CDK8 regulates the angiogenesis of pancreatic cancer cells in part via the CDK8-β-catenin-KLF2 signal axis

被引:25
|
作者
Wei, Ran [2 ]
Kong, Lingdong [3 ]
Xiao, Yuhong [1 ]
Yuan, Huiping [1 ]
Song, Yi [1 ]
Wang, Jia [1 ]
Yu, Huihuan [1 ]
Mao, Shengxun [1 ]
Xu, Wei [1 ]
机构
[1] Nanchang Univ, Affiliated Hosp 2, Dept Gen Surg, Nanchang 330006, Jiangxi, Peoples R China
[2] Nanchang Univ, Clin Med Coll 1, Nanchang 330006, Jiangxi, Peoples R China
[3] Nanchang Univ, Queen Mary Clin Med Coll, Nanchang, Jiangxi, Peoples R China
关键词
CDK8; Angiogenesis; beta-catenin; KLF2; Pancreatic cancer; KRUPPEL-LIKE FACTOR; TUMOR ANGIOGENESIS; GROWTH-FACTOR; MEDIATED ANGIOGENESIS; ENDOTHELIAL-CELLS; LUNG-CANCER; VEGF; EXPRESSION; INHIBITION; HYPOXIA;
D O I
10.1016/j.yexcr.2018.05.033
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Background: CDK8 is associated with the transcriptional Mediator complex and has been shown to regulate several transcription factors implicated in cancer. As a pancreatic cancer oncogene, the role of CDK8 in cancer angiogenesis remains unclear. Here, we investigated the contribution of CDK8 in pancreatic cancer angiogenesis and examined the underlying molecular mechanisms. Methods: CDK8 expression was evaluated via immunohistochemistry, western blotting, and qRT-PCR in relation to the clinicopathological characteristics of pancreatic cancer patients. The effects of silencing or overexpressing CDK8 on cancer angiogenesis were assessed in vitro by western blotting assays in pancreatic cancer cell lines and in vivo with nude mice xenograft models. Results: Compared with adjacent normal tissues, pancreatic cancer tissues showed upregulation of CDK8 expression, which was inversely correlated with T grade, liver metastasis, size, lymph node metastasis and poor survival. CDK8 overexpression promoted angiogenesis in pancreatic cancer via activation of the CDK8-beta-catenin-KLF2 signaling axis, as demonstrated by the upregulation and downregulation of signals representing the rate-limiting steps in angiogenesis. Silencing CDK8 inhibited angiogenesis in pancreatic cancer in vitro. Additionally, these results were confirmed in nude mice xenograft models in vivo. Conclusions: CDK8 promotes angiogenesis in pancreatic cancer via activation of the CDK8-beta-catenin-KLF2 signaling axis, thus providing valid targets for the treatment of pancreatic cancer.
引用
收藏
页码:304 / 315
页数:12
相关论文
共 50 条
  • [31] MicroRNA-9 facilitates hypoxia-induced injury and apoptosis in H9c2 cells via targeting CDK8
    Pengcheng Dou
    Guangshuang Tan
    Zhihua Fan
    Jiatong Xiao
    Chaoran Shi
    Zhengjun Lin
    Juan Duan
    Journal of Biosciences, 2021, 46
  • [32] XIST promote the proliferation and migration of non-small cell lung cancer cells via sponging miR-16 and regulating CDK8 expression
    Zhou, Xiaoyun
    Xu, Xiaohui
    Gao, Chao
    Cui, Yushang
    AMERICAN JOURNAL OF TRANSLATIONAL RESEARCH, 2019, 11 (09): : 6196 - 6206
  • [33] Antitumor Activity of Vanicoside B Isolated from Persicaria dissitiflora by Targeting CDK8 in Triple-negative Breast Cancer Cells
    Kim, Donghwa
    Wang, Cai Yi
    Hu, Ruoci
    Lee, Ji Yun
    Luu, Thi-Thu-Trang
    Park, Hee-Juhn
    Lee, Sang Kook
    JOURNAL OF NATURAL PRODUCTS, 2019, 82 (11): : 3140 - 3149
  • [34] Design and Synthesis of a 2-Amino-pyridine Derivative as a Potent CDK8 Inhibitor for Anti-colorectal Cancer Therapy
    Yan, Yao Yao
    Zhang, Xing Xing
    Xiao, Yun
    Shen, Xiao Bao
    Jian, Yu Jie
    Wang, Yu Meng
    She, Zi Hao
    Liu, Ming Ming
    Liu, Xin Hua
    JOURNAL OF MEDICINAL CHEMISTRY, 2022, 65 (19) : 13216 - 13239
  • [35] Knockdown of SNHG16 suppresses the proliferation and induces the apoptosis of leukemia cells via miR-193a-5p/CDK8
    Piao, Meihua
    Zhang, Li
    INTERNATIONAL JOURNAL OF MOLECULAR MEDICINE, 2020, 46 (03) : 1175 - 1185
  • [36] CDK8/19 inhibition overcomes in vitro and in vivo resistance to lapatinib in HER2+breast cancer via STAT1 and STAT3.
    Ding, Xiaokai
    Sharko, Amanda C.
    McDermott, Martina S-J
    Ji, Hao
    Chumanevich, Alexander
    Schools, Gary P.
    Mack, Zachary T.
    Pugacheva, Elena
    Tatarskiy, Victor
    Khrustaleva, Anastasia
    Tyakht, Alexander
    Shtutman, Michael
    Chen, Mengqian
    Roninson, Igor
    Broude, Eugenia V.
    CANCER RESEARCH, 2021, 81 (13)
  • [37] RETRACTION: LINC01224 accelerates malignant transformation via MiR-193a-5p/CDK8 axis in gastric cancer (Retraction of Vol 10, Pg 1377, 2021)
    Sun, H.
    Yan, J.
    Tian, G.
    Chen, X.
    Song, W.
    CANCER MEDICINE, 2024, 13 (11):
  • [38] Identification of Cdk8 and Cdkn2d as New Prame-Target Genes in 2C-like Embryonic Stem Cells
    Lucci, Valeria
    De Marino, Elena
    Tagliaferri, Daniela
    Amente, Stefano
    Pollice, Alessandra
    Calabro, Viola
    Vivo, Maria
    Falco, Geppino
    Angrisano, Tiziana
    GENES, 2022, 13 (10)
  • [39] RETRACTION: siRNA-mediated silencing of CDK8 inhibits proliferation and growth in breast cancer cells (Retraction of Vol 7, Pg 92, 2014)
    Li, X. Y.
    Luo, Q. F.
    Wei, C. K.
    Li, D. F.
    Fang, L.
    INTERNATIONAL JOURNAL OF CLINICAL AND EXPERIMENTAL PATHOLOGY, 2018, 11 (03): : 1836 - 1836
  • [40] CDK8 and CXCL2 remodel the tumor microenvironment to contribute to KRASG12D small molecule inhibition resistance in pancreatic ductal adenocarcinoma
    McAndrews, Kathleen M.
    Mahadevan, Krishnan K.
    Li, Bingrui
    Sockwell, Amari M.
    Morse, Sami J.
    Kelly, Patience J.
    Kirtley, Michelle L.
    Conner, Meagan R.
    Patel, Sarah I.
    Khumbar, Shreyasee V.
    Arian, Kent A.
    Barekatain, Yasaman
    Diaz, Barbara A. Moreno
    Lyu, Hengyu
    Sugimoto, Hikaru
    Sthanam, Lakshmi Kavitha
    Sobhani, Navid
    Paradiso, Francesca
    Bernard, Vincent
    Guerrero, Paola
    Ying, Haoqiang
    Maitra, Anirban
    Heffernan, Timothy P.
    Kalluri, Raghu
    CANCER RESEARCH, 2024, 84 (02)