Department of Biochemistry and Molecular Biology, Mayo Clinic College of Medicine, 200 First St SW, Rochester, MN 55905, USA.
Chem Soc Rev. 2012 Apr 7;41(7):2943-70. doi: 10.1039/c2cs15355f. Epub 2012 Mar 5.
Biomedical nanotechnology is an evolving field having enormous potential to positively impact the health care system. Important biomedical applications of nanotechnology that may have potential clinical applications include targeted drug delivery, detection/diagnosis and imaging. Basic understanding of how nanomaterials, the building blocks of nanotechnology, interact with the cells and their biological consequences are beginning to evolve. Noble metal nanoparticles such as gold, silver and platinum are particularly interesting due to their size and shape dependent unique optoelectronic properties. These noble metal nanoparticles, particularly of gold, have elicited a lot of interest for important biomedical applications because of their ease of synthesis, characterization and surface functionalization. Furthermore, recent investigations are demonstrating another promising application of these nanomaterials as self-therapeutics. To realize the potential promise of these unique inorganic nanomaterials for future clinical translation, it is of utmost importance to understand a few critical parameters; (i) how these nanomaterials interact with the cells at the molecular level; (ii) how their biodistribution and pharmacokinetics influenced by their surface and routes of administration; (iii) mechanism of their detoxification and clearance and (iv) their therapeutic efficacy in appropriate disease model. Thus in this critical review, we will discuss the various clinical applications of gold, silver and platinum nanoparticles with relevance to above parameters. We will also mention various routes of synthesis of these noble metal nanoparticles. However, before we discuss present research, we will also look into the past. We need to understand the discoveries made before us in order to further our knowledge and technological development (318 references).
生物医学纳米技术是一个不断发展的领域,具有极大的潜力对医疗保健系统产生积极影响。纳米技术在生物医学方面的重要应用可能具有潜在的临床应用,包括靶向药物输送、检测/诊断和成像。人们开始逐渐了解纳米材料(纳米技术的构建块)与细胞相互作用及其生物学后果的基本原理。由于其尺寸和形状依赖性的独特光电特性,贵金属纳米粒子(如金、银和铂)特别有趣。这些贵金属纳米粒子,特别是金,由于其易于合成、表征和表面功能化,引起了人们对重要生物医学应用的极大兴趣。此外,最近的研究表明,这些纳米材料作为自治疗剂具有另一种有前途的应用。为了实现这些独特无机纳米材料在未来临床转化中的潜力,了解一些关键参数至关重要;(i)这些纳米材料如何在分子水平上与细胞相互作用;(ii)它们的生物分布和药代动力学如何受其表面和给药途径的影响;(iii)它们的解毒和清除机制;以及(iv)它们在适当疾病模型中的治疗效果。因此,在这篇重要的综述中,我们将讨论与上述参数相关的金、银和铂纳米粒子的各种临床应用。我们还将提到这些贵金属纳米粒子的各种合成途径。然而,在我们讨论当前的研究之前,我们也将回顾过去。为了进一步提高我们的知识和技术发展,我们需要了解我们之前的发现(318 篇参考文献)。