Encapsulation of AD-MSC- derived extracellular nanovesicles in an electrospun three-layer scaffold: characterization and controlled release analysis in vitro.

Raziyeh Ghorbani, Hojjat Allah Abbaszadeh, Reihaneh Ramezani, Niloofar Taghipour, Azam Rahimpour, Simzar Hosseinzadeh
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Abstract

The combining of therapeutic agents with electrospun nanofibers boosts their regeneration potential; therefore, Researchers have increasingly turned towards the development of electrospun nanofiber scaffolds to encapsulate or surface-adsorb biological payloads, such as cytokines, exosomes, peptides, nucleic acids, and enzymes. Due to their high surface-to-volume ratio, ease of manufacturing, and drug-loading capacity, electrospun nanofibers are hopeful in tissue engineering and scaffold fabrication. Electrospun multilayer scaffolds offer a promising construction for preserving the integrity and bioactivity of therapeutic factors while permitting the controlled and prolonged release of biomolecules into the environment. The present study aimed to evaluate the mechanism of controlled release of electrospun exosomes from a three-layer nanofiber scaffold and its effect on the expression of DDR2 and VEGF genes in fibroblast cells in vitro. Adipose-Derived Mesenchymal Stem Cells (AD-MSCs) were obtained and isolated from liposuction surgery samples, and their intrinsic nature was confirmed using flow cytometry. After the exosomes were separated from the cell supernatant, their size, shape, and index markers were identified. The cytotoxicity, biocompatibility, and mechanical characteristics of scaffolds were evaluated. The qRT-PCR results showed the upregulation of DDR2 and VEGF genes in the three-layer scaffold containing the exosomes was 2.04 and 1.47-fold compared to the control group. The design and construction of multi-layered electrospun nanofibers loaded with bioactive substances and favorable mechanical and biological properties for controlled and sustained release will be promising and effective scaffolds for therapeutic purposes.

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三层电纺丝支架中AD-MSC衍生的细胞外纳米囊泡的包封:表征和体外控释分析。
治疗剂与电纺纳米纤维的结合增强了其再生潜力;因此,研究人员越来越多地转向开发电纺纳米纤维支架,以封装或表面吸附生物有效载荷,如细胞因子、外泌体、肽、核酸和酶。由于其高表面体积比、易于制造和载药能力,电纺纳米纤维在组织工程和支架制造中具有很大的应用前景。电纺丝多层支架在保证治疗因子的完整性和生物活性的同时,允许生物分子在环境中被控制和延长释放,是一种很有前途的结构。本研究旨在探讨三层纳米纤维支架控释电纺丝外泌体的机制及其对体外成纤维细胞DDR2和VEGF基因表达的影响。从吸脂手术样本中获得并分离脂肪源性间充质干细胞(AD-MSCs),并利用流式细胞术证实其内在性质。将外泌体从细胞上清中分离后,鉴定其大小、形状和指标标记。对支架的细胞毒性、生物相容性和力学特性进行了评价。qRT-PCR结果显示,与对照组相比,含有外泌体的三层支架中DDR2和VEGF基因上调幅度分别为2.04和1.47倍。多层静电纺丝纳米纤维的设计和构建具有良好的机械和生物性能,具有控释和缓释的生物活性物质,是一种有前景和有效的治疗用支架材料。
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