Microarray analysis of metabolic changes upon co-expressing periplasmic chaperones in scFvD1.3-producing Escherichia coli.

High expression of recombinant antibody fragments, such as single-chain variable fragments (scFvs), in Escherichia coli imposes an extra metabolic burden on the cells. This would lead to increased rates of protein mis-folding and accumulation of inclusion bodies, generating stress responses which ca...

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Main Author: Lim, Denis Yong Xiang.
Other Authors: School of Biological Sciences
Format: Final Year Project
Language:English
Published: 2009
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Online Access:http://hdl.handle.net/10356/16351
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Institution: Nanyang Technological University
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spelling sg-ntu-dr.10356-163512023-02-28T17:59:47Z Microarray analysis of metabolic changes upon co-expressing periplasmic chaperones in scFvD1.3-producing Escherichia coli. Lim, Denis Yong Xiang. School of Biological Sciences Ow, Dave Siak-Wei DRNTU::Science::Biological sciences::Molecular biology High expression of recombinant antibody fragments, such as single-chain variable fragments (scFvs), in Escherichia coli imposes an extra metabolic burden on the cells. This would lead to increased rates of protein mis-folding and accumulation of inclusion bodies, generating stress responses which cause eventual cell death. E. coli periplasmic chaperones skp and fkpA are known to assist in protein folding and assembly. In this study, skp and fkpA were co-expressed in scFv-producing E. coli strains to investigate the effects on soluble scFv yield. DNA microarray studies were performed and gene expression profiles were analyzed to elucidate the underlying differences in metabolic changes of chaperone co-expressing strains as compared to the host strain. Results have shown that skp and fkpA co-expression greatly improved cell viability by 30-70% and scFv-yield by 3-6 folds compared to the wild-type strain. Chaperone co-expressing strains exhibited up-regulation of genes for growth (DNA replication and protein translation) metabolic pathways such as glycolysis and tricarboxylic acid cycle, membrane transporters, cell signaling and motility and down-regulation of genes involved in stress response (heat shock proteins). This represents the microarray global transcriptional analysis of periplasmic chaperone co-expression in scFv-producing E. coli. Bachelor of Science in Biological Sciences 2009-05-25T07:10:22Z 2009-05-25T07:10:22Z 2009 2009 Final Year Project (FYP) http://hdl.handle.net/10356/16351 en Nanyang Technological University 42 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Science::Biological sciences::Molecular biology
spellingShingle DRNTU::Science::Biological sciences::Molecular biology
Lim, Denis Yong Xiang.
Microarray analysis of metabolic changes upon co-expressing periplasmic chaperones in scFvD1.3-producing Escherichia coli.
description High expression of recombinant antibody fragments, such as single-chain variable fragments (scFvs), in Escherichia coli imposes an extra metabolic burden on the cells. This would lead to increased rates of protein mis-folding and accumulation of inclusion bodies, generating stress responses which cause eventual cell death. E. coli periplasmic chaperones skp and fkpA are known to assist in protein folding and assembly. In this study, skp and fkpA were co-expressed in scFv-producing E. coli strains to investigate the effects on soluble scFv yield. DNA microarray studies were performed and gene expression profiles were analyzed to elucidate the underlying differences in metabolic changes of chaperone co-expressing strains as compared to the host strain. Results have shown that skp and fkpA co-expression greatly improved cell viability by 30-70% and scFv-yield by 3-6 folds compared to the wild-type strain. Chaperone co-expressing strains exhibited up-regulation of genes for growth (DNA replication and protein translation) metabolic pathways such as glycolysis and tricarboxylic acid cycle, membrane transporters, cell signaling and motility and down-regulation of genes involved in stress response (heat shock proteins). This represents the microarray global transcriptional analysis of periplasmic chaperone co-expression in scFv-producing E. coli.
author2 School of Biological Sciences
author_facet School of Biological Sciences
Lim, Denis Yong Xiang.
format Final Year Project
author Lim, Denis Yong Xiang.
author_sort Lim, Denis Yong Xiang.
title Microarray analysis of metabolic changes upon co-expressing periplasmic chaperones in scFvD1.3-producing Escherichia coli.
title_short Microarray analysis of metabolic changes upon co-expressing periplasmic chaperones in scFvD1.3-producing Escherichia coli.
title_full Microarray analysis of metabolic changes upon co-expressing periplasmic chaperones in scFvD1.3-producing Escherichia coli.
title_fullStr Microarray analysis of metabolic changes upon co-expressing periplasmic chaperones in scFvD1.3-producing Escherichia coli.
title_full_unstemmed Microarray analysis of metabolic changes upon co-expressing periplasmic chaperones in scFvD1.3-producing Escherichia coli.
title_sort microarray analysis of metabolic changes upon co-expressing periplasmic chaperones in scfvd1.3-producing escherichia coli.
publishDate 2009
url http://hdl.handle.net/10356/16351
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