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具有抗粘连能力的氧化石墨烯功能化双层补片治疗腹壁缺损
Authors Liu J, Hou J, Liu S, Li J, Zhou M, Sun J, Wang R
Received 23 March 2021
Accepted for publication 21 May 2021
Published 3 June 2021 Volume 2021:16 Pages 3803—3818
DOI https://doi.org/10.2147/IJN.S312074
Checked for plagiarism Yes
Review by Single anonymous peer review
Peer reviewer comments 2
Editor who approved publication: Professor Dongwoo Khang
Background: Effective repair of full-thickness abdominal wall defects requires a patch with sufficient mechanical strength and anti-adhesion characteristics to avoid the formation of hernias and intra-abdominal complications such as intestinal obstruction and fistula. However, patches made from polymers or bio-derived materials may not meet these requirements and lack the bionic characteristics of the abdominal wall.
Materials and Methods: In this study, we report a consecutive electrospun method for preparing a double-layer structured nanofiber membrane (GO-PCL/CS-PCL) using polycaprolactone (PCL), graphene oxide (GO) and chitosan (CS). To expand the bio-functions (angiogenesis/reducing reactive oxygen species) of the patch (GO-PCL/NAC-CS-PCL), N-acetylcysteine (NAC) was loaded for the repair of full-thickness abdominal wall defects (2× 1.5cm) in rat model.
Results: The double-layered patch (GO-PCL/NAC-CS-PCL) showed excellent mechanical strength and biocompatibility. After 2 months, rats treated with the patch exhibited the desired repair effect with no hernia formation, less adhesion (adhesion score: 1.50± 0.50, P< 0.001) and more collagen deposition (percentage of collagen deposition: 34.94%± 3.31%, P< 0.001).
Conclusion: The double-layered nanomembranes presented in this study have good anti-hernia and anti-adhesion effects, as well as improve the microenvironment in vivo. It, therefore, holds good prospects for the repair of abdominal wall defects and provides a promising key as a postoperative anti-adhesion agent.
Keywords: abdominal wall defects, graphene oxide, chitosan, N-acetylcysteine, double layer, electrospinning