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Production of functional single-chain variable fragment specific for food-born mycotoxin, aflatoxin B1 in engineered Escherichia coli

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dc.contributor.advisor서진호-
dc.contributor.author이효란-
dc.date.accessioned2017-07-14T06:50:39Z-
dc.date.available2017-07-14T06:50:39Z-
dc.date.issued2014-02-
dc.identifier.other000000017572-
dc.identifier.urihttps://hdl.handle.net/10371/126031-
dc.description학위논문 (석사)-- 서울대학교 대학원 : 식품공학과, 2014. 2. 서진호.-
dc.description.abstractAflatoxin B1 (AFB1) is a secondary fungal metabolite produced by Aspergillus flavus and A. parasiticus. International Agency of Research on Cancer (IARC) classified AFB1 into a group I carcinogen for humans. Aflatoxin B1 contaminate grains and crops that human and livestock consume. Detection of aflatoxin B1 is an essential step to reduce this threat. Three mtehods have been used to detect aflatoxin B1-
dc.description.abstractbiological, analytical, and immunological methods. Enzyme immunosorbent assay (ELISA) is highly specific, sensitive, simple and rapid for measuring aflatoxins in foods.
In previous research, scFv was cloned from the murine monoclonal antibody to aflatoxin B1 and produced in E. coli. However, the scFv was expressed in insoluble form, so an in vitro refolding procedure was necessary to acquire soluble and active scFv. In the following previous research, by co-expressing several folding modulators from E. coli and Bacillus subtilis with scFv in E coli, soluble scFv was produced and secreted into the periplasm of E. coli. Even though soluble scFv was produced, the proportion of the soluble scFv in the total expression level was low. Thus, a new expression system needs to be developed to produce soluble scFv in large proportion.
To increase the proportion of soluble scFv, maltose binding protein (MBP) fusion, codon optimization, and new E. coli C41(DE3) strain used as a host were introduced.
First, MBP fusion with the scFv gene for enhancing an expression level in soluble form of scFv was attempted. A MBP was fused with the N or C-terminal of scFv. An expression level of the fused scFv slightly increased due to the MBP fusion. An expression level of the C-terminal MBP fused scFv was higher than N-terminal fusion. However, the expression form of scFv was still insoluble.
Codon optimization of the scFv gene was adopted. Elimination of codon usage bias makes the heterologous protein expression easier. The codon optimized scFv fused with MBP were expressed in E. coli BL21(DE3). Despite codon optimization, it was not effective to produce in soluble form.
Thirdly, besides BL21(DE3), other E. coli host strains were selected to express scFv. C41(DE3) and Origami (DE3) strains were employed to express the MBP-fused scFv.
The C41(DE3) strain carrying the scFv fused N-terminal MBP was able to produce soluble and active scFv with the high proportion of the total expression scFv.
A fed-batch fermentation was conducted to maximize the production of the scFv-MBP. The maximum concentration of scFv was 810 mg/L. The scFv-MBP fusion protein was purified with affinity chromatography using hisitidine tags for characterizing the antibody properties.
The produced scFv was tested for antigen-binding activity by indirect ELISA. The antigen-binding activity was determined by the absorbance of the MBP-fused scFv being proportional to concentrations aflatoxin B1. The secondary structure of the scFv protein was analyzed by circular dichroism in range of 190 ~ 250 nm. The beta sheet structure was identified as the secondary structure of scFv.
The new expression system consisting of the C41(DE3) strain carrying the scFv fused N-terminal MBP with the signal sequence of MBP was applied to other types of scFv such as fumonisin B1 and deoxynivalenol. The two scFv of fumonisin B1 and deoxynivalenol were successfully expressed in soluble form. In conclusion, this thesis allowed the development of a novel expression system for soluble production of various scFv in E. coli.
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dc.description.tableofcontentsCONTENTS


ABSTRACT i
CONTENTS iii
LIST OF TABLES vii
LIST OF FIGURES viii

I. INTRODUCTION 1
1. Aflatoxin B1 1
2. Detection methods of AFB1 1
3. Single-chain variable region fragment antibody (scFv) 2
4. Codon optimization 3
5. Afinity tags 4
6. E. coli strains for protein expression 5
7. Circular dichroism 6
8. Objectives of the thesis 16

II. MATERIALS AND METHODS 17
1. Plasmids and strains 17
1.1. Enzymes and reagents 17
1.2. Oligonucleotides 18
1.3. Srains and plasmids 18
1.4. Recombinant DNA techniques 19
1.4.1. Polymerase chain reaction (PCR) 20
1.4.2. Construction of expression plasmids 20
1.5. DNA sequencing 21
2. Expression of proteins 21
2.1. Transformation and expression of fusion proteins 21
2.2. SDS-PAGE 23
2.3. Fed-batch fermentation 24
3. Purification and quantitative analysis of scFv 25
3.1. Purification 25
3.1.1. Affinity chromatography 25
3.1.2. Desalting column 26
3.2. Quantitative analysis of purified scFv 26
3.2.1. Bradford assay 26
4. Immunological and physico-chemical analysis of scFv 27
4.1. Immunological analysis 27
4.1.1. Indirect ELISA 27
4.2. Physico-chemical analysis 28
4.2.1. Circular dichroism 28
5. Applications of expression system to other types of scFv 29
5.1. Fumonisin B1 scFv 29
5.1.1. Expression of fumonisin B1 scFv and MBP fusion protein in E.coli C41(DE3) strain 29
5.2. Deoxynivalenol scFv 29
5.1.1. Expression of deoxynivalenol scFv and MBP fusion protein in E.coli C41(DE3) strain 29

III. RESULTS AND DISSCUSSIONS 38
1. Plasmids and strains 38
1.1. Construction of expression plasmids and strains 38
2. Expression of proteins 38
2.1. scFv and MBP fusion proteins expression in BL21(DE3) 39
2.2. Codon optimized scFv gene expression in diverse E. coli strains 39
2.3. Fed-batch fermentation 40
3. Purification and quantitative analysis of scFv 41
4. Immunological and physico-chemical analysis of scFv 42
4.1. Indirect ELISA 42
4.2. Circular dichroism 42
5. Applications of expression system to other types of scFv 43
5.1. Fumonisin B1 scFv 43
5.2. Deoxynivalenol scFv 43

IV. CONCLUSIONS 66

V. REFERENCES 67

ABSTRACT(In Korean) / 국 문 초 록 74



LIST OF TABLES

Table 1. Antibody classes 9

Table 2. Rarely used codons in E. coli 10

Table 3. Generally used solubility-enghancing fusion partners 12

Table 4. Sequence of the primers used in this research 29

Table 5. Constructed strains used in this research 47



LIST OF FIGURES

Figure 1. Metabolic conversion of aflatoxin B1 and following DNA addcuct formation mutating hepatocyte DNA to carcinogenesis 7

Figure 2. Subunit composition and domain distribution of immunoglobulin and single-chain variable fragment (scFv) antibody 8

Figure 3. Protein expression using solubility tags 11

Figure 4. Toxic protein such as green fluorescent protein or red fluorescence inducing protein expressed in C41 and BL21 13

Figure 5. Standard curve of secondary structure
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dc.description.tableofcontentsalpha-helix, beta sheet, and random coil by circular dichroism 14

Figure 6 Amino acid sequence of AFB1 scFv and MBP fusion protein 31

Figure 7. Amino acid sequence of fumonisin B1 scFv with 6 histidine tag 32

Figure 8. Amino acid sequence of deoxynivalenol scFv with 6 histidine tag 32

Figure 9. Codon usage table of non-codon optimized scFv gene in E. coli 33

Figure 10. Codon usage table of codon optimized scFv gene in E. coli 34

Figure 11. Purification process 35

Figure 12. Diagram of indirect ELISA 36

Figure 13. Genetic map of non-codon optimized scFv gene for aflatoxin B1 43

Figure 14. Genetic map of codon optimized scFv gene with signal sequence for aflatoxin B1 44

Figure 15. Genetic map of codon optimized scFv gene without signal sequence for aflatoxin B1 45

Figure 16. Genetic map of fumonisin B1 and deoxynivalenol scFv gene with signal sequence for aflatoxin B1 46

Figure 17. Expression of non-MBP fusion scFv in BL21(DE3) at 37°C and 0.2 mM IPTG. 48

Figure 18. Expression of MBP fusion scFv in BL21(DE3) at 37°C and 0.2 mM IPTG. 49

Figure 19. Expression of MBP fusion codon optimized scFv with signal sequence in BL21(DE3) at 37°C and 0.2 mM IPTG. 50

Figure 20 Expression of MBP fusion codon optimized scFv without signal sequence in BL21(DE3) at 37°C and 0.2 mM IPTG. 51

Figure 21. Expression of MBP fusion scFv in C41(DE3) at 37°C and 0.2 mM IPTG 52

Figure 22. Expression of MBP fusion codon optimized scFv with signal sequence in C41(DE3) at 37°C and 0.2 mM IPTG. 53

Figure 23. Expression of MBP fusion codon optimized scFv without signal sequence in C41(DE3) at 37°C and 0.2 mM IPTG. 54

Figure 24 Expression of MBP fusion codon optimized scFv without signal sequence in Origami (DE3) at 37°C and 0.2 mM IPTG 55

Figure 25. Profile of fed-batch fermentation 56

Figure 26. Purification of scFv and MBP fuison protein 57

Figure 27 Antigen (aflatoxin B1) binding activity of non-codon optimized scFv and MBP fuison protein by indirect ELISA 58

Figure 28. Antigen (aflatoxin B1) binding activity of codon optimized scFv and MBP fuison protein by indirect ELISA 59

Figure 29. Color reaction of substrate to measure antigen binding activity by indirect ELISA 60

Figure 30. Factor Xa protease treatment to take scFv itself 61

Figure 31. Secondary structure analysis of scFv by circular dichroism 62

Figure 32. Expression of MBP fusion scFv of fumonisin B1 in C41(DE3) at 37°C and 0.2 mM IPTG. 63

Figure 33. Expression of MBP fusion scFv of deoxynivalenol in C41(DE3) at 37°C and 0.2 mM IPTG. 64
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dc.formatapplication/pdf-
dc.format.extent1838194 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectEscherichia coli-
dc.subjectscFv-
dc.subjectfuison protein-
dc.subjectaflatoxin B1-
dc.subjectprotein expression system-
dc.subject.ddc664-
dc.titleProduction of functional single-chain variable fragment specific for food-born mycotoxin, aflatoxin B1 in engineered Escherichia coli-
dc.typeThesis-
dc.contributor.AlternativeAuthorHyo-Ran Lee-
dc.description.degreeMaster-
dc.citation.pages76-
dc.contributor.affiliation농업생명과학대학 식품공학과-
dc.date.awarded2014-02-
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