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受软骨启发的自组装糖肽水凝胶通过清除活性氧实现软骨再生。

Cartilage-inspired self-assembly glycopeptide hydrogels for cartilage regeneration via ROS scavenging.

作者信息

Zhao Zhijian, Xia Xiaowei, Liu Junlin, Hou Mingzhuang, Liu Yang, Zhou Zhangzhe, Xu Yong, He Fan, Yang Huilin, Zhang Yijian, Ruan Changshun, Zhu Xuesong

机构信息

Department of Orthopaedics, The First Affiliated Hospital of Soochow University, Soochow University, Suzhou, 215006, China.

Orthopaedic Institute, Medical College, Soochow University, Suzhou, 215007, China.

出版信息

Bioact Mater. 2023 Oct 18;32:319-332. doi: 10.1016/j.bioactmat.2023.10.013. eCollection 2024 Feb.

Abstract

Cartilage injury represents a frequent dilemma in clinical practice owing to its inherently limited self-renewal capacity. Biomimetic strategy-based engineered biomaterial, capable of coordinated regulation for cellular and microenvironmental crosstalk, provides an adequate avenue to boost cartilage regeneration. The level of oxidative stress in microenvironments is verified to be vital for tissue regeneration, yet it is often overlooked in engineered biomaterials for cartilage regeneration. Herein, inspired by natural cartilage architecture, a fibril-network glycopeptide hydrogel (Nap-FFGRGD@FU), composed of marine-derived polysaccharide fucoidan (FU) and naphthalenephenylalanine-phenylalanine-glycine-arginine-glycine-aspartic peptide (Nap-FFGRGD), was presented through a simple supramolecular self-assembly approach. The Nap-FFGRGD@FU hydrogels exhibit a native cartilage-like architecture, characterized by interwoven collagen fibers and attached proteoglycans. Beyond structural simulation, fucoidan-exerted robust biological effects and Arg-Gly-Asp (RGD) sequence-provided cell attachment sites realized functional reinforcement, synergistically promoted extracellular matrix (ECM) production and reactive oxygen species (ROS) elimination, thus contributing to chondrocytes-ECM harmony. co-culture with glycopeptide hydrogels not only facilitated cartilage ECM anabolic metabolism but also scavenged ROS accumulation in chondrocytes. Mechanistically, the chondro-protective effects induced by glycopeptide hydrogels rely on the activation of endogenous antioxidant pathways associated with nuclear factor erythroid 2-related factor 2 (NRF2). implantation of glycopeptide hydrogels successfully improved the cartilage generation by 1.65-fold, concomitant with coordinately restructured subchondral bone structure. Collectively, our ingeniously crafted bionic glycopeptide hydrogels simultaneously rewired chondrocytes' function by augmenting anabolic metabolism and rebuilt ECM microenvironment via preserving redox equilibrium, holding great potential for cartilage tissue engineering.

摘要

由于软骨本身的自我更新能力有限,软骨损伤在临床实践中是一个常见的难题。基于仿生策略的工程生物材料能够协调调节细胞与微环境之间的相互作用,为促进软骨再生提供了一条可行的途径。微环境中的氧化应激水平对组织再生至关重要,但在用于软骨再生的工程生物材料中却常常被忽视。在此,受天然软骨结构的启发,通过简单的超分子自组装方法制备了一种由海洋来源的岩藻聚糖(FU)和萘基苯丙氨酸-苯丙氨酸-甘氨酸-精氨酸-甘氨酸-天冬氨酸肽(Nap-FFGRGD)组成的纤维网络糖肽水凝胶(Nap-FFGRGD@FU)。Nap-FFGRGD@FU水凝胶呈现出天然软骨样结构,其特征是交织的胶原纤维和附着的蛋白聚糖。除了结构模拟外,岩藻聚糖发挥的强大生物学效应和Arg-Gly-Asp(RGD)序列提供的细胞附着位点实现了功能强化,协同促进细胞外基质(ECM)生成和活性氧(ROS)清除,从而促进软骨细胞与ECM的协调。与糖肽水凝胶共培养不仅促进了软骨ECM的合成代谢,还清除了软骨细胞中ROS的积累。从机制上讲,糖肽水凝胶诱导的软骨保护作用依赖于与核因子红细胞2相关因子2(NRF2)相关的内源性抗氧化途径的激活。植入糖肽水凝胶成功地使软骨生成提高了1.65倍,同时伴随软骨下骨结构的协调重组。总的来说,我们精心设计的仿生糖肽水凝胶通过增强合成代谢同时重塑软骨细胞功能,并通过维持氧化还原平衡重建ECM微环境,在软骨组织工程中具有巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/78e4/10589380/b22fc7c232b1/ga1.jpg

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