Binding of blood proteins to carbon nanotubes reduces cytotoxicity

Связывание белков крови с углеродными нанотрубками снижает цитотоксичность
Cuicui Ge, Jiangfeng Du, Lina Zhao, Liming Wang, Ying Liu, Denghua Li, Yanlian Yang, Ruhong Zhou, Yuliang Zhao, Zhifang Chai, Chunying Chen
2011-10-03

competitive protein bindingcytotoxicity assayshuman serum proteinssingle-wall carbon nanotubesπ-π stacking interactions
With the potential wide uses of nanoparticles such as carbon nanotubes in biomedical applications, and the growing concerns of nanotoxicity of these engineered nanoparticles, the importance of nanoparticle-protein interactions cannot be stressed enough. In this study, we use both experimental and theoretical approaches, including atomic force microscope images, fluorescence spectroscopy, CD, SDS-PAGE, and molecular dynamics simulations, to investigate the interactions of single-wall carbon nanotubes (SWCNTs) with human serum proteins, and find a competitive binding of these proteins with different adsorption capacity and packing modes. The π-π stacking interactions between SWCNTs and aromatic residues (Trp, Phe, Tyr) are found to play a critical role in determining their adsorption capacity. Additional cellular cytotoxicity assays, with human acute monocytic leukemia cell line and human umbilical vein endothelial cells, reveal that the competitive bindings of blood proteins on the SWCNT surface can greatly alter their cellular interaction pathways and result in much reduced cytotoxicity for these protein-coated SWCNTs, according to their respective adsorption capacity. These findings have shed light toward the design of safe carbon nanotube nanomaterials by comprehensive preconsideration of their interactions with human serum proteins.
1
Human serum proteins competitively bind to single-wall carbon nanotubes with distinct adsorption capacities and packing modes.
2
Protein binding changes the cellular interaction pathways of single-wall carbon nanotubes in leukemia and endothelial cells.
3
Protein-coated carbon nanotubes exhibit greatly reduced cytotoxicity, with the reduction depending on their protein adsorption capacity.
4
Understanding serum-protein adsorption can guide safer carbon-nanotube nanomaterial design.
5
π–π stacking between carbon nanotubes and aromatic residues—tryptophan, phenylalanine, and tyrosine—critically determines protein adsorption capacity.

Single-wall carbon nanotubes (SWCNTs) interacting with human serum proteins and human cells

Competitive protein binding, adsorption capacity and packing modes on SWCNTs, and their effects on cellular interaction pathways and cytotoxicity

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2011-10-03
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Cuicui Ge
Jiangfeng Du
Lina Zhao
Liming Wang
Ying Liu
Denghua Li
Yanlian Yang
Ruhong Zhou
Yuliang Zhao
Zhifang Chai
Chunying Chen
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