Ehab Seif, Gaser Ola A, Oyouni Atif Abdulwahab A, Kameli Nader, Alzahrani Faisal, Abdal Dayem Ahmed
Biomedical Sciences Program, University of Science and Technology, Zewail City of Science and Technology, Giza, Egypt.
Wake Forest Institute for Regenerative Medicine, Wake Forest School of Medicine, Winston Salem, USA.
Wiley Interdiscip Rev Nanomed Nanobiotechnol. 2025 Jul-Aug;17(4):e70031. doi: 10.1002/wnan.70031.
Arthritic diseases are a significant global health challenge, highlighting the urgent need for innovative therapeutic strategies. Extracellular vesicles (EVs) have emerged as promising candidates for treating various intractable diseases. This review explores the therapeutic potential of engineered EVs in joint diseases, particularly in comparison to their parental stem cells. Recent research underscores the efficacy of EVs in treating joint diseases, especially Osteoarthritis (OA). We discuss EV engineering strategies aimed at overcoming the limitations of natural EVs. Data from preclinical trials, clinical studies, and in vitro and in vivo reports are analyzed to evaluate the effectiveness of EVs in treating joint conditions. In addition to their role in intercellular communication, EVs influence various biological processes crucial for bone remodeling, cartilage regeneration, immunomodulation, and inflammation control. EVs are rich in vital biomolecules such as proteins, microRNAs (miRNA), lipids, and nucleic acids, which enhance their therapeutic potential compared to parental stem cells. This understanding is key to developing targeted and effective engineered EVs for OA and other joint diseases. A comprehensive grasp of EV engineering and underlying mechanisms will pave the way for novel and efficient therapies for arthritic diseases and related conditions. This article is categorized under: Implantable Materials and Surgical Technologies > Nanotechnology in Tissue Repair and Replacement Nanotechnology Approaches to Biology > Cells at the Nanoscale Biology-Inspired Nanomaterials > Peptide-Based Structures.
关节炎性疾病是一项重大的全球健康挑战,凸显了对创新治疗策略的迫切需求。细胞外囊泡(EVs)已成为治疗各种难治性疾病的有前景的候选者。本综述探讨了工程化细胞外囊泡在关节疾病中的治疗潜力,特别是与它们的亲代干细胞相比。最近的研究强调了细胞外囊泡在治疗关节疾病,尤其是骨关节炎(OA)方面的疗效。我们讨论了旨在克服天然细胞外囊泡局限性的工程化策略。分析了来自临床前试验、临床研究以及体外和体内报告的数据,以评估细胞外囊泡在治疗关节疾病方面的有效性。除了在细胞间通讯中的作用外,细胞外囊泡还影响对骨重塑、软骨再生、免疫调节和炎症控制至关重要的各种生物学过程。细胞外囊泡富含蛋白质、微小RNA(miRNA)、脂质和核酸等重要生物分子,与亲代干细胞相比,这增强了它们的治疗潜力。这种认识是开发针对骨关节炎和其他关节疾病的靶向且有效的工程化细胞外囊泡的关键。全面掌握细胞外囊泡工程及其潜在机制将为关节炎性疾病及相关病症的新型高效治疗铺平道路。本文分类如下:可植入材料与手术技术>组织修复与置换中的纳米技术;纳米技术在生物学中的应用>纳米尺度的细胞;仿生纳米材料>基于肽的结构。