Rzigalinski Beverly A, Strobl Jeannine S
Department of Pharmacology, Virginia College of Osteopathic Medicine, NanoNeuroLab, Blacksburg, VA 24060, USA.
Toxicol Appl Pharmacol. 2009 Aug 1;238(3):280-8. doi: 10.1016/j.taap.2009.04.010. Epub 2009 Apr 18.
The field of nanotechnology is rapidly expanding with the development of novel nanopharmaceuticals that have potential for revolutionizing medical treatment. The rapid pace of expansion in this field has exceeded the pace of pharmacological and toxicological research on the effects of nanoparticles in the biological environment. The development of cadmium-containing nanoparticles, known as quantum dots, show great promise for treatment and diagnosis of cancer and targeted drug delivery, due to their size-tunable fluorescence and ease of functionalization for tissue targeting. However, information on pharmacology and toxicology of quantum dots needs much further development, making it difficult to assess the risks associated with this new nanotechnology. Further, nanotechnology poses yet another risk for toxic cadmium, which will now enter the biological realm in nano-form. In this review, we discuss cadmium-containing quantum dots and their physicochemical properties at the nano-scale. We summarize the existing work on pharmacology and toxicology of cadmium-containing quantum dots and discuss perspectives in their utility in disease treatment. Finally, we identify critical gaps in our knowledge of cadmium quantum dot toxicity, and how these gaps need to be assessed to enable quantum dot nanotechnology to transit safely from bench to bedside.
随着新型纳米药物的发展,纳米技术领域正在迅速扩展,这些新型纳米药物具有变革医学治疗的潜力。该领域的快速扩张速度已经超过了关于纳米颗粒在生物环境中作用的药理学和毒理学研究的速度。含镉纳米颗粒,即量子点的发展,因其尺寸可调的荧光特性以及易于进行组织靶向功能化,在癌症治疗与诊断以及靶向药物递送方面显示出巨大的前景。然而,关于量子点的药理学和毒理学信息还需要进一步深入研究,这使得评估与这种新型纳米技术相关的风险变得困难。此外,纳米技术还带来了另一个风险,即有毒镉现在将以纳米形式进入生物领域。在这篇综述中,我们讨论了含镉量子点及其纳米尺度的物理化学性质。我们总结了关于含镉量子点药理学和毒理学的现有研究工作,并讨论了它们在疾病治疗中的应用前景。最后,我们确定了我们在镉量子点毒性知识方面的关键空白,以及需要如何评估这些空白,以使量子点纳米技术能够安全地从实验室走向临床应用。