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1.
World J Surg Oncol ; 19(1): 199, 2021 Jul 04.
Article in English | MEDLINE | ID: mdl-34218800

ABSTRACT

BACKGROUND: Dysregulation of long non-coding RNAs has been implied to connect with cancer progression. This research was to decipher the mechanism of long non-coding RNA SDCBP2-AS1 in ovarian cancer (OC) through regulation of microRNA (miR)-100-5p and ependymin-related protein 1 (EPDR1). METHODS: LncRNA SDCBP2-AS1 and EPDR1 levels in OC were assessed by Gene Expression Profiling Interactive Analysis. lncRNA SDCBP2-AS1, miR-100-5p, and EPDR1 levels in OC tissues and cells were determined. SKOV3 and A2780 cells were transfected with lncRNA SDCBP2-AS1, miR-100-5p, and EPDR1-related plasmids or sequences, and then their functions in cell viability, apoptosis, migration, and invasion were evaluated. The interplay of lncRNA SDCBP2-AS1, miR-100-5p, and EPDR1 was clarified. RESULTS: LncRNA SDCBP2-AS1 and EPDR1 levels were suppressed whilst miR-100-5p level was elevated in OC. After upregulating lncRNA SDCBP2-AS1 or EPDR1, viability, migration, and invasion of OC cells were impaired, and apoptosis rate was increased. Downregulating EPDR1 or upregulating miR-100-5p partially mitigated upregulated lncRNA SDCBP2-AS1-induced impacts on the biological functions of OC cells. LncRNA SDCBP2-AS1 sponged miR-100-5p, and EPDR1 was targeted by miR-100-5p. CONCLUSION: It is illustrated that lncRNA SDCBP2-AS1 regulates EPDR1 by sponge adsorption of miR-100-5p to inhibit the progression of OC.


Subject(s)
MicroRNAs , Ovarian Neoplasms , RNA, Long Noncoding , Cell Line, Tumor , Cell Movement , Cell Proliferation , Female , Gene Expression Regulation, Neoplastic , Humans , Neoplasm Proteins , Nerve Tissue Proteins , Ovarian Neoplasms/genetics , Prognosis
2.
J Parasitol ; 107(3): 472-480, 2021 05 01.
Article in English | MEDLINE | ID: mdl-34153095

ABSTRACT

We investigated the effect of Schistosoma japonicum adenylate kinase 1 (Sjak1) on the growth and development of schistosomula. Quantitative real-time PCR showed that Sjak1 mRNA was expressed in 3-, 10-, 14-, 18-, and 21-day-old schistosomula, and its levels increased gradually with the development of S. japonicum. Using immunohistochemical techniques, ak1 protein was found to be mainly distributed in the tegument and some parenchymal tissues of the schistosomula. Double-stranded RNA-mediated knockdowns of ak1 decreased ak1 mRNA transcripts by more than 90%, and western blot results showed that expression of ak1 protein was decreased by 66%. Scanning electron microscopy following the RNA-mediated ak1 knockdown showed that the sensory papillae did not develop. Transmission electron microscopy showed a lower mean thickness of the tegument in the Sjak1 interference group than in the negative control group. Terminal deoxynucleotidyl transferase dUTP nick-end labeling suggested higher apoptosis in the interference group than the negative control group. These results showed that ak1 may be involved in the growth and development of S. japonicum schistosomula and especially in the development of the integument. Consequently, ak1 may be a potential target in developing prevention methods for schistosomiasis in the future.


Subject(s)
Adenylate Kinase/metabolism , Schistosoma japonicum/enzymology , Schistosoma japonicum/growth & development , Adenylate Kinase/analysis , Adenylate Kinase/genetics , Animals , Apoptosis , Blotting, Western , DNA/physiology , Female , Gene Expression Regulation, Enzymologic , Gene Knockdown Techniques/methods , Gene Silencing , Immunohistochemistry , In Situ Nick-End Labeling , Liver/parasitology , Mice , Mice, Inbred ICR , Microscopy, Electron, Scanning , Microscopy, Electron, Transmission , RNA Interference , RNA, Messenger/genetics , RNA, Messenger/metabolism , Rabbits , Real-Time Polymerase Chain Reaction , Schistosoma japonicum/genetics , Schistosoma japonicum/ultrastructure , Snails/parasitology
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