lncRNA UCA1 Increases Proliferation and Multidrug Resistance of Retinoblastoma Cells Through Downregulating miR-513a-5p

被引:38
作者
Yang, Lidong [1 ]
Zhang, Liyou [1 ]
Lu, Lu [1 ]
Wang, Yan [1 ]
机构
[1] Cangzhou Cent Hosp, Cangzhou Eye Hosp, Dept Ocular Fundus Dis, 7-1 South Fuyang Ave, Cangzhou 061001, Peoples R China
关键词
retinoblastoma; UCA1; STMN1; miR-513a-5p; multidrug resistance; LONG NONCODING RNA; STATHMIN; BLADDER-CANCER; POOR SURVIVAL; OVEREXPRESSION; SENSITIVITY; PROGRESSION; EXPRESSION; CARCINOMA;
D O I
10.1089/dna.2019.5063
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Chemoresistance is one of the major obstacles for cancer therapy. Abnormal expression of long noncoding RNAs (lncRNAs) was broadly implicated in chemoresistance of multiple cancers. This study was aimed to investigate the function of urothelial cancer associated 1 (UCA1) in multidrug resistance of retinoblastoma and its potential molecular mechanism. In this study, we observed that UCA1 was significantly upregulated in chemoresistant retinoblastoma tissues and multidrug resistant retinoblastoma cell lines and predicted an unfavorable overall survival. Functionally, knockdown of UCA1 remarkably inhibited proliferation and sensitized retinoblastoma cells to multiple chemotherapy drugs, including vincristine (VCR), carboplatin (CBP), cisplatin (DDP), VP-16 (etoposide), and 5-fluorouracil (5-Fu). Mechanistic studies demonstrated that UCA1 functioned as a miRNA sponge to increase stathmin 1 (STMN1) expression through sponging miR-513a-5p. In addition, silence of miR-513a-5p or STMN1 overexpression could partly reverse UCA1 knockdown-induced inhibitory effects on proliferation and multidrug resistance of retinoblastoma cells. Overall, this study is the first to demonstrate that UCA1 plays a critical role in retinoblastoma chemoresistance, and UCA1 may serve as a potential diagnostic biomarker and therapeutic target of retinoblastoma.
引用
收藏
页码:69 / 77
页数:9
相关论文
共 33 条
  • [1] Clinical Application of Long Non-Coding RNA-UCA1 as a Candidate Gene in Progression of Esophageal Cancer
    Aalijahan, Hamid
    Ghorbian, Saeid
    [J]. PATHOLOGY & ONCOLOGY RESEARCH, 2020, 26 (03) : 1441 - 1446
  • [2] Long noncoding RNA FOXD2-AS1 accelerates the gemcitabine-resistance of bladder cancer by sponging miR-143
    An, Qing
    Zhou, Liyang
    Xu, Nan
    [J]. BIOMEDICINE & PHARMACOTHERAPY, 2018, 103 : 415 - 420
  • [3] [Anonymous], ONCOTARGET
  • [4] Long Noncoding RNA and Cancer: A New Paradigm
    Bhan, Arunoday
    Soleimani, Milad
    Mandal, Subhrangsu S.
    [J]. CANCER RESEARCH, 2017, 77 (15) : 3965 - 3981
  • [5] DAI N, 2018, ONCOTARGET, V9, P25414, DOI DOI 10.18632/ONCOTARGET.11003
  • [6] Retinoblastoma
    Dimaras, Helen
    Kimani, Kahaki
    Dimba, Elizabeth A. O.
    Gronsdahl, Peggy
    White, Abby
    Chan, Helen S. L.
    Gallie, Brenda L.
    [J]. LANCET, 2012, 379 (9824) : 1436 - 1446
  • [7] Non-coding RNAs in human disease
    Esteller, Manel
    [J]. NATURE REVIEWS GENETICS, 2011, 12 (12) : 861 - 874
  • [8] Focal laser treatment in addition to chemotherapy for retinoblastoma
    Fabian, Ido D.
    Johnson, Kenneth P.
    Stacey, Andrew W.
    Sagoo, Mandeep S.
    Reddy, M. A.
    [J]. COCHRANE DATABASE OF SYSTEMATIC REVIEWS, 2017, (06):
  • [9] Decrease in stathmin expression by arsenic trioxide inhibits the proliferation and invasion of osteosarcoma cells via the MAPK signal pathway
    Feng, Tao
    Xu, Jun
    He, Ping
    Chen, Yuanyuan
    Fang, Ruiying
    Shao, Xuejun
    [J]. ONCOLOGY LETTERS, 2017, 14 (02) : 1333 - 1340
  • [10] The functional role of long non-coding RNA in human carcinomas
    Gibb, Ewan A.
    Brown, Carolyn J.
    Lam, Wan L.
    [J]. MOLECULAR CANCER, 2011, 10