3D Printed Polycaprolactone/Phosphoester-Modified Poly (amino acids)-Graphene Oxide Scaffold for Meniscal Regeneration

Abstract

Given the limited blood supply that results in the meniscus's poor self-healing ability, meniscal tissue engineering (MTE) scaffolds have emerged as an effective strategy for the treatment of meniscal injuries. However, the efficacy of mesenchymal stem cells (MSCs) is limited in the inflammatory state caused by chronic injuries, making it challenging for existing meniscal implants to promote meniscal regeneration and delay articular cartilage degeneration in an inflammatory environment. This study introduces a method to incorporate phosphoester (PE) units into the main chain of poly (amino acids) (PAAs) through ring-opening copolymerization, subsequently creating a copolymer with graphene oxide (GO) to yield phosphoester-modified poly (amino acids)-graphene oxide (P-P-GO). PCL/P-P-GO scaffolds were fabricated by blending P-P-GO with polycaprolactone (PCL) and employing 3D printing technology. The PAAs of P-P-GO scaffold provide a nutritious environment essential for MSC proliferation, migration, and differentiation, while the PE enhance the cell adhesion properties, with further improvements by GO. In vitro experiments have shown that the PCL/P-P-GO scaffold upregulates the expression of chondrogenic-specific genes and increase the production of collagen and glycosaminoglycans. Additionally, γ-aminobutyric acid of the scaffolds can suppress the secretion of inflammatory factors, induce M2 polarization of macrophages, and promote angiogenesis. In vivo studies using rabbit meniscectomy model have demonstrated that PCL/P-P-GO scaffolds can promote meniscal tissue regeneration and delay cartilage degeneration. After six months of implantation, the regenerated meniscus exhibited a structure and composition resembling natural meniscus, and the progression of osteoarthritis was significantly slowed. Compared to traditional cell-loaded scaffold strategy, PCL/P-P-GO scaffolds are easy to produce, cost-effective, and hold broad translational potential for the clinical treatment of meniscal injuries.

Supplementary files

Article information

Article type
Paper
Submitted
03 Jan 2025
Accepted
26 Mar 2025
First published
27 Mar 2025

J. Mater. Chem. B, 2025, Accepted Manuscript

3D Printed Polycaprolactone/Phosphoester-Modified Poly (amino acids)-Graphene Oxide Scaffold for Meniscal Regeneration

Z. Yu, F. Xing, J. Li, W. Zhang, H. Duan, J. Li and Y. Xiong, J. Mater. Chem. B, 2025, Accepted Manuscript , DOI: 10.1039/D5TB00012B

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