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纳米颗粒相容性的生物物理化学视角:纳米医学中一个被严重忽视的参数。

Biophysicochemical perspective of nanoparticle compatibility: a critically ignored parameter in nanomedicine.

作者信息

Hassan Shabir, Singh Ajay Vikram

出版信息

J Nanosci Nanotechnol. 2014 Jan;14(1):402-14. doi: 10.1166/jnn.2014.8747.

Abstract

Engineered nanomaterials are increasingly used in domestic and commercial products due to the rapid growth and increasing public and industrial interests in nanotechnology. Undoubtedly there will be more exposure of living organisms and the environment to nanomaterials. Therefore, understanding the biophysicochemical interactions of nanoparticles with proteins, membranes, cells, DNA, and organelles at the nano-biointerface will help to control fundamental biological and dynamic colloidal forces to promote biocompatibility of the particles. In this article, we review how bio- and physicochemical surface characteristics at nanoscale govern particle biocompatibility for in vivo and in vitro models. We also revisit the promise and predictions gained from this understanding to design special types of nanoparticles, such as quantum dots (QDs) and superparamagnetic iron oxide nanoparticles (SPIONs), for biomedical applications. This knowledge is essential not only from the perspective of safe use of nanomaterials, but also in paving the way for nontoxic interactions with biological systems. It paves the route for safe implementation of the materials in novel biomedical diagnostics and therapeutics. We also put forward an outlook and future perspective, which are largely "ignored parameters" in nanomedicine. In conclusion, emphasis on the systematic evaluation of nanomaterial toxicity in primary cells derived from vital organs and the need to develop an international consortium for a materialomics database is encouraged.

摘要

由于纳米技术的迅速发展以及公众和产业界对其兴趣的不断增加,工程纳米材料在家庭和商业产品中的应用日益广泛。毫无疑问,生物体和环境将更多地接触到纳米材料。因此,了解纳米颗粒在纳米生物界面与蛋白质、膜、细胞、DNA和细胞器的生物物理化学相互作用,将有助于控制基本的生物和动态胶体作用力,以提高颗粒的生物相容性。在本文中,我们综述了纳米尺度的生物和物理化学表面特性如何决定体内和体外模型中颗粒的生物相容性。我们还重新审视了基于这种理解所获得的前景和预测,以设计特殊类型的纳米颗粒,如量子点(QDs)和超顺磁性氧化铁纳米颗粒(SPIONs),用于生物医学应用。这些知识不仅对于纳米材料的安全使用至关重要,而且为与生物系统的无毒相互作用铺平了道路。它为这些材料在新型生物医学诊断和治疗中的安全应用开辟了途径。我们还提出了一个展望和未来远景,这在很大程度上是纳米医学中“被忽视的参数”。总之,鼓励重视对源自重要器官的原代细胞中纳米材料毒性的系统评估,以及建立一个用于材料组学数据库的国际联盟的必要性。

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