4.8 Article

Biocompatibility studies of macroscopic fibers made from carbon nanotubes: Implications for carbon nanotube macrostructures in biomedical applications

期刊

CARBON
卷 173, 期 -, 页码 462-476

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.carbon.2020.10.077

关键词

Carbon nanotubes; Fibers; Bioelectrics; Biocompatibility; Immune cells

资金

  1. Air Force Office of Scientific Research [FA9550-15-01-0370]
  2. European Union's Horizon 2020 research and innovation program under the Marie Sklodowska-Curie grant [734381]
  3. American Heart Association [15CSA24460004, AHA18POST34060251]
  4. Robert A. Welch Foundation [C-1668]
  5. Department of Defense through the National Defense Science & Engineering Graduate Fellowship (NDSEG) Program
  6. Rice Chemical & Biomolecular Engineering Department

向作者/读者索取更多资源

The macroscopic carbon nanotube fiber (CNTF) has been shown to have good cytocompatibility with various cell lines and immune compatibility in tests conducted at cellular, organ, and systemic levels. These findings suggest that CNTF production does not result in any toxic byproducts, and macroscopic carbon nanotube structures should be evaluated separately from individualized CNTs and unstructured CNT aggregates for toxicological assessments.
Macroscopic carbon nanotube fiber (CNTF) is a continuous monofilament microns-thick thread whose cross section consists of ten to hundreds of millions of tightly packed, aligned carbon nanotubes (CNTs). CNTF is flexible, strong, conductive, and has excellent electrochemical properties, making it an ideal candidate for bioelectronic interfaces. CNTF recent applications range from neuroelectronics and cardiac electrophysiology to biosensors. However, various reports on CNT toxicity have generated confusion on the biosafety of all CNT-based materials despite significant differences among individualized CNTs, unstructured CNT aggregates, and stable CNT macrostructures in compositions and morphologies. Here, the bio- and immune-compatibility profiles of CNTF are systematically evaluated at cellular, organ, and systemic levels. In vitro, CNTF shows good cytocompatibility with cell-lines like HEK-293, SH-SY5Y, as well as primary cardiomyocytes and macrophages. Ex vivo, CNTF shows no impact on blood parameters or functionality of key immune cells. In vivo, intraperitoneal injections of leachates from CNTF production reveal no evidence of toxicity suggesting no leachable or residual degradable byproducts. In addition, as the first multiscale toxicological evaluation of a CNT macrostructure, this report demonstrates that CNT macrostructures should be evaluated as their standalone class of carbon material, separately from individualized CNTs and unstructured CNT agglomerates. (C) 2020 Published by Elsevier Ltd.

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