DocumentCode
2948542
Title
Cell-penetration efficiency of PEGylated multi-walled carbon nanotubes is dependent on cell types
Author
Cheng, Jinping ; Lam, Yun Wah ; Sun, Ya-Ping ; Cheng, Shuk Han
Author_Institution
Dept. of Biol. & Chem., City Univ. of Hong Kong, Hong Kong, China
fYear
2010
fDate
5-9 Dec. 2010
Firstpage
203
Lastpage
208
Abstract
Carbon nanotubes (CNTs) have been widely investigated as one of the most promising nanomaterials in biomedical applications. Functionalization of CNTs with poly(ethylene glycol) diamine (PEG) is a recognized methodology with good solubility and biocompatibility. In this study, PEG conjugated (PEGylated) multi-walled CNTs (MWCNTs) were prepared and labeled with fluorophore FITC. Using fluorophore-conjugated PEGylated MWCNTs, we monitored their accumulation in transformed cancer cells and in normal cells. The intracellular accumulation of PEGylated MWCNTs was studied under confocal microscope and transmission electron microscope. At the same concentration and exposure time, PEGylated MWCNTs entered all three of the cancer cell lines tested much more efficiently than the three primary human fibroblast lines. This different cell-penetration efficiency was observed both in separate cell culture separate exposure conditions and in co-culture and co-exposure conditions. This study highlights that the cell-penetration efficiency of PEGylated MWCNTs is dependent on cell types, and possibly due to different metabolic rates in different cell types. Furthermore, the intracellular accumulation of PEGylated MWCNTs did not impair membrane integrity, and the treated cells remained normal morphology, indicating good biocompatibility of PEGylated MWCNTs. This study suggests that PEGylated MWCNTs can be developed as potential drug carrier with its intrinsic higher preference to tumor cells than normal cells.
Keywords
biomedical materials; cancer; carbon nanotubes; cellular biophysics; drug delivery systems; nanocomposites; nanomedicine; optical microscopy; polymers; transmission electron microscopy; C; CNT functionalization; FITC fluorophore labeling; PEG conjugated MWCNT; PEGylated MWCNT intracellular accumulation; biocompatibility; biomedical applications; cancer cell lines; cell metabolic rates; cell penetration efficiency; cell types; confocal microscopy; drug carrier; fluorophore conjugated PEGylated MWCNT; multiwalled carbon nanotubes; nanomaterials; normal cells; poly(ethylene glycol) diamine; primary human fibroblast lines; solubility; transformed cancer cells; transmission electron microscopy; Biomembranes; Cancer; Fibroblasts; Fluorescence; Humans; Mice; Microscopy; cancer cell; carbon nanotubes; cell penetration; efficiency; normal cell;
fLanguage
English
Publisher
ieee
Conference_Titel
Nano/Molecular Medicine and Engineering (NANOMED), 2010 IEEE 4th International Conference on
Conference_Location
Hong Kong/Macau
ISSN
2159-6964
Print_ISBN
978-1-61284-152-6
Type
conf
DOI
10.1109/NANOMED.2010.5749835
Filename
5749835
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