Liang Lijun, Peng Xiangming, Sun Fangfang, Kong Zhe, Shen Jia-Wei
College of Automation, Hangzhou Dianzi University Hangzhou 310018 People's Republic of China
Department of Clinical Laboratory, GuangZhou Red Cross Hospital 396 Tongfu Zhong Road Guangzhou 510220 GuangDong China.
Nanoscale Adv. 2020 Dec 26;3(4):904-917. doi: 10.1039/d0na00904k. eCollection 2021 Feb 23.
Graphene quantum dots (GQDs) generate intrinsic fluorescence and improve the aqueous stability of graphene oxide (GO) while maintaining wide chemical adaptability and high adsorption capacity. Despite GO's remarkable advantages in bio-imaging, bio-sensing, and other biomedical applications, many experiments and simulations have focused on the biosafety of GQDs. Here, we review the findings on the biosafety of GQDs from experiments; then, we review the results from simulated interactions with biological membranes, DNA molecules, and proteins; finally, we examine the intersection between experiments and simulations. The biosafety results from simulations are explained in detail. Based on the literature and our experiments, we also discuss the trends toward GQDs with better biosafety.
石墨烯量子点(GQDs)可产生本征荧光,并提高氧化石墨烯(GO)的水相稳定性,同时保持广泛的化学适应性和高吸附能力。尽管GO在生物成像、生物传感和其他生物医学应用中具有显著优势,但许多实验和模拟都聚焦于GQDs的生物安全性。在此,我们回顾了实验中关于GQDs生物安全性的研究结果;然后,我们回顾了与生物膜、DNA分子和蛋白质模拟相互作用的结果;最后,我们考察了实验与模拟之间的交叉点。详细解释了模拟得出的生物安全性结果。基于文献和我们的实验,我们还讨论了具有更好生物安全性的GQDs的发展趋势。