Zheng Kaiyuan, Li Shuo, Jing Lin, Chen Po-Yen, Xie Jianping
Department of Chemical and Biomolecular Engineering, National University of Singapore, Singapore, 117585, Singapore.
Adv Healthc Mater. 2020 Oct;9(19):e2001007. doi: 10.1002/adhm.202001007. Epub 2020 Sep 3.
Bacterial resistance toward antibiotics is a world-wide problem, and one potential solution to fight against the resistance is to develop multi-mechanism antimicrobial agents to achieve synergistic performance. Titanium carbide (MXene) is an emerging 2D nanomaterial with antimicrobial ability to physically damage bacterial membrane and chemically induce oxidative stress, and it can be further conjugated with nanomaterials to improve its antibacterial performance. Herein, a synergistic antimicrobial agent is developed through conjugation of the ultra-small gold nanoclusters (AuNCs) on MXene nanosheets. The conjugated AuNCs are effectively delivered into bacteria after bacterial membrane damage caused by MXene, generating localized reactive oxygen species (ROS) of high concentration to effectively oxidize bacterial membrane lipid for enhanced membrane broken, as well as bacterial DNA for violent fragmentation. Thus, the synergistic physical (via MXene) and chemical (via MXene and AuNCs) antimicrobial mechanisms lead to eventual bacterial death of both Gram-positive and Gram-negative bacteria, with low IC values of 11.7 µg mL of MXene and 0.04 µm of AuNCs. Moreover, the crumpled MXene-AuNCs structure is constructed to inhibit biofilm formation, which hold synergistic antibacterial ability of MXene-AuNCs conjugation, hydrophobic surface to prevent bacterial attachment, and large surface area containing higher density of bactericides.
细菌对抗生素的耐药性是一个全球性问题,对抗耐药性的一个潜在解决方案是开发具有多种作用机制的抗菌剂以实现协同性能。碳化钛(MXene)是一种新兴的二维纳米材料,具有通过物理方式损伤细菌膜和化学方式诱导氧化应激来抗菌的能力,并且它可以进一步与纳米材料结合以提高其抗菌性能。在此,通过将超小金纳米团簇(AuNCs)缀合在MXene纳米片上开发了一种协同抗菌剂。在MXene造成细菌膜损伤后,缀合的AuNCs被有效地递送至细菌内部,产生高浓度的局部活性氧(ROS),以有效氧化细菌膜脂质从而增强膜破裂,同时氧化细菌DNA使其剧烈断裂。因此,协同的物理(通过MXene)和化学(通过MXene和AuNCs)抗菌机制导致革兰氏阳性菌和革兰氏阴性菌最终死亡,MXene的低IC值为11.7 μg/mL,AuNCs为0.04 μM。此外,构建了皱缩的MXene-AuNCs结构以抑制生物膜形成,其兼具MXene-AuNCs缀合物的协同抗菌能力、防止细菌附着的疏水表面以及含有更高密度杀菌剂的大表面积。