Rapid and delayed effects of single-walled carbon nanotubes in glioma cells
Creators
- 1. Department of Molecular Compounds Physics, State research institute Center for Physical
- 2. Laboratory of Nanoelectromagnetics, Institute for Nuclear Problems of Belarusian State University
- 3. Institute for Nuclear Problems Belarusian State University
- 4. University of Eastern Finland
Description
Single-walled carbon nanotubes (SWCNTs) demonstrate a strong potential as an optically activated theranostic nano-agent. However, using SWCNTs in theranostics still requires revealing mechanisms of the SWCNT-mediated effects on cellular functions. Even though rapid and delayed cellular responses can differ significantly and may lead to undesirable consequences, understanding of these mechanisms is still incomplete. We demonstrate that introducing short (150–250 nm) SWCNTs into C6 rat glioma cells leads to SWCNT-driven effects that show pronounced time dependence. Accumulation of SWCNTs is carried out due to endocytosis with modification of the actin cytoskeleton but not accompanied with autophagy. Its initial stage launches a rapid cellular response via significantly heightened mitochondrial membrane potential and superoxide anion radical production, satisfying the cell demand of energy for SWCNT transfer inside the cytoplasm. In the long term, SWCNTs agglomerate to micron-sized structures surrounded by highly active mitochondria having parameters return to control values. SWCNTs postponed effects are also manifested themselves in the suppression of the cell proliferative activity with further restoration after five passages. These results demonstrate relative cellular inertness and safety of SWCNTs eliminating possible side effects caused by optically activated theranostic applications.
Files
Manuscript_revised_Final.pdf
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Additional details
Funding
- DiSeTCom – Dirac Semimetals based Terahertz Components 823728
- European Commission
- TURANDOT – Tunable Radiation Tolerant 2D Terahertz bolometer 836816
- European Commission
- 2D Layered Materials for Photonics / Consortium: 2D-LAMP 298298
- Academy of Finland
- Photonics Research and Innovation / Consortium: PREIN 320166
- Academy of Finland
- Graphene based plasmonic interferometers for FIR and MIR detection and spectroscopy 334270
- Academy of Finland