1.TFAP2C-mediated upregulation of TGFBR1 promotes lung tumorigenesis and epithelial–mesenchymal transition.
Wanyeon KIM ; EunGi KIM ; Sungmin LEE ; Daehoon KIM ; Jahyun CHUN ; Kang Hyun PARK ; HyeSook YOUN ; BuHyun YOUN
Experimental & Molecular Medicine 2016;48(11):e273-
TFAP2C (transcription factor-activating enhancer-binding protein 2C) expression has been positively correlated with poor prognosis in patients with certain types of cancer, but the mechanisms underlying TFAP2C-mediated tumorigenesis in non-small-cell lung cancer (NSCLC) are still unknown. We previously performed a microarray analysis to identify TFAP2C regulation genes, and TGFBR1 (transforming growth factor-β receptor type 1) was found to be upregulated by TFAP2C. We observed that TFAP2C or TGFBR1 overexpression led to oncogenic properties, such as cell viability, proliferation and cell cycle progression. TGFBR1 upregulation induced by TFAP2C also promoted cell motility and migration, leading to malignant development. We also found that PAK1 (p21 protein (Cdc42/Rac)-activated kinase 1) signaling was involved in TFAP2C/TGFBR1-induced tumorigenesis. These results were confirmed by an in vivo xenograft model and patient tissue samples. This study shows that TFAP2C promoted tumor progression by upregulation of TGFBR1 and consequent activation of PAK1 signaling.
Carcinogenesis*
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Cell Cycle
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Cell Movement
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Cell Survival
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Heterografts
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Humans
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Lung Neoplasms
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Lung*
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Microarray Analysis
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Phosphotransferases
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Prognosis
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Up-Regulation*
2.Phenylpropanoids in radioregulation: double edged sword.
Wanyeon KIM ; Ki Moon SEONG ; BuHyun YOUN
Experimental & Molecular Medicine 2011;43(6):323-333
Radiotherapy, frequently used for treatment of solid tumors, carries two main obstacles including acquired radioresistance in cancer cells during radiotherapy and normal tissue injury. Phenylpropanoids, which are naturally occurring phytochemicals found in plants, have been identified as potential radiotherapeutic agents due to their anti-cancer activity and relatively safe levels of cytotoxicity. Various studies have proposed that these compounds could not only sensitize cancer cells to radiation resulting in inhibition of growth and cell death but also protect normal cells against radiation-induced damage. This review is intended to provide an overview of recent investigations on the usage of phenylpropanoids in combination with radiotherapy in cancer treatment.
Antineoplastic Agents/*therapeutic use
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Apoptosis/drug effects/radiation effects
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Chromones/therapeutic use
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Combined Modality Therapy
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Cytoprotection/drug effects/radiation effects
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Humans
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Neoplasms/pathology/*radiotherapy
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Phenylpropionates/therapeutic use
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Plants
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Radiation Tolerance/drug effects
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Radiation-Sensitizing Agents/*therapeutic use
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*Radiotherapy
3.RNF138-mediated ubiquitination of rpS3 is required for resistance of glioblastoma cells to radiation-induced apoptosis
Wanyeon KIM ; HyeSook YOUN ; Sungmin LEE ; EunGi KIM ; Daehoon KIM ; Jung SUB LEE ; Jae Myung LEE ; BuHyun YOUN
Experimental & Molecular Medicine 2018;50(1):e434-
An interaction between ribosomal protein S3 (rpS3) and nuclear factor kappa B or macrophage migration inhibitory factor in non-small-cell lung cancer is responsible for radioresistance. However, the role of rpS3 in glioblastoma (GBM) has not been investigated to date. Here we found that in irradiated GBM cells, rpS3 translocated into the nucleus and was subsequently ubiquitinated by ring finger protein 138 (RNF138). Ubiquitin-dependent degradation of rpS3 consequently led to radioresistance in GBM cells. To elucidate the apoptotic role of rpS3, we analyzed the interactome of rpS3 in ΔRNF138 GBM cells. Nuclear rpS3 interacted with DNA damage inducible transcript 3 (DDIT3), leading to DDIT3-induced apoptosis in irradiated ΔRNF138 GBM cells. These results were confirmed using in vivo orthotopic xenograft models and GBM patient tissues. This study aims to clarify the role of RNF138 in GBM cells and demonstrate that rpS3 may be a promising substrate of RNF138 for the induction of GBM radioresistance, indicating RNF138 as a potential target for GBM therapy.
Apoptosis
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DNA Damage
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Fingers
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Glioblastoma
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Heterografts
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Humans
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Lung Neoplasms
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Macrophages
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NF-kappa B
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Ribosomal Proteins
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Ubiquitin
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Ubiquitination
4.Chronic Treatment with Combined Chemotherapeutic Agents Affects Hippocampal Micromorphometry and Function in Mice, Independently of Neuroinflammation.
Sohi KANG ; Sueun LEE ; Juhwan KIM ; Jong Choon KIM ; Sung Ho KIM ; Yeonghoon SON ; Taekyun SHIN ; BuHyun YOUN ; Joong Sun KIM ; Hongbing WANG ; Miyoung YANG ; Changjong MOON
Experimental Neurobiology 2018;27(5):419-436
Chemotherapeutic agents induce long-term side effects, including cognitive impairment and mood disorders, particularly in breast cancer survivors who have undergone chemotherapy. However, the precise mechanisms underpinning chemotherapy-induced hippocampal dysfunction remain unknown. In this study, we investigated the detrimental effects of chronic treatment with a combination of adriamycin and cyclophosphamide (AC) on the neuronal architecture and functions of the hippocampi of female C57BL/6 mice. After chronic AC administration, mice showed memory impairment (measured using a novel object recognition memory task) and depression-like behavior (measured using the tail suspension test and forced swim test). According to Golgi staining, chronic AC treatment significantly reduced the total dendritic length, ramification, and complexity as well as spine density and maturation in hippocampal neurons in a sub-region-specific manner. Additionally, the AC combination significantly reduced adult neurogenesis, the extent of the vascular network, and the levels of hippocampal angiogenesis-related factors. However, chronic AC treatment did not increase the levels of inflammation-related signals (microglial or astrocytic distribution, or the levels of pro-inflammatory cytokines or M1/M2 macrophage markers). Thus, chronic AC treatment changed the neuronal architecture of the adult hippocampus, possibly by reducing neurogenesis and the extent of the vasculature, independently of neuroinflammation. Such detrimental changes in micromorphometric parameters may explain the hippocampal dysfunction observed after cancer chemotherapy.
Adult
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Animals
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Breast Neoplasms
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Cognition Disorders
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Cyclophosphamide
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Cytokines
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Doxorubicin
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Drug Therapy
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Female
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Hindlimb Suspension
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Hippocampus
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Humans
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Macrophages
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Memory
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Mice*
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Mood Disorders
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Neurogenesis
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Neurons
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Spine
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Survivors