Department of Chemistry and Biochemistry, University of California, San Diego, CA 92093, USA.
ARC Centre of Excellence in Convergent Bio-Nano Science and Technology and Australian Institute for Bioengineering and Nanotechnology, The University of Queensland, Brisbane, QLD 4072, Australia.
Biosensors (Basel). 2020 Nov 30;10(12):196. doi: 10.3390/bios10120196.
This review is focused on the basic properties, production, functionalization, cytotoxicity, and biomedical applications of liquid metal nanoparticles (LMNPs), with a focus on particles of the size ranging from tens to hundreds of nanometers. Applications, including cancer therapy, medical imaging, and pathogen treatment are discussed. LMNPs share similar properties to other metals, such as photothermal conversion ability and a propensity to form surface oxides. Compared to many other metals, especially mercury, the cytotoxicity of gallium is low and is considered by many reports to be safe when applied in vivo. Recent advances in exploring different grafting molecules are reported herein, as surface functionalization is essential to enhance photothermal therapeutic effects of LMNPs or to facilitate drug delivery. This review also outlines properties of LMNPs that can be exploited in making medical imaging contrast agents, ion channel regulators, and anti-pathogenic agents. Finally, a foresight is offered, exemplifying underexplored knowledge and highlighting the research challenges faced by LMNP science and technology in expanding into applications potentially yielding clinical advances.
这篇综述重点介绍了液态金属纳米粒子(LMNPs)的基本性质、生产、功能化、细胞毒性以及生物医学应用,重点介绍了尺寸在数十到数百纳米范围内的粒子。讨论了包括癌症治疗、医学成像和病原体治疗在内的应用。LMNPs 具有与其他金属相似的性质,例如光热转换能力和形成表面氧化物的倾向。与许多其他金属(尤其是汞)相比,镓的细胞毒性较低,许多报告认为在体内应用时是安全的。本文还报道了探索不同接枝分子的最新进展,因为表面功能化对于增强 LMNPs 的光热治疗效果或促进药物递送至关重要。本综述还概述了 LMNPs 可用于制造医学成像造影剂、离子通道调节剂和抗病原体剂的特性。最后,提供了一个展望,例示了未充分探索的知识,并强调了 LMNP 科学和技术在扩展到可能带来临床进展的应用方面所面临的研究挑战。