4.7 Article

Robust Nanofiber Mats Exfoliated From Tussah Silk for Potential Biomedical Applications

出版社

FRONTIERS MEDIA SA
DOI: 10.3389/fbioe.2021.746016

关键词

tussah silk; nanofiber; nonwoven mats; mechanical properties; biocompatibility

资金

  1. Open Research Fund of the Key Laboratory of Biotherapy, West China Hospital, West China Medicine School, Sichuan University [SKLB202012]
  2. Key Talents Program of Medical Applications of Nuclear Technology [XKTJ-HRC2021005]
  3. Natural Science Foundation of Jiangsu Province [BK20200208]
  4. Project of State Key Laboratory of Radiation Medicine and Protection, Soochow University [GZK1202113]
  5. Pre-Research Fund Project of the Second Affiliated Hospital of Soochow University [SDFEYBS1801]

向作者/读者索取更多资源

Nanofibers derived from tussah silk were prepared and studied for tissue engineering applications, showing that treatment time affects the morphology, structure, and mechanical properties of the nanofiber mats. The nanofiber mats exhibited excellent mechanical properties, with higher breaking strength as the fiber diameter decreased.
Nanofibers as elements for bioscaffolds are pushing the development of tissue engineering. In this study, tussah silk was mechanically disintegrated into nanofibers dispersed in aqueous solution which was cast to generate tussah silk fibroin (TSF) nanofiber mats. The effect of treatment time on the morphology, structure, and mechanical properties of nanofiber mats was examined. SEM indicated decreasing diameter of the nanofiber with shearing time, and the diameter of the nanofiber was 139.7 nm after 30 min treatment. These nanofiber mats exhibited excellent mechanical properties; the breaking strength increased from 26.31 to 72.68 MPa with the decrease of fiber diameter from 196.5 to 139.7 nm. The particulate debris was observed on protease XIV degraded nanofiber mats, and the weight loss was greater than 10% after 30 days in vitro degradation. The cell compatibility experiment confirmed adhesion and spreading of NIH-3T3 cells and enhanced cell proliferation on TSF nanofiber mats compared to that on Bombyx mori silk nanofiber mats. In conclusion, results indicate that TSF nanofiber mats prepared in this study are mechanically robust, slow biodegradable, and biocompatible materials, and have promising application in regenerative medicine.

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