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Visible-light Induced Reduction of Graphene Oxide Using Plasmonic Nanoparticle
Published on: September 22, 2015
NF-κB-related decrease of glioma angiogenic potential by graphite nanoparticles and graphene oxide nanoplatelets.
Mateusz Wierzbicki1, Ewa Sawosz2, Barbara Strojny2
1Division of Nanobiotechnology, Warsaw University of Life Science, Ciszewskiego 8, 02-786, Warsaw, Poland. mateusz_wierzbicki@sggw.pl.
Graphite nanoparticles (NG) and graphene oxide nanoplatelets (nGO) reduced glioma angiogenesis in cells with wild-type p53 but not mutant p53. This suggests p53 status influences nanoparticle efficacy in personalized glioma treatments.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Gliomas exhibit increased vascularization and a pro-oxidative microenvironment, driven by reactive oxygen species (ROS) and reactive nitrogen species (RNS).
- The transcription factor NF-κB, influenced by ROS/RNS and p53 mutation status, plays a key role in glioma malignancy and angiogenesis.
Purpose of the Study:
- To investigate the impact of graphite nanoparticles (NG) and graphene oxide nanoplatelets (nGO) on glioma angiogenesis.
- To determine if p53 mutation status affects the response of glioma cells to these nanoparticles.
Main Methods:
- Co-culturing human umbilical vein endothelial cells (HUVEC) with glioma cell lines (U87 with wild-type p53 and U118 with mutant p53) treated with NG and nGO.
- Measuring intracellular ROS/RNS levels and NF-κB signaling pathway activation.
- Analyzing downstream protein expression including interleukin 6, interleukin 8, growth-regulated oncogene α, and monocyte chemotactic protein 1.
Main Results:
- NG and nGO treatment significantly decreased HUVEC angiogenesis when co-cultured with U87 (wild-type p53) cells.
- Nanoparticle treatment was ineffective in reducing angiogenesis with U118 (mutant p53) cells.
- The observed effects correlated with reduced intracellular ROS/RNS levels and downregulated NF-κB signaling, which was dependent on the p53 status.
Conclusions:
- The anti-angiogenic activity of NG and nGO in gliomas is dependent on the p53 mutation status of the tumor cells.
- These findings highlight the potential for developing personalized nanomedicine strategies for glioma treatment, targeting angiogenesis and the tumor microenvironment based on individual p53 status.
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