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Title Page
Contents
List of Abbreviations 12
English Abstract 14
Chapter 1. Introduction 17
1-1. General Background to Streptomyces 17
1-1-1. General biological and Genetic information on Streptomyces griseus and Streptomyces coelicolor. 18
1-1-2. Morphological differentiation in Streptomyces griseus and Streptomyces coelicolor 23
1-1-3. Life cycle of Streptomyces 23
1-1-4. Secondary metabolism in Streptomyces 24
1-2. SGT (Streptomyces griseustrypsin)(이미지참조) 28
1-3. Signal Transduction in bacteria 29
1-3-1. Eukaryotic-type Serine/Threonine protein kinases (STPKs) 30
1-3-1-1. STPKs in S. coelicolor 31
1-3-1-2. PASTA domains 31
1-3-2. Two-component system 32
1-4. Research Objectives 37
Chapter 2. Materials and Methods 38
2-1. Bacterial strains and Plasmids 38
2-1-1. E.coli strains 38
2-1-2. Streptomyces Strains 39
2-1-3. Plasmids 39
2-2. Growth Conditions and Storage of Bacterial Strains 40
2-2-1. E.coli strains 40
2-2-2. Streptomyces strains 40
2-2-3. Antibiotic concentrations for E.coli and streptomyces strains 40
2-3. Culture media, Buffers, Solutions, Reagents, and Enzymes 41
2-3-1. Solid media 41
2-3-2. Liquid Media 44
2-3-3. Buffers and solutions 46
2-4. Nucleic acid isolation 49
2-4-1. Isolation of plasmid DNA from E.coli 49
2-4-2. Isolation of genomic DNA from Streptomyces 49
2-4-3. Isolation of plasmid DNA from Streptomyces 50
2-4-4. Isolation of total RNA from Streptomyces 51
2-5. Genetic Manipulations 51
2-5-1. Preparation of competent E.coli cells 51
2-5-2. Transformation of E.coli competent cells 52
2-5-3. Transformation of Streptomyces protoplasts with plasmid DNA 52
2-5-3-1. Preparation of protoplasts 52
2-5-3-2. PEG-assisted transformation of Streptomyces protoplasts with plasmid DNA 53
2-5-3-3. Selection of antibiotic-resistant transformants by flooding 53
2-6. In Vitro Manipulations of DNA 53
2-6-1. Dephosphorylation (CIAP treatment) 53
2-6-2. Agarose gel electrophoresis of DNA and RNA 54
2-6-3. Isolation of DNA fragment from agarose 54
2-6-4. Ligation of DNA 54
2-6-5. cDNA synthesis 54
2-6-6. PCR 55
2-7. Gene disruption of pkaF in S. coelicolor 56
2-8. Assay 57
2-8-1. Sample preparation for proteaseassay 57
2-8-2. Determination of trypsin activity 58
2-8-3. Preparation of Cell Lysate from S. coelicolorA3(2) M130 58
2-8-4. Phosphorylation assay 58
Chapter 3. Characterization of the sgtR1 and sgtR2 genes and their role in regulating expression of the sprT gene encoding Streptomyces griseus trypsin (SGT) 60
3-1. Identification and characterization of the sgtR1 and sgtR2 genes 61
3-1-1. In silico analysis of the sgtR1 and sgtR2 genes. 61
3-1-2. Molecular analysis of the sgtR1 and sgtR2 genes 65
3-2. Overexpression of sprT in combination with sgtR1 and sgtR2 in S. lividans TK24 68
3-2-1. Construction of sprT expression vectors. 68
3-2-2. Determination of Trypsin activity in S.lividans strains 68
3-2-3. Transcriptional analysis of sprT, sgtR1, and sgtR2 in S.lividans Strains. 69
3-3. Overexpression of SGT with sgtR1 and sgtR2 in S. griseus 75
3-3-1. Determination of Trypsin activity in S.griseus 76
3-3-2. Transcriptional analysis of sprT, sgtR1, and sgtR2 in S.griseus strains 77
3-4. Summary 81
Chapter 4. Charcterization of the autophosphorylating kinase, PkaF, in Streptomyces coelicolorA3(2) M130 82
4-1. Identification and characterization of pkaF gene 82
4-1-1. In silico analysis of STPK domain 83
4-1-2. In silico analysis of PASTA domain 84
4-1-3. Gene organization in the cloned fragments containing pkaF from S. coelicolor 84
4-2. Heterologous expression and purification of pkaF in E. coliBL21(DE3) 87
4-3. Phosphorylation of PkaF 94
4-3-1. Phosphorylation assay of PkaF 94
4-3-2. Mass spectrometry of phospho-PkaF 95
4-4. Effect of pkaF-overexpression and disruption on S. coelicolorA3(2) 100
4-5. Discussrion 107
4-6. Summary 111
Appendix : DNA and protein sequence of sprT, sgtR1, and sgtR2 in S.griseus 112
References 114
Korean Abstract 123
Figure 1-1. Schematic representation of the S.griseus chromosome (Ohnishi, Ishikawa et al. 2008). 19
Figure 1-2. Circular representation of the S.coelicolorchromosome(Bentley, Chater et al. 2002). 20
Figure 1-3. Life cycle of Streptomycetes 26
Figure 1-4. Secondary metabolism in Streptomyces griseus(Horinouchi 2007) 27
Figure 1-5. AfsK/AfsR system in S.coelicolor 34
Figure 1-6. Two-component system in Prokaryotes. 35
Figure 3-1. Organization of the sprT, sgtR1, and sgtR2 genes. 63
Figure 3-2. Distribution of conserved domains in SgtR1 and SgtR2. 64
Figure 3-3. Construction vector for overexpression of SgtR1(ORF2) and SgtR2(ORF3). 66
Figure 3-4. Overexpression of SgtR1(ORF2) and SgtR2(ORF3). 67
Figure 3-5. Construction of sprT expression vectors containing various combinations of sgtR1 and sgtR2. 70
Figure 3-6. Cell growth of S.livadans Transformants 71
Figure 3-7. Trypsin activities of S. lividans transformed with various expression vectors. 72
Figure 3-8. Protein hydrolysate assay on R2YE agar plates 73
Figure 3-9. Transcriptional analysis of S. lividans transformed with various expression vectors. 74
Figure 3-10. Trypsin activities of S. griseus transformed with various expression vectors. 78
Figure 3-11. Cell growth of S.griseus transformants 79
Figure 3-12. Transcriptional analysis of S. griseus transformed with various expression vectors. 80
Figure 4-1. Sequence analysis of PkaF. 85
Figure 4-2. Sequence analysis of PkaF. 86
Figure 4-3. Map of recombinant plasmid vector for PkaF overexpression 88
Figure 4-4. Overexpression and purification of PkaF. 89
Figure 4-5. Mass spectrometry analysis of PkaF protein. 93
Figure 4-6. Phosphorylation assay of the purified PkaF. 96
Figure 4-7. Phosphorylation assay of the purified PkaF. 97
Figure 4-8. Phosphorylation assay of the purified PkaF. 98
Figure 4-9. Effect of pkaF-overexpression and disruption on S. coelicolorA3(2) 102
Figure 4-10. Generation of a pkaF-deficient mutant strain. 103
Figure 4-11. Analysis of chromosomal DNA by Southern blot hybridization. 104
Figure 4-12. Transcriptional analysis of pkaF. 105
Figure 4-13. Photographs of the surface of the colony. 106
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