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Published on: June 2, 2023
Toxicity and oxidative stress induced by semiconducting polymer dots in RAW264.7 mouse macrophages
Fangmao Ye1, Collin C White2, Yuhui Jin3
1Departments of Chemistry, University of Washington, Seattle, WA 98195 (USA).
Abstract:
The rapid development and acceptance of PDots for biological applications depends on an in depth understanding of their cytotoxicity. In this paper, we performed a comprehensive study of PDot cytotoxicity at both the gross cell effect level (such as cell viability, proliferation and necrosis) and more subtle effects (such as redox stress) on RAW264.7 cells, a murine macrophage cell line with high relevance to in vivo nanoparticle disposition. The redox stress measurements assessed were inner mitochondrial membrane lipid peroxidation (nonyl-acridine orange, NAO), total thiol level (monobromobimane, MBB), and pyridine nucleotide redox status (NAD(P)H autofluorescence). Because of the extensive work already performed with QDots on nanotoxicity and also because of their comparable size, QDots were chosen as a comparison/reference nanoparticle for this study. The results showed that PDots exhibit cytotoxic effects to a much lesser degree than their inorganic analogue (QDots) and are much brighter, allowing for much lower concentrations to be used in various biological applications. In addition, at lower dose levels (2.5 nM to 10 nM) PDot treatment resulted in higher total thiol level than those found with QDots. At higher dose levels (20 nM to 40 nM) QDots caused significantly higher thiol levels in RAW264.7 cells, than was seen with PDots, suggesting that QDots elicit compensation to oxidative stress by upregulating GSH synthesis. At the higher concentrations of QDots, NAD(P)H levels showed an initial depletion, then repletion to a level that was greater than vehicle controls. PDots showed a similar trend but this was not statistically significant. Because PDots elicit less oxidative stress and cytotoxicity at low concentrations than QDots, and because they exhibit superior fluorescence at these low concentrations, PDots are predicted to have enhanced utility in biomedical applications.
Insights
Polymer dots (PDots) show significantly less cytotoxicity and oxidative stress than quantum dots (QDots) in macrophage cells. PDots also offer brighter fluorescence, enabling lower concentrations for enhanced biomedical applications.
Area of Science:
- Nanotechnology
- Biomedical Engineering
- Cell Biology
Background:
- The development of nanoparticles for biological applications requires thorough understanding of their cytotoxicity.
- Quantum dots (QDots) have been extensively studied for nanotoxicity, serving as a reference for new nanomaterials.
- RAW264.7 murine macrophage cells are relevant for in vivo nanoparticle disposition studies.
Purpose of the Study:
- To comprehensively evaluate the cytotoxicity of polymer dots (PDots) compared to QDots.
- To assess both gross cellular effects and subtle redox stress responses in RAW264.7 cells.
- To determine the potential of PDots for enhanced biomedical applications.
Main Methods:
- Cytotoxicity assessment including cell viability, proliferation, and necrosis.
- Redox stress measurements: inner mitochondrial membrane lipid peroxidation (NAO), total thiol levels (MBB), and NAD(P)H autofluorescence.
- Comparative analysis of PDots and QDots at various concentrations on RAW264.7 cells.
Main Results:
- PDots exhibited significantly lower cytotoxicity and induced less redox stress than QDots.
- PDots demonstrated brighter fluorescence, allowing for use at lower concentrations.
- At low doses, PDots increased total thiol levels more than QDots; at high doses, QDots induced higher thiol levels, suggesting GSH synthesis upregulation.
- QDots at high concentrations caused significant NAD(P)H depletion and repletion, a trend less pronounced in PDots.
Conclusions:
- PDots are less cytotoxic and induce less oxidative stress compared to QDots.
- Superior fluorescence and lower cytotoxicity of PDots at low concentrations suggest enhanced utility in biomedical applications.
- PDots present a promising alternative to QDots for biological and biomedical research.

