4.7 Article

Modulating the Biomechanical Properties of Engineered Connective Tissues by Chitosan-Coated Multiwall Carbon Nanotubes

期刊

INTERNATIONAL JOURNAL OF NANOMEDICINE
卷 16, 期 -, 页码 989-1000

出版社

DOVE MEDICAL PRESS LTD
DOI: 10.2147/IJN.S289107

关键词

engineered connective tissue; multiwall carbon nanotubes; chitosan; mechanical properties; collagen-based tissue scaffold

资金

  1. Palestinian Ministry of Higher Education [ANNU-MoHE-1819-Sc010]
  2. Deanship of Scientific Research at An-Najah National University [ANNU-1920-Sc016]
  3. German Academic Exchange Service (DAAD)
  4. German Research Foundation (DFG) [IRTG 1816, CRC 1002]
  5. Higher Education Commission of Pakistan
  6. German Center for Cardiovascular Research (DZHK)
  7. Leducq Foundation

向作者/读者索取更多资源

The study showed that reinforcement of ECT using C-MWCNT can enhance the biophysical properties of the tissue, including increased stiffness, reduced contraction, improved elasticity and extensibility, as well as higher resilience and toughness compared to control tissues.
Background: Under certain conditions, the physiological repair of connective tissues might fail to restore the original structure and function. Optimized engineered connective tissues (ECTs) with biophysical properties adapted to the target tissue could be used as a substitution therapy. This study aimed to investigate the effect of ECT enforcement by a complex of multiwall carbon nanotubes with chitosan (C-MWCNT) to meet in vivo demands. Materials and Methods: ECTs were constructed from human foreskin fibroblasts (HFF-1) in collagen type I and enriched with the three different percentages 0.025, 0.05 and 0.1% of C-MWCNT. Characterization of the physical properties was performed by biomechanical studies using unidirectional strain. Results: Supplementation with 0.025% C-MWCNT moderately increased the tissue stiffness, reflected by Young's modulus, compared to tissues without C-MWCNT. Supplementation of ECTs with 0.1% C-MWCNT reduced tissue contraction and increased the elasticity and the extensibility, reflected by the yield point and ultimate strain, respectively. Consequently, the ECTs with 0.1% C-MWCNT showed a higher resilience and toughness as control tissues. Fluorescence tissue imaging demonstrated the longitudinal alignment of all cells independent of the condition. Conclusion: Supplementation with C-MWCNT can enhance the biophysical properties of ECTs, which could be advantageous for applications in connective tissue repair.

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