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基于电纺碳纳米管的支架在组织工程应用中表现出高导电性和细胞相容性。

Electrospun Carbon Nanotube-Based Scaffolds Exhibit High Conductivity and Cytocompatibility for Tissue Engineering Applications.

作者信息

Suh Taylor C, Twiddy Jack, Mahmood Nasif, Ali Kiran M, Lubna Mostakima M, Bradford Philip D, Daniele Michael A, Gluck Jessica M

机构信息

Department of Textile Engineering, Chemistry, and Science, North Carolina State University, Raleigh, North Carolina 27606, United States.

Joint Department of Biomedical Engineering, North Carolina State University and The University of North Carolina at Chapel Hill, Raleigh, North Carolina 27606, United States.

出版信息

ACS Omega. 2022 Jun 2;7(23):20006-20019. doi: 10.1021/acsomega.2c01807. eCollection 2022 Jun 14.

Abstract

Carbon nanotubes (CNTs) are known for their excellent conductive properties. Here, we present two novel methods, "sandwich" (sCNT) and dual deposition (DD CNT), for incorporating CNTs into electrospun polycaprolactone (PCL) and gelatin scaffolds to increase their conductance. Based on CNT percentage, the DD CNT scaffolds contain significantly higher quantities of CNTs than the sCNT scaffolds. The inclusion of CNTs increased the electrical conductance of scaffolds from 0.0 ± 0.00 kS (non-CNT) to 0.54 ± 0.10 kS (sCNT) and 5.22 ± 0.49 kS (DD CNT) when measured parallel to CNT arrays and to 0.25 ± 0.003 kS (sCNT) and 2.85 ± 1.12 (DD CNT) when measured orthogonally to CNT arrays. The inclusion of CNTs increased fiber diameter and pore size, promoting cellular migration into the scaffolds. CNT inclusion also decreased the degradation rate and increased hydrophobicity of scaffolds. Additionally, CNT inclusion increased Young's modulus and failure load of scaffolds, increasing their mechanical robustness. Murine fibroblasts were maintained on the scaffolds for 30 days, demonstrating high cytocompatibility. The increased conductivity and high cytocompatibility of the CNT-incorporated scaffolds make them appropriate candidates for future use in cardiac and neural tissue engineering.

摘要

碳纳米管(CNTs)以其优异的导电性能而闻名。在此,我们提出了两种将碳纳米管纳入电纺聚己内酯(PCL)和明胶支架以提高其导电性的新方法,即“三明治”法(sCNT)和双沉积法(DD CNT)。基于碳纳米管的百分比,DD CNT支架所含的碳纳米管数量明显高于sCNT支架。当与碳纳米管阵列平行测量时,碳纳米管的加入使支架的电导率从0.0±0.00 kS(无碳纳米管)提高到0.54±0.10 kS(sCNT)和5.22±0.49 kS(DD CNT);当与碳纳米管阵列正交测量时,电导率提高到0.25±0.003 kS(sCNT)和2.85±1.12(DD CNT)。碳纳米管的加入增加了纤维直径和孔径,促进了细胞向支架内迁移。碳纳米管的加入还降低了支架的降解速率并增加了其疏水性。此外,碳纳米管的加入提高了支架的杨氏模量和破坏载荷,增强了其机械强度。小鼠成纤维细胞在支架上培养30天,显示出高细胞相容性。含碳纳米管支架导电性的提高和高细胞相容性使其成为未来用于心脏和神经组织工程的合适候选材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fce5/9202252/24fa0d44e3b5/ao2c01807_0002.jpg

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