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用于急性脊髓损伤修复中消除活性氧和抑制炎症的可生物降解且抗肿胀的基于肽的超分子水凝胶。

Biodegradable and anti-swelling peptide-based supermolecule hydrogel for eliminating ROS and inhibiting inflammation in acute spinal cord injury repair.

作者信息

Zhou Xiaolin, Guo Yanqiu, Gao Zhan, Lv Gan, Wang Xiangyang, Zhang Mengpei, Zhou Yunlong

机构信息

The Affiliated Xiangshan Hospital of Wenzhou Medical University, Ningbo 315700, China; Zhejiang Engineering Research Center for Tissue Repair Materials, Wenzhou Institute, University of Chinese Academy of Sciences, Wenzhou 325001, China.

Zhejiang Engineering Research Center for Tissue Repair Materials, Wenzhou Institute, University of Chinese Academy of Sciences, Wenzhou 325001, China.

出版信息

Acta Biomater. 2025 Aug 27. doi: 10.1016/j.actbio.2025.08.043.

Abstract

The treatment of spinal cord injury (SCI) presents a significant global medical challenge, as the difficulties associated with neuronal regeneration are compounded by elevated levels of reactive oxygen species (ROS) and an inflammatory microenvironment that ensues following SCI. Peptide-based supramolecular hydrogels exhibit robust advantages in repairing SCI due to their natural amino acid composition and biomimetic extracellular matrix characteristics following self-assembly. However, the potential for sequence designability remains underexplored, presenting an opportunity to develop highly bioactive peptide-based biomaterials. In this study, the tripeptide GHK, which is naturally present in human plasma, was incorporated into the peptide sequence (FFFGHK) to self-assembled to injectable, biodegradable and anti-swelling supramolecular hydrogel, and concurrently, endowed the supramolecular hydrogel with powerful antioxidant and anti-inflammatory functions. In vitro experiments demonstrated that FFFGHK supramolecular hydrogel was capable to eliminating ROS, inhibiting inflammatory response, saving cell apoptosis, accelerating the adhesion and proliferation of neurons, and promoting the differentiation of neural stem cells into neurons. It is noteworthy that the FFFGHK hydrogel exhibits a promising therapeutic effect in the treatment of SCI in rats. This has been shown to significantly enhance the recovery of autonomic motor functions and signal transduction, as well as promote neuronal regeneration at the SCI site in these animals. This work presents a single-component peptide self-assembled supermolecular hydrogel system, incorporating the bioactive peptide GHK in conjunction with phenylalanine. It offers critical insights into the design of peptide-based supermolecular hydrogels for bioactive applications. STATEMENT OF SIGNIFICANCE.

摘要

脊髓损伤(SCI)的治疗是一项重大的全球医学挑战,因为与神经元再生相关的困难因活性氧(ROS)水平升高以及SCI后随之而来的炎症微环境而更加复杂。基于肽的超分子水凝胶由于其天然氨基酸组成和自组装后的仿生细胞外基质特性,在修复SCI方面具有显著优势。然而,序列可设计性的潜力仍未得到充分探索,这为开发具有高生物活性的基于肽的生物材料提供了机会。在本研究中,将天然存在于人体血浆中的三肽GHK纳入肽序列(FFFGHK)中,以自组装成可注射、可生物降解和抗肿胀的超分子水凝胶,同时赋予超分子水凝胶强大的抗氧化和抗炎功能。体外实验表明,FFFGHK超分子水凝胶能够清除ROS、抑制炎症反应、挽救细胞凋亡、加速神经元的黏附和增殖,并促进神经干细胞向神经元分化。值得注意的是,FFFGHK水凝胶在大鼠SCI治疗中显示出有前景的治疗效果。这已被证明能显著增强自主运动功能和信号转导的恢复,并促进这些动物SCI部位的神经元再生。这项工作提出了一种单组分肽自组装超分子水凝胶系统,将生物活性肽GHK与苯丙氨酸结合。它为用于生物活性应用的基于肽的超分子水凝胶的设计提供了关键见解。重要性声明。

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