外泌体作为多功能纳米载体用于靶向给药的潜力

IF 2.4 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Molecular Biotechnology Pub Date : 2024-09-13 DOI:10.1007/s12033-024-01268-6
Safa Ali Al-Ani, Qiao Ying Lee, Danesha Maheswaran, Yuh Miin Sin, Jian Sheng Loh, Jhi Biau Foo, Sharina Hamzah, Jeck Fei Ng, Li Kar Stella Tan
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引用次数: 0

摘要

外泌体是多泡体与质膜融合后形成的小囊泡,释放到体液中。外泌体在促进细胞间的交流方面发挥着重要作用,可通过短距离和长距离传递不同的生物大分子,包括 DNA、RNA、蛋白质和脂质。它们还是健康和疾病状态下的重要介质,对多个生理过程产生影响。为了克服天然外泌体的局限性,提高其作为药物输送系统载体的潜力,人们对外泌体进行了改造,这些改造旨在提高药物输送效率、增强组织和器官靶向性以及延长外泌体的循环半衰期。这篇综述讨论了外泌体纳米技术的最新进展,以及外泌体在药物递送方面的发展和应用。还讨论了基于外泌体的给药系统的潜在商业化和相关挑战,旨在推动基于外泌体的治疗纳米平台和纳米技术的发展,以改善医疗保健治疗。
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Potential of Exosomes as Multifunctional Nanocarriers for Targeted Drug Delivery

Exosomes are small vesicles that form when multivesicular bodies fuse with the plasma membrane and are released into body fluids. They play a vital role in facilitating communication between cells by transferring different biomolecules, including DNA, RNA, proteins, and lipids, over both short and long distances. They also function as vital mediators in both states of health and disease, exerting an impact on several physiological processes. Exosomes have been modified to overcome the limitations of natural exosomes to enhance their potential as carriers for drug delivery systems, and these modifications aim to improve the drug delivery efficiency, enhance tissue and organ targeting, and prolong the circulating half-life of exosomes. This review discussed recent advancements in exosome nanotechnology, as well as the progression and use of exosomes for drug delivery. The potential commercialisation and challenges associated with the use of exosome-based drug delivery systems were also discussed, aiming to motivate the development of exosome-based theranostic nanoplatforms and nanotechnology for improved healthcare treatments.

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来源期刊
Molecular Biotechnology
Molecular Biotechnology 医学-生化与分子生物学
CiteScore
4.10
自引率
3.80%
发文量
165
审稿时长
6 months
期刊介绍: Molecular Biotechnology publishes original research papers on the application of molecular biology to both basic and applied research in the field of biotechnology. Particular areas of interest include the following: stability and expression of cloned gene products, cell transformation, gene cloning systems and the production of recombinant proteins, protein purification and analysis, transgenic species, developmental biology, mutation analysis, the applications of DNA fingerprinting, RNA interference, and PCR technology, microarray technology, proteomics, mass spectrometry, bioinformatics, plant molecular biology, microbial genetics, gene probes and the diagnosis of disease, pharmaceutical and health care products, therapeutic agents, vaccines, gene targeting, gene therapy, stem cell technology and tissue engineering, antisense technology, protein engineering and enzyme technology, monoclonal antibodies, glycobiology and glycomics, and agricultural biotechnology.
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