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基于智能血细胞和微泡的特洛伊木马药物递送:融合纳米医学领域输血与生物医学工程方面的专业知识。

Smart blood cell and microvesicle-based Trojan horse drug delivery: Merging expertise in blood transfusion and biomedical engineering in the field of nanomedicine.

作者信息

Wu Yu-Wen, Goubran Hadi, Seghatchian Jerard, Burnouf Thierry

机构信息

Graduate Institute of Biomedical Materials and Tissue Engineering, College of Biomedical Engineering, Taipei Medical University, Taipei, Taiwan.

Saskatoon Cancer Centre and College of Medicine, University of Saskatchewan, Saskatoon, Canada.

出版信息

Transfus Apher Sci. 2016 Apr;54(2):309-18. doi: 10.1016/j.transci.2016.04.013. Epub 2016 Apr 26.

Abstract

Therapeutic and diagnostic applications of nanomedicine are playing increasingly important roles in human health. Various types of synthetic nanoparticles, including liposomes, micelles, and other nanotherapeutic platforms and conjugates, are being engineered to encapsulate or carry drugs for treating diseases such as cancer, cardiovascular disorders, neurodegeneration, and inflammations. Nanocarriers are designed to increase the half-life of drugs, decrease their toxicity and, ideally, target pathological sites. Developing smart carriers with the capacity to deliver drugs specifically to the microenvironment of diseased cells with minimum systemic toxicity is the goal. Blood cells, and potentially also the liposome-like micro- and nano-vesicles they generate, may be regarded as ideally suited to perform such specific targeting with minimum immunogenic risks. Blood cell membranes are "decorated" with complex physiological receptors capable of targeting and communicating with other cells and tissues and delivering their content to the surrounding pathological microenvironment. Blood cells, such as erythrocytes, have been developed as permeable carriers to release drugs to diseased tissues or act as biofactory allowing enzymatic degradation of a pathological substrate. Interestingly, attempts are also being made to improve the targeting capacity of synthetic nanoparticles by "decorating" their surface with blood cell membrane receptor-like biochemical structures. Research is needed to further explore the benefits that blood cell-derived microvesicles, as a Trojan horse delivery systems, can bring to the arsenal of therapeutic micro- and nanotechnologies. This short review focuses on the therapeutic roles that red blood cells and platelets can play as smart drug-delivery systems, and highlights the benefits that blood transfusion expertise can bring to this exciting and novel biomedical engineering field.

摘要

纳米医学的治疗和诊断应用在人类健康中发挥着越来越重要的作用。各种类型的合成纳米颗粒,包括脂质体、胶束以及其他纳米治疗平台和缀合物,正在被设计用于包裹或运载药物,以治疗癌症、心血管疾病、神经退行性疾病和炎症等疾病。纳米载体的设计目的是延长药物的半衰期,降低其毒性,并理想地靶向病理部位。开发具有将药物特异性递送至病变细胞微环境且全身毒性最小的智能载体是目标。血细胞以及它们可能产生的类似脂质体的微囊泡和纳米囊泡,可能被视为最适合以最小免疫原性风险进行这种特异性靶向的载体。血细胞表面“装饰”有复杂的生理受体,这些受体能够靶向其他细胞和组织并与之通信,并将其内容物递送至周围的病理微环境。血细胞,如红细胞,已被开发为可渗透的载体,用于将药物释放到病变组织或充当生物工厂,使病理底物发生酶促降解。有趣的是,人们也在尝试通过用类似血细胞膜受体的生化结构“装饰”合成纳米颗粒的表面来提高其靶向能力。需要进一步研究探索源自血细胞的微囊泡作为特洛伊木马递送系统,能为治疗性微纳技术带来的益处。这篇简短的综述重点关注红细胞和血小板作为智能药物递送系统所能发挥的治疗作用,并强调输血专业知识能为这个令人兴奋的新型生物医学工程领域带来的益处。

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