与外泌体一起旋转:电纺纳米纤维在组织再生中有效靶向干细胞衍生的外泌体。

IF 3.9 3区 医学 Q2 ENGINEERING, BIOMEDICAL Biomedical materials Pub Date : 2024-04-09 DOI:10.1088/1748-605X/ad3cab
Ritu Raj, Parinita Agrawal, Utkarsh Bhutani, T. Bhowmick, Arun Chandru
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引用次数: 0

摘要

电纺丝技术利用电场将聚合物溶液转化为纳米级纤维,可用于各种生物医学和临床应用。细胞外囊泡(EVs)是源自细胞的小型脂质囊泡,富含生物货物(蛋白质和核酸),具有潜在的治疗用途。在这篇综述中,我们讨论了通过将干细胞衍生的EV(特别是外泌体)纳入纳米纤维来扩展电纺丝的范围,从而将其有效输送到目标组织。生物聚合物电纺丝过程中使用的参数限制了细胞产品的稳定性和功能特性。不过,只要仔细考虑工艺要求,这些参数就能显著提高稳定性,从而延长寿命、提高功效、实现持续和局部释放。众所周知,电纺纳米纤维可以封装或表面吸附生物载荷,如治疗性 EV、蛋白质、酶和核酸。小的 EVs,特别是外泌体,由于其广泛的分布和作为治疗剂的巨大潜力,最近吸引了从事再生和组织工程研究人员的注意。这篇综述重点介绍了目前纳米纤维在递送治疗货物分子方面的发展,并特别强调了外泌体。它还提出了一些前瞻性的方法,这些方法可以安全地将这两种纳米级系统结合起来,成倍地提高它们在组织工程、医疗设备涂层和药物输送应用中的效益。
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Spinning with exosomes: electrospun nanofibers for efficient targeting of stem cell-derived exosomes in tissue regeneration.
Electrospinning technique converts polymeric solutions into nanoscale fibers using an electric field and can be used for various biomedical and clinical applications. Extracellular vesicles (EVs) are cell-derived small lipid vesicles enriched with biological cargo (proteins and nucleic acids) potential therapeutic applications. In this review, we discuss extending the scope of electrospinning by incorporating stem cell-derived EVs, particularly exosomes, into nanofibers for their effective delivery to target tissues. The parameters used during the electrospinning of biopolymers limit the stability and functional properties of cellular products. However, with careful consideration of process requirements, these can significantly improve stability, leading to longevity, effectiveness, and sustained and localized release. Electrospun nanofibers are known to encapsulate or surface-adsorb biological payloads such as therapeutic EVs, proteins, enzymes, and nucleic acids. Small EVs, specifically exosomes, have recently attracted the attention of researchers working on regeneration and tissue engineering because of their broad distribution and enormous potential as therapeutic agents. This review focuses on current developments in nanofibers for delivering therapeutic cargo molecules, with a special emphasis on exosomes. It also suggests prospective approaches that can be adapted to safely combine these two nanoscale systems and exponentially enhance their benefits in tissue engineering, medical device coating, and drug delivery applications.
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来源期刊
Biomedical materials
Biomedical materials 工程技术-材料科学:生物材料
CiteScore
6.70
自引率
7.50%
发文量
294
审稿时长
3 months
期刊介绍: The goal of the journal is to publish original research findings and critical reviews that contribute to our knowledge about the composition, properties, and performance of materials for all applications relevant to human healthcare. Typical areas of interest include (but are not limited to): -Synthesis/characterization of biomedical materials- Nature-inspired synthesis/biomineralization of biomedical materials- In vitro/in vivo performance of biomedical materials- Biofabrication technologies/applications: 3D bioprinting, bioink development, bioassembly & biopatterning- Microfluidic systems (including disease models): fabrication, testing & translational applications- Tissue engineering/regenerative medicine- Interaction of molecules/cells with materials- Effects of biomaterials on stem cell behaviour- Growth factors/genes/cells incorporated into biomedical materials- Biophysical cues/biocompatibility pathways in biomedical materials performance- Clinical applications of biomedical materials for cell therapies in disease (cancer etc)- Nanomedicine, nanotoxicology and nanopathology- Pharmacokinetic considerations in drug delivery systems- Risks of contrast media in imaging systems- Biosafety aspects of gene delivery agents- Preclinical and clinical performance of implantable biomedical materials- Translational and regulatory matters
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