TY - JOUR
T1 - Silk-Fabric Reinforced Silk for Artificial Bones
AU - Lu, Linlin
AU - Liu, Xuqing
AU - Sun, Yan
AU - Wang, Shujuan
AU - Liu, Jiantao
AU - Ge, Shengbo
AU - Wei, Tongxue
AU - Zhang, Haiyang
AU - Su, Jinhui
AU - Zhang, Yingying
AU - Fan, Wei
N1 - Publisher Copyright:
© 2024 Wiley-VCH GmbH.
PY - 2024/6/6
Y1 - 2024/6/6
N2 - Bone implants for different body parts require varying mechanical properties, dimensions, and biodegradability rates. Currently, it is still challenging to produce artificial bones with perfect compatibility with human bones. In this study, a silk-fabric reinforced silk material (SFS) composed of pure silk with exceptional biocompatibility, osteogenesis, and biodegradability is reported, and demonstrates its outstanding performance as a bone implant material. The SFS is fabricated using a simple hot-pressing technique, with degummed silk fabric as the reinforcement and silk fibroin as the matrix. The SFS as a self-reinforced composite, has exceptional mechanical properties due to the almost perfect interface between the matrix and reinforcement. More importantly, its mechanical properties, biodegradability rates, and density can be tailored by adjusting the reinforcement structure and the ratio of the reinforcement to the matrix to align with the requirements for bone implantation in different parts of the human body. Besides, the SFS can improve osteoblastic proliferation and increase osteogenic activity, which is not the case with clinically used titanium alloy artificial bone. Therefore, the SFS holds significant potential to replace conventional metal or ceramic implants in the field of medical fracture repair.
AB - Bone implants for different body parts require varying mechanical properties, dimensions, and biodegradability rates. Currently, it is still challenging to produce artificial bones with perfect compatibility with human bones. In this study, a silk-fabric reinforced silk material (SFS) composed of pure silk with exceptional biocompatibility, osteogenesis, and biodegradability is reported, and demonstrates its outstanding performance as a bone implant material. The SFS is fabricated using a simple hot-pressing technique, with degummed silk fabric as the reinforcement and silk fibroin as the matrix. The SFS as a self-reinforced composite, has exceptional mechanical properties due to the almost perfect interface between the matrix and reinforcement. More importantly, its mechanical properties, biodegradability rates, and density can be tailored by adjusting the reinforcement structure and the ratio of the reinforcement to the matrix to align with the requirements for bone implantation in different parts of the human body. Besides, the SFS can improve osteoblastic proliferation and increase osteogenic activity, which is not the case with clinically used titanium alloy artificial bone. Therefore, the SFS holds significant potential to replace conventional metal or ceramic implants in the field of medical fracture repair.
KW - artificial bones
KW - biocompatibility
KW - biodegradability
KW - silk self-reinforced composites
KW - tunable mechanical properties
UR - https://www.scopus.com/pages/publications/85186853357
U2 - 10.1002/adma.202308748
DO - 10.1002/adma.202308748
M3 - 文章
C2 - 38404231
AN - SCOPUS:85186853357
SN - 0935-9648
VL - 36
JO - Advanced Materials
JF - Advanced Materials
IS - 23
M1 - 2308748
ER -