Pro-Oxidant Therapeutic Activities of Cerium Oxide Nanoparticles in Colorectal Carcinoma Cells
ACS OMEGA
Authors: Datta, Aparna; Mishra, Snehasis; Manna, Krishnendu; Das Saha, Krishna; Mukherjee, Siddhartha; Roy, Somenath
Abstract
Given that basal levels of reactive oxygen species (ROS) are higher in cancer cells, there is a growing school of thought that endorses pro-oxidants as potential chemotherapeutic agents. Intriguingly, cerium oxide (CeO2) nanoparticles can manifest either anti- or pro-oxidant activity as a function of differential pH of various subcellular localizations. In an acidic pH environment, for example, in extracellular milieu of cancer cells, CeO2 would function as a pro-oxidant. Based on this concept, the present study is designed to investigate the pro-oxidant activities of CeO2 in human colorectal carcinoma cell line (HCT 116). For comparison, we have also studied the effect of ceria nanoparticles on human embryonic kidney (HEK 293) cells. Dose-dependent viability of cancerous as well as normal cells has been assessed by treating them independently with CeO2 nanoparticles of different concentrations (5-100 mu g/mL) in the culture media. The half maximal inhibitory concentration (IC50) of nanoceria for HCT 116 is found to be 50.48 mu g/mL while that for the HEK 293 cell line is 92.03 mu g/mL. To understand the intricate molecular mechanisms of CeO2-induced cellular apoptosis, a series of experiments have been conducted. The apoptosis-inducing ability of nanoceria has been investigated by Annexin V-FITC staining, caspase 3/9 analysis, cytochrome c release, intracellular ROS analysis, and mitochondrial membrane potential analysis using flow cytometry. Experimental data suggest that CeO2 treatment causes DNA fragmentation through enhanced generation of ROS, which ultimately leads to cellular apoptosis through the p53-dependent mitochondrial signaling pathway.
The Long Noncoding RNA, Growth Arrest-Specific 5, Suppresses Gastric Cancer by Downregulating miR-21 Expression
PHARMACOLOGY
Authors: Li, Wenjun; Peng, Xiaonu; Wang, Zhaoyang; Zhang, Hongwei; Huang, Haibo; Liu, Huimin; Cai, Li
Abstract
Background:Gastric cancer has become the second major cause of cancer death. The aim of the present study was to explore the relationship between miR-21 and the long noncoding RNA growth arrest-specific 5 (GAS5) in gastric cancer and the effect on gastric cancer cells.Methods:The expression of miR-21 and GAS5 mRNA was analyzed by quantitative real-time-PCR. Overexpression of GAS5 was used to investigate the biological functions of GAS5 in cells. The cell proliferation was detected by cell counting kit-8 assay and the cell migration and invasion were detected by Transwell. Cell apoptosis was evaluated by Annexin V-FITC/PI staining and apoptosis-related proteins were detected by western blot. The mechanism of GAS5 in vivo was evaluated by the tumorigenesis of nude mice, and dual luciferase reporter was used to determine if miR-21 is a GAS5 target. The inhibition of miR-21 and the simultaneous overexpression of GAS5 and miR-21 were further performed, and the above indicators were detected again.Results:GAS5 was low expression and miR-21 was high expression in gastric cancer tissues and cells. GAS5 overexpression reduced the proliferation, migration, and invasion of gastric cancer cells and increased the apoptosis of gastric cancer cells. The growth rate of GAS5 group slowed down and the volume of tumor decreased. miR-21 is a GAS5 target and GAS5 inhibits the proliferation of gastric cancer cells by targeting miR-21.Conclusion:Our research shown that overexpression of GAS5 can significantly inhibit the proliferation, migration, invasion and tumor formation of gastric cancer cells, and promote the apoptosis of gastric cancer cells, which may be related to the targeting inhibition of miR-21 expression by GAS5.