Anti-cancer potential of selenium-chitosan-polyethylene glycol-carvacrol nanocomposites in multiple myeloma U266
Haixi Zhang1,2,3, Jie Zhao1,2,3, Arunachalam Chinnathambi4
1Department of Hematology, The First People's Hospital of Yunnan Province, Kunming, China.
Abstract:
Multiple myeloma (MM) is an incurable cancer that is characterized by malignant plasma cell proliferation. Approximately 10% of all blood cancers are MM, and there is no standard curative therapy. In this work, we intended to synthesize, characterize, and assess the anticancer effects of selenium/chitosan/polyethylene glycol-carvacrol nanocomposites (SCP-Car-NCs) on MM U266 cells in vitro. Various characterization techniques were used to characterize the synthesized SCP-Car-NCs. Several in vitro free radical scavenging experiments were conducted to test the ability of synthesized SCP-Car-NCs to scavenge the different free radicals. The cytotoxicity of SCP-Car-NCs was assessed on Vero and U266 cells using the 3-[4,5-dimethylthiazol-2-yl]-2,5 diphenyl tetrazolium bromide (MTT) assay. By using various fluorescence staining techniques, the amount of reactive oxygen species (ROS) generation, MMP, and apoptosis were measured. Using commercial test kits, the levels of oxidative stress and apoptotic biomarkers in control and treated U266 cells were assessed. The highest peak in the UV spectral analysis was found to be at 271 nm, demonstrating the development of SCP-Car-NCs. Fourier transform infrared analysis showed that the synthesized SCP-Car-NCs contained a variety of stretching and bonding. The X-ray diffraction study confirmed the crystallinity of SCP-Car-NCs. The dynamic light scattering analysis showed that the SCP-Car-NCs had an average size of 171 nm. The different free radicals, such as the 2,2-diphenyl-1-picrylhydrazyl, hydroxyl, and peroxyl radicals, were significantly scavenged by the SCP-Car-NCs. According to the MTT assay results, the SCP-Car-NCs decreased the viability of U266 cells while having no impact on the proliferation of Vero cells. The SCP-Car-NCs significantly boosted ROS production, decreased the MMP level, and promoted apoptosis, as evidenced by the fluorescence staining experiments. In U266 cells treated with SCP-Car-NCs, the level of thiobarbituric acid reactive substances increased while superoxide dismutases and glutathione levels were reduced. In the SCP-Car-NCs treated U266 cells, it was found that the Bax, caspase-3, and -9 activities had increased while the Bcl-2 level had decreased. In conclusion, our findings show that SCP-Car-NCs treatment reduced the viability and increased apoptosis in the U266 cells, providing a new insight on SCP-Car-NCs' potential for usage in the future to treat MM.
Insights
This study developed novel selenium/chitosan/polyethylene glycol-carvacrol nanocomposites (SCP-Car-NCs) that effectively reduced multiple myeloma (MM) cell viability and induced apoptosis in vitro, showing potential for MM treatment.
Area of Science:
- Materials Science: Nanocomposite synthesis and characterization.
- Biochemistry: Oxidative stress and apoptosis biomarker analysis.
- Pharmacology: In vitro anticancer efficacy assessment.
Background:
- Multiple myeloma (MM) is an incurable plasma cell malignancy with no standard curative therapy.
- There is a need for novel therapeutic strategies to combat MM.
- Carvacrol, a natural compound, has shown potential biological activities.
Purpose of the Study:
- To synthesize and characterize selenium/chitosan/polyethylene glycol-carvacrol nanocomposites (SCP-Car-NCs).
- To evaluate the in vitro anticancer effects of SCP-Car-NCs on multiple myeloma (MM) U266 cells.
- To investigate the underlying mechanisms of SCP-Car-NCs' cytotoxicity.
Main Methods:
- Nanocomposite synthesis and characterization using UV-Vis, FTIR, XRD, and DLS.
- In vitro free radical scavenging assays.
- Cytotoxicity assessment via MTT assay on Vero and U266 cells.
- Apoptosis, ROS generation, and mitochondrial membrane potential (MMP) measurement using fluorescence staining.
- Analysis of oxidative stress and apoptosis biomarkers.
Main Results:
- SCP-Car-NCs were successfully synthesized with an average size of 171 nm and confirmed crystallinity.
- SCP-Car-NCs exhibited significant free radical scavenging activity.
- SCP-Car-NCs demonstrated selective cytotoxicity against U266 cells, reducing viability without affecting Vero cells.
- SCP-Car-NCs induced apoptosis by increasing ROS, decreasing MMP, altering Bax/Bcl-2 ratios, and activating caspases.
- Treatment led to increased thiobarbituric acid reactive substances and decreased antioxidant enzyme levels.
Conclusions:
- Selenium/chitosan/polyethylene glycol-carvacrol nanocomposites (SCP-Car-NCs) show promising in vitro anticancer activity against multiple myeloma U266 cells.
- SCP-Car-NCs exert their effects by inducing oxidative stress and apoptosis.
- These findings suggest SCP-Car-NCs as a potential novel therapeutic agent for multiple myeloma treatment.
More Related Videos
15:04Potentiation of Anticancer Antibody Efficacy by Antineoplastic Drugs: Detection of Antibody-drug Synergism Using the Combination Index Equation
Published on: January 19, 2019
07:24Repression of Multiple Myeloma Cell Growth In Vivo by Single-wall Carbon Nanotube SWCNT-delivered MALAT1 Antisense Oligos
Published on: December 13, 2018
