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Research Paper

Circular RNA 0001823 aggravates the growth and metastasis of the cervical cancer cells through modulating the microRNA-613/RAB8A axis

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Pages 10335-10349 | Received 16 Dec 2021, Accepted 02 Apr 2022, Published online: 17 Apr 2022

References

  • Olusola P, Banerjee HN, Philley JV, et al. Human papilloma virus-associated cervical cancer and health disparities. Cells. 2019;8(6):622.
  • The LO. Global elimination of cervical cancer is achievable-with commitment. Lancet Oncol. 2019;20(11):1467.
  • Hu Z, Ma D. The precision prevention and therapy of HPV-related cervical cancer: new concepts and clinical implications. Cancer Med. 2018;7(10):5217–5236.
  • Bhatla N, Singhal S. Primary HPV screening for cervical cancer. Best practice & research. Clin Obstetrics Gynaecol. 2020;65:98–108.
  • Chelimo C, Wouldes TA, Cameron LD, et al. Risk factors for and prevention of human papillomaviruses (HPV), genital warts and cervical cancer. J Infect. 2012;66(3):207–217.
  • Birney E, et al. Identification and analysis of functional elements in 1% of the human genome by the ENCODE pilot project. Nature. 2007;447(7146):799–816.
  • Cortes-Lopez M, Miura P. Emerging functions of circular RNAs. Yale J Biol Med. 2016;89(4):527–537.
  • Sanger HL, Klotz G, Riesner D, et al. Viroids are single-stranded covalently closed circular RNA molecules existing as highly base-paired rod-like structures. Proc Natl Acad Sci U S A. 1976;73(11):3852–3856.
  • Kolakofsky D. Isolation and characterization of Sendai virus DI-RNAs. Cell. 1976;8(4):547–555.
  • Hsu MT, Coca-Prados M. Electron microscopic evidence for the circular form of RNA in the cytoplasm of eukaryotic cells. Nature. 1979;280(5720):339–340.
  • Li T, Zuo X, Meng X. Circ_002059 suppresses cell proliferation and migration of gastric cancer via miR-182/MTSS1 axis. Acta Biochim Biophys Sin (Shanghai). 2021;53(4):454–462.
  • Chen S, Li T, Zhao Q, et al. Using circular RNA hsa_circ_0000190 as a new biomarker in the diagnosis of gastric cancer. Clin Chim Acta. 2017;466:167–171.
  • Wang X, Zhang Y, Huang L, et al. Decreased expression of hsa_circ_001988 in colorectal cancer and its clinical significances. Int J Clin Exp Pathol. 2015;8(12):16020–16025.
  • Huang F, Chi S-F, Chien P-R, et al. Arabidopsis RAB8A, RAB8B and RAB8D proteins interact with several RTNLB proteins and are involved in the agrobacterium tumefaciens infection process. Plant Cell Physiol. 2021;62(10):1572–1588.
  • Tong SJ, Wall AA, Hung Y, et al. Guanine nucleotide exchange factors activate Rab8a for Toll-like receptor signalling. Small GTPases. 2021;12(1):27–43.
  • Pan ZN, Lu Y, Tang F, et al. RAB8A GTPase regulates spindle migration and Golgi apparatus distribution via ROCK-mediated actin assembly in mouse oocyte meiosisdagger. Biol Reprod. 2019;100(3):711–720.
  • Wang G, Bai X, Jiang G, et al. GIT1 overexpression promotes epithelial-mesenchymal transition and predicts poor prognosis in hepatocellular carcinoma. Bioengineered. 2021;12(1):30–43.
  • Guan S, Jin T, Han S, et al. Dihydroartemisinin alleviates morphine-induced neuroinflammation in BV-2 cells. Bioengineered. 2021;12(2):9401–9410.
  • Zhang W, Wang C, Zhu W, et al. Ferrostatin-1 alleviates cytotoxicity of cobalt nanoparticles by inhibiting ferroptosis. Bioengineered. 2022;13(3):6163–6172.
  • Liu Y, Geng X. Long non-coding RNA (lncRNA) CYTOR promotes hepatocellular carcinoma proliferation by targeting the microRNA-125a-5p/LASP1 axis. Bioengineered. 2022;13(2):3666–3679.
  • Omar Zaki SS, Kanesan L, Leong MYD, et al. The influence of serum‐supplemented culture media in a transwell migration assay. Cell Biol Int. 2019;43(10):1201–1204.
  • Clement T, Salone V, Rederstorff M. Dual luciferase gene reporter assays to study miRNA function. Methods Mol Biol. 2015;1296:187–98.
  • Bierhoff H. Analysis of lncRNA-protein interactions by RNA-protein pull-down assays and RNA immunoprecipitation (RIP). Methods Mol Biol. 2018;1686:241–250.
  • Zhou W, Cai Z-R, Liu J, et al. Circular RNA: metabolism, functions and interactions with proteins. Mol Cancer. 2020;19(1):172.
  • Nigro JM, Cho KR, Fearon ER, et al. Scrambled exons. Cell. 1991;64(3):607–613.
  • Sang Y, Chen B, Song X, et al. circRNA_0025202 Regulates Tamoxifen Sensitivity and Tumor Progression via Regulating the miR-182-5p/FOXO3a Axis in Breast Cancer. Mol Ther. 2019;27(9):1638–1652.
  • Xu JZ, Shao -C-C, Wang X-J, et al. circTADA2As suppress breast cancer progression and metastasis via targeting miR-203a-3p/SOCS3 axis. Cell Death Dis. 2019;10(3):175.
  • Liu M, Luo C, Dong J, et al. CircRNA_103809 suppresses the proliferation and metastasis of breast cancer cells by sponging microRNA-532-3p (miR-532-3p). Front Genet. 2020;11:485.
  • Zheng X, Huang M, Xing L, et al. The circRNA circSEPT9 mediated by E2F1 and EIF4A3 facilitates the carcinogenesis and development of triple-negative breast cancer. Mol Cancer. 2020;19(1):73.
  • Liu Z, Zhou Y, Liang G, et al. Circular RNA hsa_circ_001783 regulates breast cancer progression via sponging miR-200c-3p. Cell Death Dis. 2019;10(2):55.
  • Song T, Xu A, Zhang Z, et al. CircRNA hsa_circRNA_101996 increases cervical cancer proliferation and invasion through activating TPX2 expression by restraining miR-8075. J Cell Physiol. 2019;234(8):14296–14305.
  • Ji F, Du R, Chen T, et al. Circular RNA circSLC26A4 accelerates cervical cancer progression via miR-1287-5p/HOXA7 axis. Mol Ther Nucleic Acids. 2020;19:413–420.
  • Tang, Qiu Q, Chen Z, et al. Circular RNA hsa_circ_0000515 acts as a miR-326 sponge to promote cervical cancer progression through up-regulation of ELK1. Aging (Albany NY). 2019;11(22):9982–9999.
  • Jiao J, Zhang T, Jiao X, et al. hsa_circ_0000745 promotes cervical cancer by increasing cell proliferation, migration, and invasion. J Cell Physiol. 2020;235(2):1287–1295.
  • Liu S, Xie X, Lei H, et al. Identification of Key circRNAs/lncRNAs/miRNAs/mRNAs and Pathways in Preeclampsia Using Bioinformatics Analysis. Med Sci Monit. 2019;25:1679–1693.
  • Luan X, Wang Y. LncRNA XLOC_006390 facilitates cervical cancer tumorigenesis and metastasis as a ceRNA against miR-331-3p and miR-338-3p. J Gynecol Oncol. 2018;29(6):e95.
  • Zhao R, Feng J, He, et al. He, miR-613 regulates cholesterol efflux by targeting LXRalpha and ABCA1 in PPARgamma activated THP-1 macrophages. Biochem Biophys Res Commun. 2014;448(3):329–334.
  • Zhong D, Zhang Y, Zeng Y-J, et al. MicroRNA-613 represses lipogenesis in HepG2 cells by downregulating LXRalpha. Lipids Health Dis. 2013;12(1):32.
  • Ren W, Li C, Duan W, et al. MicroRNA-613 represses prostate cancer cell proliferation and invasion through targeting Frizzled7. Biochem Biophys Res Commun. 2016;469(3):633–638.
  • Wan H, Yuan B, Jiang K, et al. CircRNA CircRIMS is overexpressed in esophageal squamous cell carcinoma and downregulate miR-613 through methylation to increase cell proliferation. Cancer Manag Res. 2021;13:4587–4595.
  • Zang H, Li Y, Zhang X, et al. Knockdown of circRAD18 mitigates breast cancer progression through the regulation of miR-613/HK2 axis. Cancer Manag Res. 2020;12:3661–3672.
  • Wall AA, Condon ND, Luo L, et al. Rab8a localisation and activation by Toll-like receptors on macrophage macropinosomes. Philosophical transactions. Biological sciences. 2019;374(1765):20180151.
  • Uchida K, Nomura M, Yamamoto T, et al. Rab8a is involved in membrane trafficking of Kir6.2 in the MIN6 insulinoma cell line. Pflugers Arch. 2019;471(6):877–887.
  • Zhang L, Li K, Tian S, et al. Down-regulation of microRNA-30d-5p is associated with gestational diabetes mellitus by targeting RAB8A. J Diabetes Complications. 2021;35(8):107959.
  • Bie Y, Zhang Z. RAB8A a new biomarker for endometrial cancer? World J Surg Oncol. 2014;12(1):371.