纳米技术与初级止血:纳米颗粒对血小板反应的差异影响。

Nanotechnology and primary hemostasis: Differential effects of nanoparticles on platelet responses.

机构信息

Thrombosis Research Center, Department of Clinical Biochemistry and Immunohematology, Faculty of Health Sciences, Interdisciplinary Excellence Research Program on Healthy Aging (PIEI-ES), Universidad de Talca, Talca, Chile; Laboratory of Nanomedicine and Targeted Delivery, Center for Integrative Medicine and Innovative Science, Faculty of Medicine & Center for Bioinformatics and Integrative Biology, Faculty of Biological Sciences, Universidad Andres Bello, Santiago 8370071, Santiago, Chile.

Laboratory of Nanomedicine and Targeted Delivery, Center for Integrative Medicine and Innovative Science, Faculty of Medicine & Center for Bioinformatics and Integrative Biology, Faculty of Biological Sciences, Universidad Andres Bello, Santiago 8370071, Santiago, Chile; Centro para el Desarrollo de la Nanociencia y Nanotecnología (CEDENNA), Universidad de Santiago de Chile, Ecuador 3493, Santiago, Chile.

出版信息

Vascul Pharmacol. 2018 Feb;101:1-8. doi: 10.1016/j.vph.2017.11.004. Epub 2017 Nov 22.

Abstract

Despite the numerous advantages offered by diverse platforms based on nanomedicine, several nanomaterials have shown significant cell toxicity that could induce chronic adverse effects on human health. Blood compatibility is one of the leading factors to consider for the design and development of nanosystems as therapeutics. Aforementioned is because systemic circulation is the gateway for most nano-drug therapeutic systems and its interactions with the blood components such as platelets could influence the maintenance of hemostasis and thrombus formation. Unfortunately, the thrombotoxicity of some nanomaterials regarding the activation/inhibition of platelets limits their biomedical applications. Additionally, the critical factors that drive those effects on platelet function are still not entirely elucidated. In this work, we describe the effect of different nanomaterials on the platelet function, its action mechanisms, and future potential as nanotherapeutics.

摘要

尽管基于纳米医学的各种平台提供了众多优势,但一些纳米材料已经显示出显著的细胞毒性,可能会对人类健康产生慢性不良影响。血液相容性是设计和开发纳米系统作为治疗剂时需要考虑的主要因素之一。这是因为系统循环是大多数纳米药物治疗系统的门户,其与血液成分(如血小板)的相互作用会影响止血和血栓形成的维持。不幸的是,一些纳米材料的血栓毒性会导致血小板的激活/抑制,限制了它们在生物医学中的应用。此外,驱动这些血小板功能影响的关键因素仍不完全清楚。在这项工作中,我们描述了不同纳米材料对血小板功能的影响、其作用机制以及作为纳米治疗剂的未来潜力。

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