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Fluorescence-Raman Endoscopic System for In Vivo Multiplexed Molecular Diagnostics : 생체 내 다중 분자 진단을 위한 형광-라만 내시경 시스템에 관한 연구

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dc.contributor.advisor정대홍-
dc.contributor.author정신영-
dc.date.accessioned2017-07-19T06:22:07Z-
dc.date.available2017-07-19T06:22:07Z-
dc.date.issued2016-08-
dc.identifier.other000000136251-
dc.identifier.urihttps://hdl.handle.net/10371/129663-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 과학교육과 화학전공, 2016. 8. 정대홍.-
dc.description.abstractOptical endoscopic imaging, which was recently equipped with bioluminescence, fluorescence, and Raman scattering, allows non-/minimally invasive real-time detection of cellular structural deformations as well as pathological conditions on the surface of hollow organs. Particularly, by integrating the endoscopic imaging techniques with the molecular probes which are able to specifically target toward biomolecules, the in vivo and intraoperative molecular diagnostics could be achieved-
dc.description.abstractit allows for early cancer detection, personalized medicine, and image-guided therapy by identifying tumor-related protein expression. Among the various kinds of molecular targeting probes, the fluorescence dyes have been widely utilized to visualize a specifically targeted lesion in extensive area-
dc.description.abstractthe surface enhanced Raman scattering (SERS) active nanoparticles (NPs) are also used for multiplexed molecular diagnostics due to its high sensitivity and multiplexing capability.
As a targeting agent, antibody conjugated NPs have a great potential in diagnostic and therapeutic applications due to their high sensitivity and specificity for bio-targets, as well as their wide applicability. Unfortunately, these features are significantly affected by antibody conjugation methods in terms of conjugation efficiency, orientation of the target binding site in the antibody, and denaturation during chemical conjugation reactions. Furthermore, the number of conjugated antibodies on each NP and the overall targeting efficacy are critical factors for a quantitative bioassay with antibody conjugated NPs. For these reasons, I developed a versatile and oriented antibody conjugation method using copper-free click chemistry. Moreover, the number of conjugated antibodies and their binding capacity were quantitatively and experimentally evaluated using fluorescently-labeled antibodies and antigens. The strong binding capability of antibody-conjugated NPs prepared using the copper-free click chemistry-based conjugation strategy was 8 times superior to the binding capability seen following the use of the EDC/NHS-coupling method.
To characterize pathological condition of suspicious lesions in a multiplexed way during endoscopic procedure, I developed a dual modal fluorescence-Raman endomicroscopic system (FRES), which used fluorescence and surface-enhanced Raman scattering nanoprobes (F-SERS dots) as targeting agents. By utilizing the FRES along with antibody conjugated F-SERS dots, real-time, in vivo, and multiple target detection of a specific cancer was successful, based on the fast imaging capability of fluorescence signals and the multiplex capability of simultaneously detected SERS signals in breast and colorectal cancer (CRC) xenograft models. Human epidermal growth factor receptor 2 (HER2) and epidermal growth factor receptor (EGFR), as tumor cell targeting biomarkers, on the breast cancer xenografts in a mouse orthotopic model were successfully detected in a multiplexed way. As a clinical diagnostic model, in CRC xenograft models, epidermal growth factor receptor (EGFR) for targeting tumor cells and vascular endothelial growth factor (VEGF) for identifying tumor microenvironment were successfully identified using the FRES via colonoscopic examination procedure. Additionally, the relative quantification ability of the FRES was demonstrated in in vitro and ex vivo condition using Raman intensity corresponding to the targeted F-SERS dots. These features illustrated the potential of FRES as a molecular diagnostic tool that enables real-time characterization of tumor cell receptors and tumor microenvironment during routine endoscopic procedures, allowing an early cancer detection and tailored therapy.
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dc.description.tableofcontentsFluorescence-Raman Endoscopic System for In Vivo Multiplexed Molecular Diagnostics 1

Introduction 2
1. Endoscopic Imaging Techniques 3
2. Endoscopic Intraoperative Molecular Diagnostics 9
3. Antibody Conjugation Strategy 15
4. Research Objectives 20

Experimental Section 22
1. Chemicals and Materials 23
2. Instruments 25
3. Fluorescence-Raman Endoscopic System (FRES) 26
3.1 Design of the FRES 26
3.2 Preparation of fluorescence surface-enhanced Raman scattering probes (F-SERS dots) 28
3.3 Immobilization of antibodies on F-SERS dots 32
3.4 Measurement of confocal microscope Raman system 34
4. Highly Robust and Optimized Conjugation of Antibodies to Nanoparticles using Quantitatively Validated Protocols 35
4.1 Preparation of reduced antibody and ADIBO conjugated antibody 35
4.2 Evaluation of azide functionalization of SiNPs and ADIBO functionalization of antibody by radio-TLC 36
4.3 MALDI-TOF mass spectrometry analysis of the antibody and ADIBO functionalized antibody 37
4.4 Determination of proteins concentration involving antibody and antigen 38
4.5 Preparation of fluorescence labeled antigen 39
4.6 Measurement of confocal laser scanning microscopy for cancer cells targeted by fluorescent NPs (QD2) 40
5. In Vivo and In Situ Multiplexed Molecular Diagnosis using FRES for Breast and Colorectal Cancer 41
5.1 Establishment of cancer cell lines 41
5.2 Reverse transcriptase-polymerase chain reaction (RT-PCR) 42
5.3 Western blot analysis 43
5.4 In vitro specific targeting on the cancer cell line 45
5.5 Modeling of orthotopic breast cancer xenografts 46
5.6 Modeling of orthotopic colorectal cancer (CRC) xenografts 47
5.7 Validation of in vivo specific targeting by intraoperative multiplexed F-SERS dots 48
5.8 Pathologic evaluation of colorectal cancer xenografts 50
5.9 Measurement of confocal laser scanning microscopy for tumor targeted by F-SERS dots 51

Results and Discussion 52
1. Fluorescence-Raman Dual Modal Endoscopic System (FRES) 53
1.1 Strategy for in vivo and in situ endoscopic multiplexed molecular diagnostics using FRES 53
1.2 Synthesis and characterization of the F-SERS dots 56
1.3 Design of the FRES 61
1.4 Evaluation of fluorescence endomicroscopic imaging ability of FRES in real-time 64
1.5 Evaluation of Raman signal detecting ability of the FRES 67
1.6 Evaluation of simultaneous fluorescence and Raman signals detecting ability of FRES 70
1.7 Evaluation of sensitivity of the FRES 72
2. Highly Robust and Optimized Conjugation of Antibodies to Nanoparticles using Quantitatively Validated Protocols 75
2.1 Versatile and facile antibody conjugation strategy using copper-free click chemistry 75
2.2 Site-specific conjugation of ADIBO at the Fc region of antibody 78
2.3 Confirmation of functional modification of both silica NPs (SiNPs) and antibodies 81
2.4 Quantitative determination of the number of antibody conjugated on a single SiNP 84
2.5 In vitro immunoassay on breast cancer cells for comparison of target binding ability of antibodies on NPs prepared Click and EDC/NHS coupling method 93
2.6 Demonstration of versatility of the click chemistry based antibody conjugation method for silica encapsulated nanoprobes 97
3. In Vivo and In Situ Multiplexed Molecular Diagnostics using FRES for Breast and Colorectal Cancer 99
3.1 Evaluation of in vitro quantitative molecular diagnosis in colorectal cancer cell line using FRES 99
3.2 Signal grades of detected Raman signal from FRES 102
3.3 In vivo and intraoperative multiplexed molecular diagnostics on breast cancer xenograft model 104
3.4 In vivo and intraoperative endoscopic multiplexed molecular diagnostics on CRC xenograft using the FRES 111
3.5 Evaluation of ex vivo relative quantification ability of the FRES in tumor xenograft 116
3.6 Validation of non-specific binding of the F-SERS dots for normal tissue in in vivo condition 118
3.7 Significance of the FRES as an in vivo and intraoperative multiplexed molecular diagnostic tool 120

Conclusion 123

References 127

Abstract in Korean 140
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dc.formatapplication/pdf-
dc.format.extent4838744 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectFluorescence-Raman Endoscopic System-
dc.subjectIn Vivo Multiplexed Molecular Diagnostics-
dc.subjectFull-length Antibody Conjugation-
dc.subjectQuantitative Validation-
dc.subjectAntibody Orientation Control-
dc.subjectCopper-free Click Chemistry-
dc.subjectBreast Cancer-
dc.subjectColorectal Cancer-
dc.subject.ddc507-
dc.titleFluorescence-Raman Endoscopic System for In Vivo Multiplexed Molecular Diagnostics-
dc.title.alternative생체 내 다중 분자 진단을 위한 형광-라만 내시경 시스템에 관한 연구-
dc.typeThesis-
dc.contributor.AlternativeAuthorSinyoung Jeong-
dc.description.degreeDoctor-
dc.citation.pages142-
dc.contributor.affiliation사범대학 과학교육과-
dc.date.awarded2016-08-
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