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Anti-Cancer Mechanisms of MICA Nanoparticle or PDE4D Inhibitor in Human Cancer CellsAnti-Cancer Mechanisms of MICA Nanoparticle or PDE4D Inhibitor in Human Cancer Cells : 암세포에서 MICA 나노입자와 PDE4D 억제제의 종양 억제 기전 연구

DC Field Value Language
dc.contributor.advisor강경선-
dc.contributor.author강태욱-
dc.date.accessioned2017-08-10T16:42:09Z-
dc.date.available2017-08-10T16:42:09Z-
dc.date.issued2016-08-
dc.identifier.other000000136923-
dc.identifier.urihttps://hdl.handle.net/10371/135044-
dc.description.abstractGlioblastoma multiforme (GBM) and breast cancer are the most prevalent malignant tumors in adults, and both exhibit high fatality rates due to their tumorigenic potentials and limitations of cancer therapy. In this study, I investigated on tumor suppressive and immunostimulatory effects using novel small molecule, CG500354, and natural compound, STB-HO.
In the first part of this study, I performed forced differentiation of cancer cells, which is a recently developed approach in developing a cancer therapy. I demonstrated that the novel phosphodiesterase-4 subtype D (PDE4D) inhibitor, CG500354, induces growth arrest and neural differentiation in GBM-derived cells by triggering the activation of cAMP/PKA signaling pathway. Treatment of CG500354 regulated cAMP/PKA signaling pathway by interrupting PDE4 interference and up-regulating phosphorylated protein kinase A (p-PKA) and phosphorylated CREB (p-CREB). Furthermore, PDE4D inhibitor suppressed the expression level of cyclin B1, while up-regulating p21 and p27, which are known to be associated with growth arrest. I next investigated whether PDE4D inhibitor affect neural differentiation of GBM. GFAP, an astrocyte marker, and Tuj-1, a neuronal marker, were significantly increased with p53 expression level in GBM while the expression of nestin, a neural progenitor marker was decreased. These results suggest that CG500354 may play crucial roles in neural differentiation and growth arrest through regulation of cell-cycle-related and neural differentiation markers.
In the second part of this study, I investigated on the regulation of interactions between tumor cells and anti-tumor immune cells by treating with mica nanoparticle, STB-HO. Its efficacy and mechanisms in treating various types of tumor are less verified and the mechanistic link between anti-tumor and immunostimulatory effects has not been elucidated. STB-HO was orally administered into MCF-7 xenograft model. The growth of MCF-7 cell in xenograft model was significantly suppressed, whereas STB-HO did not directly affect the proliferation and apoptosis in vitro. Thus, I observed the interactions of MCF-7 and macrophage, dendritic cells (DCs) and natural killer (NK) cells after STB-HO treatment to investigate the discrepancy between in vivo and in vitro. The MHC class I, which is known as an inhibitory factor for NK cell-mediated anti-tumor effect, was down-regulated approximately by 10% when treated with STB-HO. Thus, I induced macrophage-like cells from THP-1 and dendritic cells from CD14+ monocytes to analyze the functional alteration of STB-HO. I observed that IL-12, known for its contribution in NK cell cytotoxicity against tumor cell, was consistently increased by STB-HO treatment. I next isolated NK cells from human blood and performed cytotoxicity test by co-culturing NK cells with fluorescence-labeled MCF-7. The dead cell population of MCF-7 rose up to 2% to 7% and additional STB-HO treatment on co-culture condition rose dead cell proportion up to 16-17% along with the elevation of significant IFN-γ expression. I observed that STB-HO not only increased susceptibility of MCF-7 cells to immune cells, but also stimulated immunocytes in tumor microenviroment to eliminate cancer cells.
Taken together, these findings provide insights that CG500354 activated cAMP/PKA signaling pathway by blocking PDE4D, which triggered neural differentiation and growth arrest of glioblastoma-derived cancer cells. STB-HO regulated the interaction of tumor with its immune microenvironment by enhancing the functions of NK cell, macrophage and DCs to attack tumor cells by secreting IFN-γ and IL-12.
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dc.description.tableofcontentsChapter I Growth arrest and forced differentiation by phosphodiesterase 4 type D inhibitor in human primary glioblastoma multiforme 1
1.1 INTRODUCTION 2
1.2 MATERIALS AND METHODS 6
1.2.1 Isolation of primary GBM cells 6
1.2.2 Chemical 6
1.2.3 Clonogenic assays 7
1.2.4 Magnetic-activated cell sorting 7
1.2.5 Flow cytometry analysis 7
1.2.6 cAMP measurement 8
1.2.7 siRNA inhibition study 8
1.2.8 Quantitative real-time PCR 8
1.2.9 Western blot analysis 9
1.2.10 Immunocytochemistry 9
1.2.11 Animal experiment 9
1.2.12 Statistical analysis 10
1.3 RESULTS 11
1.3.1 CG500354 induces differentiation in human primary GBM-derived neurospheres without cytotoxic effects 11
1.3.2 CG500354 induces growth arrest of GBM-derived cell populations by up-regulating p53 15
1.3.3 CG500354 induces the neural differentiation of GBM-derived cells 21
1.3.4 CG500354 leads GBM-derived cells to growth arrest by accelerating the cAMP/CREB signaling pathway 23
1.3.5 Mimetic substances and si-PDE4D, mimic the effect of CG500354 on the neural differentiation of GBM-derived cells 28
1.3.6 In vivo GBM-derived cells from tumor were induced to neural differentiation by G500354 injection 32
1.4 DISCUSSION 35

Chapter II Mica Nanoparticle Eliminates the Human Breast Carcinoma Cells by Regulating the Interaction of Tumor with its Immune Microenvironment 39
2.1 INTRODUCTION 40
2.2 MATERIALS AND METHODS 43
2.2.1 Reagents 43
2.2.2 MCF-7 xenograft model 43
2.2.3 Histological evaluation 44
2.2.4 Aluminum staining of dissected tumor sections 44
2.2.5 Western blot analysis 44
2.2.6 Proliferation assay 45
2.2.7 Apoptosis assay 45
2.2.8 Flow cytometric assay 46
2.2.9 Cytokine production 46
2.2.10 Differentiation of THP-1 into macrophage-like cells 47
2.2.11 Isolation and culture of human umbilical cord blood (UCB)-derived mononuclear cell (MNC) 47
2.2.12 Generation of macrophage from human MNCs 48
2.2.13 Generation of DCs from human MNCs 48
2.2.14 Isolation of NK cells from human MNCs 49
2.2.15 NK cell cytotoxicity assay 49
2.2.16 Detection of NK cells in mouse spleen and lymph nodes 50
2.2.17 Statistical analysis 50
2.3 RESULTS 51
2.3.1 Tumor growth reduction of MCF-7 xenograft model in the presence of STB-HO 51
2.3.2 STB-HO does not directly regulate the proliferation and viability of MCF-7 cells 56
2.3.3 STB-HO increases the susceptibility of MCF-7 cells to their microenvironment 60
2.3.4 STB-HO skews macrophages and dendritic cells toward anti-tumor type 63
2.3.5 STB-HO up-regulates the NK cell-mediated killing of MCF-7 cells in vitro and increases the number of NK cells in vivo 66
2.4 DISCUSSION 70

GENERAL CONCLUSION 74

REFERENCES 76

국문 초록 102
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dc.formatapplication/pdf-
dc.format.extent2072947 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectGlioblastoma-
dc.subjectPDE4D inhibitor-
dc.subjectcAMP-
dc.subjectBreast Cancer-
dc.subjectMica nanoparticle-
dc.subjectTumor-suppressive effect-
dc.subject.ddc636-
dc.titleAnti-Cancer Mechanisms of MICA Nanoparticle or PDE4D Inhibitor in Human Cancer CellsAnti-Cancer Mechanisms of MICA Nanoparticle or PDE4D Inhibitor in Human Cancer Cells-
dc.title.alternative암세포에서 MICA 나노입자와 PDE4D 억제제의 종양 억제 기전 연구-
dc.typeThesis-
dc.contributor.AlternativeAuthorKang, Tae-Wook-
dc.description.degreeDoctor-
dc.citation.pagesxxii, 105-
dc.contributor.affiliation수의과대학 수의학과-
dc.date.awarded2016-08-
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