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      CCL3 promotes angiogenesis by dysregulation of miR-374b/ VEGF-A axis in human osteosarcoma cells

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          Abstract

          Osteosarcoma is the most frequent bone tumor, characterized by a high metastatic potential. However, the crosstalk between chemokine (C-C motif) ligand 3 (CCL3), which facilitates tumor progression and metastasis. Vascular endothelial growth factor-A (VEGF-A), an angiogenesis inducer and a highly specific mitogen for endothelial cells, has not been well explored in human osteosarcoma. Here we demonstrate the correlation of CCL3 and VEGF-A expressions, quantified by immunohistochemistry, with the tumor stage of human osteosarcoma tissues. Furthermore, CCL3 promotes VEGF-A expression in human osteosarcoma cells that subsequently induces human endothelial progenitor cell (EPC) migration and tube formation. Phosphorylation of JNK, ERK, and p38 was found after CCL3 stimulation. In addition, JNK, ERK, and p38 inhibitors also abolished CCL3-induced VEGF-A expression and angiogenesis. We noted that CCL3 reduces the expression of miR-374b and miR-374b mimic by reversing CCL3-promoted VEGF-A expression and angiogenesis in vitro and in vivo. This study shows that CCL3 promotes VEGF-A expression and angiogenesis in human osteosarcoma cells by down-regulating miR-374b expression via JNK, ERK, and p38 signaling pathways. Thus, CCL3 may be a new molecular therapeutic target in osteosarcoma angiogenesis and metastasis.

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          Most cited references45

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          MiRNA-Directed Regulation of VEGF and Other Angiogenic Factors under Hypoxia

          MicroRNAs (miRNAs) are a class of 20–24 nt non-coding RNAs that regulate gene expression primarily through post-transcriptional repression or mRNA degradation in a sequence-specific manner. The roles of miRNAs are just beginning to be understood, but the study of miRNA function has been limited by poor understanding of the general principles of gene regulation by miRNAs. Here we used CNE cells from a human nasopharyngeal carcinoma cell line as a cellular system to investigate miRNA-directed regulation of VEGF and other angiogenic factors under hypoxia, and to explore the principles of gene regulation by miRNAs. Through computational analysis, 96 miRNAs were predicted as putative regulators of VEGF. But when we analyzed the miRNA expression profile of CNE and four other VEGF-expressing cell lines, we found that only some of these miRNAs could be involved in VEGF regulation, and that VEGF may be regulated by different miRNAs that were differentially chosen from 96 putative regulatory miRNAs of VEGF in different cells. Some of these miRNAs also co-regulate other angiogenic factors (differential regulation and co-regulation principle). We also found that VEGF was regulated by multiple miRNAs using different combinations, including both coordinate and competitive interactions. The coordinate principle states that miRNAs with independent binding sites in a gene can produce coordinate action to increase the repressive effect of miRNAs on this gene. By contrast, the competitive principle states when multiple miRNAs compete with each other for a common binding site, or when a functional miRNA competes with a false positive miRNA for the same binding site, the repressive effects of miRNAs may be decreased. Through the competitive principle, false positive miRNAs, which cannot directly repress gene expression, can sometimes play a role in miRNA-mediated gene regulation. The competitive principle, differential regulation, multi-miRNA binding sites, and false positive miRNAs might be useful strategies in the avoidance of unwanted cross-action among genes targeted by miRNAs with multiple targets.
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            MicroRNAs as novel regulators of angiogenesis.

            MicroRNAs are short noncoding RNAs that function as negative regulators of gene expression. Posttranscriptional regulation by miRNAs is important for many aspects of development, homeostasis, and disease. Endothelial cells are key regulators of different aspects of vascular biology, including the formation of new blood vessels (angiogenesis). Here, we review the approaches and current experimental evidence for the involvement of miRNAs in the regulation of the angiogenic process and their potential therapeutic applications for vascular diseases associated with abnormal angiogenesis.
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              MEK inhibitors: the chemistry and biological activity of U0126, its analogs, and cyclization products.

              In search of antiinflammatory drugs with a new mechanism of action, U0126 was found to functionally antagonize AP-1 transcriptional activity via noncompetitive inhibition of the dual specificity kinase MEK with an IC50 of 0.07 microM for MEK 1 and 0.06 microM for MEK 2. U0126 can undergo isomerization and cyclization reactions to form a variety of products, both chemically and in vivo, all of which exhibit less affinity for MEK and lower inhibition of AP-1 activity than parent, U0126.
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                Author and article information

                Journal
                Oncotarget
                Oncotarget
                Oncotarget
                ImpactJ
                Oncotarget
                Impact Journals LLC
                1949-2553
                26 January 2016
                21 December 2015
                : 7
                : 4
                : 4310-4325
                Affiliations
                1 Institute of Medicine, Chung Shan Medical University, Taichung, Taiwan
                2 Department of Surgery, Chung Shan Medical University Hospital, Taichung, Taiwan
                3 Graduate Institute of Basic Medical Science, China Medical University, Taichung, Taiwan
                4 Department of Nursing, Hung Kuang University, Taichung, Taiwan
                5 Department of Medicine, Mackay Medical College, New Taipei City, Taiwan
                6 Department of Orthopedic Surgery, China Medical University Hospital, Taichung, Taiwan
                7 School of Chinese Medicine, China Medical University, Taichung, Taiwan
                8 Department of Medicine, Chung Shan Medical University, Taichung, Taiwan
                9 Department of Orthopaedics, Taichung Veterans General Hospital, Taichung, Taiwan
                10 Department of Pathology, China Medical University Hospital, Taichung, Taiwan
                11 Department of Orthopedic Surgery, Tungs' Taichung Metroharbor Hospital, Taichung, Taiwan
                12 Department of Pharmacology, School of Medicine, China Medical University, Taichung, Taiwan
                13 Department of Biotechnology, College of Health Science, Asia University, Taichung, Taiwan
                14 Department of Sports Medicine, College of Health Care, China Medical University, Taichung, Taiwan
                Author notes
                Correspondence to: Yi-Chin Fong, yichin.fong@ 123456gmail.com
                Article
                6708
                10.18632/oncotarget.6708
                4826207
                26713602
                26761277-38fd-4136-b935-8bd8daa9ee25
                Copyright: © 2016 Liao et al.

                This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.

                History
                : 27 July 2015
                : 5 December 2015
                Categories
                Research Paper

                Oncology & Radiotherapy
                mapk,mir-374b,vegf-a,angiogenesis,osteosarcoma
                Oncology & Radiotherapy
                mapk, mir-374b, vegf-a, angiogenesis, osteosarcoma

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