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Phenylboronic acid-decorated chondroitin sulfate A-based nanoparticles for solid tumor targeting and penetration : 암 조직 표적화 및 침투를 위한 페닐보론산이 수식된 콘드로이틴황산염 기반 나노입자에 대한 연구

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dc.contributor.advisor김대덕-
dc.contributor.author이재영-
dc.date.accessioned2017-07-13T16:38:59Z-
dc.date.available2017-07-13T16:38:59Z-
dc.date.issued2016-08-
dc.identifier.other000000136129-
dc.identifier.urihttps://hdl.handle.net/10371/120138-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 약학과, 2016. 8. 김대덕.-
dc.description.abstractFor effective chemotherapy, it is crucial for anti-cancer drugs to gain adequate access to tumor tissues. Despite numerous efforts to improve tumor targeting including drug-loaded nanoparticles (NPs), the homogeneous distribution of the drug molecules across the entire tumor tissue—particularly in the hypoxic region distant from functioning blood vessels—is not readily achieved due to unfavorable tumor microenvironments. In this thesis work, we hypothesized that the tumor-targetable chondroitin sulfate A (CSA)-based NP system with phenylboronic acid (PBA) moiety added (targeting the hypoxic region of tumors) may achieve enhanced tumor targeting and penetration of anticancer drugs, thereby improving anticancer efficacy. To test the validity of our hypothesis, we designed NPs that consist of PBA-functionalized amphiphilic chondroitin sulfate A (CSA) derivatives. Briefly, deoxycholic acid (DOCA) was conjugated to the CSA backbone via ethylenediamine (EDA) linker, followed by the introduction of (3-aminomethylphenyl)boronic acid (AMPB) to CSA-DOCA. Successful synthesis of the developed graft copolymers was verified using proton nuclear magnetic resonance spectroscopy (1H-NMR). The amphiphilic CSA-DOCA and CSA-DOCA-AMPB conjugates were loaded with doxorubicin (DOX). The resulting self-assembled NPs displayed an average diameter of approximately 200 nm with narrow size distribution, negative zeta potential, and spherical morphology. With the relatively high drug entrapment efficiency (approximately 80%), the developed NPs exhibited an increased DOX release at acidic pH (pHs 5.5 and 6.8) compared to at pH 7.4. Further experiments using confocal laser scanning microscopy and flow cytometry indicated that the developed NPs have an enhanced cellular uptake, penetration into spheroids and enhanced cytotoxic effects, likely via the CSA-CD44 and PBA-sialic acid interactions. Using near-infrared fluorescence (NIRF) imaging in mouse xenograft models, we also observed that the developed NPs have an improved tumor targeting and drug penetration in vivo, potentially leading to improved anti-tumor efficacy and reduced systemic toxicity of DOX. In summary, our results showed that the CSA-DOCA-AMPB NPs can achieve improved tumor targeting and drug penetration, thereby a promising nanoplatform potentially applicable to the treatment of various solid cancers.-
dc.description.tableofcontents1. Introduction 1
1.1. Polymeric nanoparticles for anti-cancer drug delivery 1
1.2. Self-assembled nanoparticle system 2
1.3. Polysaccharides for drug delivery and tumor targeting 3
1.4. Chondroitin sulfate and CD44 targeting 4
1.5. Tumor-targeting strategies and microenvironment of solid tumor 6
1.6. Penetration into solid tumor using sialic acid and phenylboronic acid interaction 8
1.7. Spheroid model: an evaluation tool for tumor penetration 9

2. Materials and Methods 11
2.1. Materials 11
2.2. Synthesis and characterization of CSA-DOCA conjugate 11
2.3. Preparation and characterization of DOX-loaded CSA-DOCA NPs 13
2.4. In vitro cytotoxicity tests of CSA-DOCA conjugate in MDA-MB-231 cells 14
2.5. In vitro cellular uptake studies of DOX-loaded CSA-DOCA NPs in MDA-MB-231 and NIH3T3 cells 15
2.6. Biodistribution of DOX-loaded CSA-DOCA NPs 16
2.7. Synthesis and characterization of CSA-DOCA-AMPB conjugate 18
2.8. Preparation and characterization of DOX-loaded CSA-DOCA-AMPB NPs 19
2.9. In vitro release tests 20
2.10. In vitro cytotoxicity tests of CSA-DOCA and CSA-DOCA-AMPB conjugates in A549 cells 20
2.11. In vitro cellular uptake studies in 2D-cultured A549 cells 21
2.12. In vitro tumor penetration studies in 3D-cultured A549 spheroids 22
2.13. In vitro anti-tumor efficacy tests in 2D-cultured A549 cells 23
2.14. In vitro anti-tumor efficacy tests in 3D-cultured A549 spheroids 24
2.15. Biodistribution of DOX-loaded CSA-DOCA-AMPB NPs 24
2.16. In vivo anti-tumor efficacy tests 26
2.17. Statistical analysis 27

3. Results 28
3.1. Synthesis and characterization of CSA-DOCA conjugate 28
3.2. Preparation and characterization of DOX-loaded CSA-DOCA NPs 29
3.3. In vitro cytotoxicity tests of CSA-DOCA conjugate 30
3.4. In vitro cellular uptake studies of DOX-loaded CSA-DOCA NPs in MDA-MB-231 and NIH3T3 cells 30
3.5. Biodistribution of DOX-loaded CSA-DOCA NPs 31
3.6. Synthesis and characterization of CSA-DOCA-AMPB conjugate 31
3.7. Preparation and characterization of DOX-loaded CSA-DOCA-AMPB NPs 33
3.8. In vitro release tests 33
3.9. In vitro cytotoxicity tests of CSA-DOCA and CSA-DOCA-AMPB conjugates in A549 cells 34
3.10. In vitro cellular uptake studies in 2D-cultured A549 cells 34
3.11. In vitro cellular uptake studies in 3D-cultured A549 spheroids 35
3.12. In vitro anti-tumor efficacy tests in 2D-cultured A549 cells 36
3.13. In vitro anti-tumor efficacy tests in 3D-cultured A549 spheroids 36
3.14. Biodistribution of DOX-loaded CSA-DOCA-AMPB NPs 37
3.15. In vivo anti-tumor efficacy tests 38

4. Discussion 40

5. Conclusion 48

6. References 49

Table and Figure 58

국문초록 92

APPENDIX 94
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dc.formatapplication/pdf-
dc.format.extent17877146 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectchondroitin sulfate A-
dc.subjecttumor targeting-
dc.subjecttumor penetration-
dc.subjectanti-cancer drug delivery system-
dc.subjectnanoparticles-
dc.subject.ddc615-
dc.titlePhenylboronic acid-decorated chondroitin sulfate A-based nanoparticles for solid tumor targeting and penetration-
dc.title.alternative암 조직 표적화 및 침투를 위한 페닐보론산이 수식된 콘드로이틴황산염 기반 나노입자에 대한 연구-
dc.typeThesis-
dc.contributor.AlternativeAuthorJae-Young Lee-
dc.description.degreeDoctor-
dc.citation.pages100-
dc.contributor.affiliation약학대학 약학과-
dc.date.awarded2016-08-
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