |
N-glycosylation deficiency enhanced heterologous production of a Bacillus licheniformis thermostable α-amylase in Saccharomyces cerevisiae |
|
dc.type |
Article |
|
dc.rights.holder |
Scopus |
|
dc.identifier.bibliograpycitation |
Applied Microbiology and Biotechnology. Vol 97, No.12 (2013), p.5473-5482 |
|
dc.identifier.doi |
10.1007/s00253-012-4582-2 |
|