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Characterization of Activated Sludge and Biofilm in MBR with Bacterial Quorum Quenching : 정족수 감지 억제 적용에 따른 수처리용 분리막 생물반응기의 활성 슬러지와 생물막의 특성 변화

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dc.contributor.advisor이정학-
dc.contributor.author김선의-
dc.date.accessioned2017-07-19T05:54:31Z-
dc.date.available2017-07-19T05:54:31Z-
dc.date.issued2015-02-
dc.identifier.other000000025614-
dc.identifier.urihttps://hdl.handle.net/10371/129368-
dc.description학위논문 (석사)-- 서울대학교 대학원 : 화학생물공학부, 2015. 2. 이정학.-
dc.description.abstractRecently, quorum sensing (QS) has been found to play a key role in biofilm formation on the membrane surface in membrane bioreactors (MBRs). Thus quorum quenching (QQ) which interrupts QS systems has received great attention as a fundamental solution to control biofouling in MBRs.
Previous studies have proved that the bacterial intra-species QQ with lactonase producing bacteria, Rhodococcus sp. BH4, could efficiently alleviate the biofouling in MBRs. In addition to delay in transmembrane pressure (TMP) which is a fouling index, it has been also reported that QQ led to change in the production of extracellular polymeric substances (EPS) in biofilm. However, the analyses of previous studies were only performed considering the EPS in biofilm. In this study, we aimed to further characterize the effect of QQ considering both EPS in biofilm and mixed liquor while applying Rhodococcus sp. BH4 in two different types of MBRs.
The first set of experiment was conducted with an anoxic/oxic combined MBR. In this set, soluble microbial product (SMP) was investigated in priority. In addition to examination of protein and polysaccharide, size exclusion chromatography (SEC) equipped with fluorescence detector was used to qualitatively analyze protein-like substances (Ex/Em wavelengths: 280/350 nm). Significant decrease in aromatic protein-like substances with molecular weight range of 100-1000 kDa was observed. Also, the filterability of sludge supernatant which depends on fouling tendency of SMP was evaluated by dead-end filtration with 150 kDa membrane. It was observed that QQ resulted in better filterability, shown by 2-3 times lower cake layer resistance.
Another set of experiment with aerobic MBR was designed to study the QQ effect of Rhodococcus sp. BH4, considering not only SMP but also bound EPS of floc and biocake. Aromatic protein-like and humic acid-like substances (Ex/Em wavelengths: 280/350 nm and 345/443 nm, respectively) were analyzed with SEC. In case of EPS bound to floc, neither aromatic protein-like nor humic acid-like substances showed apparent difference. However, both components have decreased in biocake EPS, where humic acid-like substances were mostly removed by QQ.
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dc.description.tableofcontentsChapter 1. Introduction 1
1.1. Background 2
1.2. Objectives 4
Chapter 2. Literature Review 5
2.1. Membrane Bioreactor (MBR) 6
2.1.1. Concept and Process 6
2.1.2. Development of MBR 8
2.2. Fouling Control in MBR Process 12
2.2.1. Physical Approach 12
2.2.2. Chemical Approach 12
2.2.3. Material Approach 14
2.2.4. Biological Approach 15
2.3. Quorum Sensing (QS) System 16
2.3.1. Definition and Mechanism 16
2.3.2. Gram-Negative Bacteria: LuxI/LuxR Type AI-1 QS 19
2.3.3. Gram-Positive Bacteria: Modified Oligopeptide Mediated AI-1 QS 23
2.3.4. Interspecies Communication: AI-2 QS 26
2.3.5. Role of QS in Biofilm Formation 29
2.3.6. Control Strategies of LuxI/LuxR Type AI-1 QS 30
2.4. Quorum Quenching (QQ) Application in MBR 36
2.4.1. Enzymatic QQ in MBR 36
2.4.2. Bacterial QQ in MBR 36
2.5. Extracellular Polymeric Substances (EPS) 38
2.5.1. Definition and Characteristics 38
2.5.2. EPS Analysis by Size Exclusion Chromatography (SEC) 39
2.5.3. EPS Analysis in MBR with QQ 40
Chapter 3. Materials and Methods 42
3.1. Preparation of QQ Agents 43
3.1.1. Strains and Growth Conditions 43
3.1.2. Preparation of Microbial Carriers 43
3.2. MBR Set-up 45
3.2.1. Anoxic/Oxic (A/O) MBR 45
3.2.2. Aerobic MBR 47
3.3. Measurement of QQ Activity 49
3.3.1. Substrate and Reporter Strain 49
3.3.2. QQ Activity of BH4 Vessels for A/O MBR 49
3.3.3. QQ Activity of W-beads for Aerobic MBR 50
3.4. Analytical Methods 51
3.4.1. A/O MBR 51
3.4.2. Aerobic MBR 56
Chapter 4. Results and Discussion 58
4.1. A/O MBR 59
4.1.1. QQ Activity of BH4 Vessel 59
4.1.2. General MBR Performances 61
4.1.3. Characterization of SMP 63
4.1.4. Filterability of Sludge Supernatant 67
4.2. Aerobic MBR 70
4.2.1. QQ Activity of BH4 W-bead 70
4.2.2. General MBR Performances 72
4.2.3. Characterization of Mixed Liquor EPS 74
4.2.4. Characterization of Biocake EPS 79
4.2.5. Comparison Between Mixed liquor and Biocake EPS 83
Chapter5. Conclusion 84
초록 87
Reference 89
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dc.formatapplication/pdf-
dc.format.extent2825680 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectBiofouling control-
dc.subjectExtracellular polymeric substances (EPS)-
dc.subjectMembrane bioreactor (MBR)-
dc.subjectQuorum sensing (QS)-
dc.subjectQuorum quenching (QQ)-
dc.subject.ddc660-
dc.titleCharacterization of Activated Sludge and Biofilm in MBR with Bacterial Quorum Quenching-
dc.title.alternative정족수 감지 억제 적용에 따른 수처리용 분리막 생물반응기의 활성 슬러지와 생물막의 특성 변화-
dc.typeThesis-
dc.contributor.AlternativeAuthorKim Sun-Eui-
dc.description.degreeMaster-
dc.citation.pagesviii, 100-
dc.contributor.affiliation공과대학 화학생물공학부-
dc.date.awarded2015-02-
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