Li Zuhao, Liu Jinlong, Song Jian, Yin Zhifeng, Zhou Fengjin, Shen Hao, Wang Guangchao, Su Jiacan
Department of Orthopedics, Xinhua Hospital Affiliated to Shanghai Jiao Tong University School of Medicine, Shanghai, China.
Organoid Research Center, Institute of Translational Medicine, Shanghai University, Shanghai, China.
Theranostics. 2024 Jul 8;14(11):4198-4217. doi: 10.7150/thno.97317. eCollection 2024.
The utilization of extracellular vesicles (EVs) in wound healing has been well-documented. However, the direct administration of free EVs via subcutaneous injection at wound sites may result in the rapid dissipation of bioactive components and diminished therapeutic efficacy. Functionalized hydrogels provide effective protection, as well as ensure the sustained release and bioactivity of EVs during the wound healing process, making them an ideal candidate material for delivering EVs. In this review, we introduce the mechanisms by which EVs accelerate wound healing, and then elaborate on the construction strategies for engineered EVs. Subsequently, we discuss the synthesis strategies and application of hydrogels as delivery systems for the sustained release of EVs to enhance complicated wound healing. Furthermore, in the face of complicated wounds, functionalized hydrogels with specific wound microenvironment regulation capabilities, such as antimicrobial, anti-inflammatory, and immune regulation, used for loading engineered EVs, provide potential approaches to addressing these healing challenges. Ultimately, we deliberate on potential future trajectories and outlooks, offering a fresh viewpoint on the advancement of artificial intelligence (AI)-energized materials and 3D bio-printed multifunctional hydrogel-based engineered EVs delivery dressings for biomedical applications.
细胞外囊泡(EVs)在伤口愈合中的应用已有充分记录。然而,通过在伤口部位皮下注射游离EVs进行直接给药可能会导致生物活性成分迅速消散,治疗效果降低。功能化水凝胶提供了有效的保护,并确保EVs在伤口愈合过程中持续释放并保持生物活性,使其成为递送EVs的理想候选材料。在本综述中,我们介绍了EVs加速伤口愈合的机制,然后详细阐述了工程化EVs的构建策略。随后,我们讨论了水凝胶作为EVs持续释放递送系统的合成策略及应用,以促进复杂伤口愈合。此外,面对复杂伤口,具有特定伤口微环境调节能力(如抗菌、抗炎和免疫调节)的功能化水凝胶用于装载工程化EVs,为应对这些愈合挑战提供了潜在方法。最后,我们思考了未来潜在的发展方向和前景,为用于生物医学应用的人工智能(AI)驱动材料和基于3D生物打印多功能水凝胶的工程化EVs递送敷料的进展提供了新的视角。