研究目的
To evaluate the impact of PEG surface functionalization with either carboxyl or amine terminals on the in vivo biodistribution and the involved nanotoxic mechanisms of SWCNTs.
研究成果
PEG-functionalized SWCNTs, especially those with carboxyl terminals, showed enhanced biocompatibility and safety profiles compared to non-functionalized SWCNTs. They induced minimal oxidative stress, DNA damage, and inflammatory responses, making them promising for biomedical applications in cancer diagnosis and therapy.
研究不足
The study focused on a single dose of SWCNTs and a specific model (MDA-MB-231 cells and Balb/c mice). The long-term effects beyond one month and the mechanisms of immunotoxicity and cellular integrity in different organs were not fully elucidated.
1:Experimental Design and Method Selection:
The study involved the design of SWCNTs with PEG functionalization having either carboxyl or amine terminals. The cytotoxicity, genotoxicity, immunotoxicity, and oxidative stress were assessed in vitro and in vivo. The biodistribution was monitored using MRI.
2:Sample Selection and Data Sources:
MDA-MB-231 human breast adenocarcinoma cells were used for in vitro assessments. Female Balb/c mice were used for in vivo studies.
3:List of Experimental Equipment and Materials:
SWCNTs, PEG polymer, iron oxide nanoparticles, MDA-MB-231 cells, Balb/c mice, MRI equipment, ICP-MS, TEM, FTIR, etc.
4:Experimental Procedures and Operational Workflow:
SWCNTs were functionalized with PEG, characterized, and their cytotoxicity was assessed in vitro. In vivo, their biodistribution and nanotoxicity were evaluated using MRI and biological assays.
5:Data Analysis Methods:
Data were analyzed using statistical methods including ANOVA followed by Bonferroni-Dunn post hoc test.
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PEG polymer
2000 g/mol
Sigma-Aldrich
Surface functionalization of SWCNTs to improve biocompatibility and solubility.
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MRI equipment
4.7 T Pharmascan 47/16
Bruker
Noninvasive tracking of SWCNTs biodistribution.
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ICP-MS system
Aurora M90
Bruker
Quantification of iron content and metal impurities in SWCNTs samples.
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TEM system
FEI Tecnai G2 F20
FEI
Characterization of SWCNTs samples.
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FTIR spectrometer
Bruker Vertex 70
Bruker Optics
Analysis of PEG functionalization of SWCNTs samples.
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Zetasizer Nano ZS90
ZS90
Malvern Instruments
Measurement of zeta potential of SWCNTs samples.
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SWCNT
Nanoshel LLC
Used as the base material for functionalization and in vivo/in vitro studies.
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Iron oxide nanoparticles
Magnetic tagging of SWCNTs for MRI detection.
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