Exosomes and tissue engineering: A novel therapeutic strategy for nerve regenerative

IF 2.5 4区 生物学 Q1 ANATOMY & MORPHOLOGY Tissue & cell Pub Date : 2025-04-01 Epub Date: 2024-12-12 DOI:10.1016/j.tice.2024.102676
Azadeh Nochalabadi , Mozafar Khazaei , Leila Rezakhani
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Abstract

Damage to nerves negatively impacts quality of life and causes considerable morbidity. Self-regeneration is a special characteristic of the nervous system, yet how successful regeneration is accomplished remains unclear. Research on nerve regeneration is advancing and accelerating successful nerve recovery with potential new approaches. Eukaryote cells release extracellular vesicles (EVs), which control intercellular communication in both health and disease. More and more, EVs such as microvesicles and exosomes (EXOs) are being recognized as viable options for cell-free therapies that address complex tissue regeneration. The present study highlights the functional relevance of EVs in regenerative medicine for nerve-related regeneration. A subclass of EVs, EXOs were first identified as a way for cells to expel undesirable cell products. These nanovesicles have a diameter of 30–150 nm and are secreted by a variety of cells in conditions of both health and illness. Their benefits include the ability to promote endothelial cell growth, inhibit inflammation, encourage cell proliferation, and regulate cell differentiation. They are also known to transport functional proteins, metabolites, and nucleic acids to recipient cells, thus playing a significant role in cellular communication. EXOs impact an extensive array of physiological functions, including immunological responses, tissue regeneration, stem cell conservation, communication within the central nervous system, and pathological processes involving cardiovascular disorders, neurodegeneration, cancer, and inflammation. Their biocompatibility and bi-layered lipid structure (which shields the genetic consignment from deterioration and reduces immunogenicity) make them appealing as therapeutic vectors. They can pass through the blood brain barrier and other major biological membranes because of their small size and membrane composition. The creation of modified EXOs is a dynamic area of research that supports the evaluation of diverse therapeutic freights, improvement of target selectivity, and manufacturing optimization.
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外泌体和组织工程:神经再生的新治疗策略。
神经损伤对生活质量产生负面影响,并引起相当大的发病率。自我再生是神经系统的一个特殊特征,然而成功的再生是如何完成的尚不清楚。神经再生的研究正在不断推进,并以潜在的新方法加速成功的神经恢复。真核细胞释放细胞外囊泡(EVs),控制健康和疾病中的细胞间通讯。越来越多的人认为,微囊泡和外泌体(EXOs)等ev是解决复杂组织再生问题的无细胞治疗的可行选择。本研究强调了ev在再生医学中与神经相关再生的功能相关性。exo是ev的一个亚类,最初被发现是细胞排出不需要的细胞产物的一种方式。这些纳米囊泡的直径为30-150 纳米,在健康和疾病的情况下由多种细胞分泌。它们的益处包括促进内皮细胞生长、抑制炎症、促进细胞增殖和调节细胞分化。它们还可以将功能蛋白、代谢物和核酸转运到受体细胞,因此在细胞通讯中起着重要作用。exo影响一系列广泛的生理功能,包括免疫反应、组织再生、干细胞保存、中枢神经系统内的通讯以及涉及心血管疾病、神经变性、癌症和炎症的病理过程。它们的生物相容性和双层脂质结构(保护遗传寄存物不变质并降低免疫原性)使它们成为有吸引力的治疗载体。由于它们的小尺寸和膜组成,它们可以穿过血脑屏障和其他主要的生物膜。修饰exo的创建是一个动态的研究领域,它支持评估不同的治疗货物,改善靶标选择性和制造优化。
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来源期刊
Tissue & cell
Tissue & cell 医学-解剖学与形态学
CiteScore
3.90
自引率
0.00%
发文量
234
期刊介绍: Tissue and Cell is devoted to original research on the organization of cells, subcellular and extracellular components at all levels, including the grouping and interrelations of cells in tissues and organs. The journal encourages submission of ultrastructural studies that provide novel insights into structure, function and physiology of cells and tissues, in health and disease. Bioengineering and stem cells studies focused on the description of morphological and/or histological data are also welcomed. Studies investigating the effect of compounds and/or substances on structure of cells and tissues are generally outside the scope of this journal. For consideration, studies should contain a clear rationale on the use of (a) given substance(s), have a compelling morphological and structural focus and present novel incremental findings from previous literature.
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