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用于周围神经修复的多壁碳纳米管-聚甲基丙烯酸羟乙酯复合导管

Multiwalled CNT-pHEMA composite conduit for peripheral nerve repair.

作者信息

Arslantunali D, Budak G, Hasirci V

机构信息

BIOMATEN, METU Center of Excellence in Biomaterials and Tissue Engineering, Ankara, Turkey; Department of Biotechnology, METU, Ankara, Turkey; Department of Bioengineering, Gümüşhane University, Gümüşhane, Turkey.

出版信息

J Biomed Mater Res A. 2014 Mar;102(3):828-41. doi: 10.1002/jbm.a.34727. Epub 2013 Jun 12.

DOI:10.1002/jbm.a.34727
PMID:23554154
Abstract

A nerve conduit is designed to improve peripheral nerve regeneration by providing guidance to the nerve cells. Conductivity of such guides is reported to enhance this process. In the current study, a nerve guide was constructed from poly(2-hydroxyethyl methacrylate) (pHEMA), which was loaded with multiwalled carbon nanotubes (mwCNT) to introduce conductivity. PHEMA hydrogels were designed to have a porous structure to facilitate the transportation of the compounds needed for cell nutrition and growth and also for waste removal. We showed that when loaded with relatively high concentrations of mwCNTs (6%, w/w in hydrogels), the pHEMA guide was more conductive and more hydrophobic than pristine pHEMA hydrogel. The mechanical properties of the composites were better when they carried mwCNT. Elastic modulus of 6% mwCNT loaded pHEMA was twofold higher (0.32 ± 0.06 MPa) and similar to that of the soft tissues. Electrical conductivity was significantly improved (11.4-fold) from 7 × 10(-3) Ω(-1).cm(-1) (pHEMA) to 8.0 × 10(-2) Ω(-1).cm(-1) (6% mwCNT loaded pHEMA). On application of electrical potential, the SHSY5Y neuroblastoma cells seeded on mwCNTs carrying pHEMA maintained their viability, whereas those on pure pHEMA could not, indicating that mwCNT helped conduct electricity and make them more suitable as nerve conduits.

摘要

神经导管旨在通过为神经细胞提供引导来促进周围神经再生。据报道,这种导管的导电性可增强这一过程。在本研究中,用负载有多壁碳纳米管(mwCNT)以引入导电性的聚(甲基丙烯酸2-羟乙酯)(pHEMA)构建了一种神经导管。设计PHEMA水凝胶具有多孔结构,以促进细胞营养和生长所需化合物的运输以及废物清除。我们发现,当负载相对高浓度的mwCNT(水凝胶中为6%,w/w)时,pHEMA导管比原始pHEMA水凝胶导电性更强且疏水性更高。当复合材料负载mwCNT时,其力学性能更好。负载6% mwCNT的pHEMA的弹性模量高出两倍(0.32±0.06 MPa),与软组织的弹性模量相似。电导率从7×10(-3) Ω(-1).cm(-1)(pHEMA)显著提高(11.4倍)至8.0×10(-2) Ω(-1).cm(-1)(负载6% mwCNT的pHEMA)。施加电势时,接种在负载mwCNT的pHEMA上的SHSY5Y神经母细胞瘤细胞保持其活力,而接种在纯pHEMA上的细胞则不能,这表明mwCNT有助于导电,使其更适合作为神经导管。

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