Literature DB >> 23343334

Dispersant affects the cellular influences of single-wall carbon nanotube: the role of CNT as carrier of dispersants.

Masanori Horie1, Mayumi Stowe, Miki Tabei, Haruhisa Kato, Ayako Nakamura, Shigehisa Endoh, Yasuo Morimoto, Katsuhide Fujita.   

Abstract

The application of carbon nanotube (CNT) as a functional material to engineering and life sciences is advanced. In order to evaluate the cytotoxicity of CNT in vitro, some chemical and biological reagents are used for dispersants. In the present study, the cellular influences of six kinds of chemical or biological reagents used as dispersants were examined. Pluronic F-127, Pluronic F-68, 1,2-dipalmitoyl-sn-glycero-3-phosphocholine (DPPC), pulmonary surfactant preparation Surfacten®, bovine serum albumin (BSA) and Tween 80 were used in the preparation of CNT-medium dispersants. The influences of each reagent on cell viability in human lung carcinoma A549 cells were small. However, Pluronic F-127, DPPC, Surfacten® and Tween 80 induced an increase of intracellular reactive oxygen species (ROS) level. Next, CNT-medium dispersions were prepared, using each reagent as a dispersant and applied to A549 cells. The cellular influences depended on the kind of dispersant. Cells exposed to CNT dispersion including Pluronic® F-127, Surfacten®, DPPC and Tween 80 showed LDH release to the culture supernatant. Induction of intracellular ROS level was observed in cells exposed to CNT dispersion including each reagent except BSA. These results suggest that the adsorbed dispersant reagents on the surface of the CNT affect its cellular influences, particularly the induction of oxidative stress.

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Year:  2013        PMID: 23343334     DOI: 10.3109/15376516.2012.755595

Source DB:  PubMed          Journal:  Toxicol Mech Methods        ISSN: 1537-6516            Impact factor:   2.987


  6 in total

1.  Size effects of single-walled carbon nanotubes on in vivo and in vitro pulmonary toxicity.

Authors:  Katsuhide Fujita; Makiko Fukuda; Shigehisa Endoh; Junko Maru; Haruhisa Kato; Ayako Nakamura; Naohide Shinohara; Kanako Uchino; Kazumasa Honda
Journal:  Inhal Toxicol       Date:  2015-04-13       Impact factor: 2.724

2.  Different aggregation and shape characteristics of carbon materials affect biological responses in RAW264 cells.

Authors:  Chika Kuroda; Katsuya Ueda; Hisao Haniu; Haruka Ishida; Satomi Okano; Takashi Takizawa; Atsushi Sobajima; Takayuki Kamanaka; Kazushige Yoshida; Masanori Okamoto; Tamotsu Tsukahara; Yoshikazu Matsuda; Kaoru Aoki; Hiroyuki Kato; Naoto Saito
Journal:  Int J Nanomedicine       Date:  2018-10-05

3.  Validation of the 2nd Generation Proteasome Inhibitor Oprozomib for Local Therapy of Pulmonary Fibrosis.

Authors:  Nora Semren; Nunja C Habel-Ungewitter; Isis E Fernandez; Melanie Königshoff; Oliver Eickelberg; Tobias Stöger; Silke Meiners
Journal:  PLoS One       Date:  2015-09-04       Impact factor: 3.240

4.  Facile production of nanocomposites of carbon nanotubes and polycaprolactone with high aspect ratios with potential applications in drug delivery.

Authors:  Edyta Niezabitowska; Jessica Smith; Mark R Prestly; Riaz Akhtar; Felix W von Aulock; Yan Lavallée; Hanene Ali-Boucetta; Tom O McDonald
Journal:  RSC Adv       Date:  2018-05-04       Impact factor: 4.036

5.  Carbon black nanoparticles induce cell necrosis through lysosomal membrane permeabilization and cause subsequent inflammatory response.

Authors:  Xia Yuan; Wen Nie; Zhiyao He; Jingyun Yang; Bin Shao; Xuelei Ma; Xiangxian Zhang; Zhenfei Bi; Lu Sun; Xiao Liang; Yan Tie; Yu Liu; Fei Mo; Dan Xie; Yuquan Wei; Xiawei Wei
Journal:  Theranostics       Date:  2020-03-15       Impact factor: 11.556

6.  Quantum mechanical studies of the adsorption of Remdesivir, as an effective drug for treatment of COVID-19, on the surface of pristine, COOH-functionalized and S-, Si- and Al- doped carbon nanotubes.

Authors:  Samaneh Bagheri Novir; Mohammad Reza Aram
Journal:  Physica E Low Dimens Syst Nanostruct       Date:  2021-02-04       Impact factor: 3.382

  6 in total

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