Polyethylene glycol modified graphene oxide-silver nanoparticles nanocomposite as a novel antibacterial material with high stability and activity

被引:21
作者
Bao, Yunhui [1 ]
Li, Huanhuan [1 ,2 ]
He, Jian [1 ,2 ]
Song, Ke [1 ,2 ]
Yu, Huazhong [1 ,2 ]
Tian, Chunlian [1 ]
Guo, Jie [1 ,2 ]
Zhou, Xianwu [1 ,2 ]
Liu, Shima [1 ,2 ]
机构
[1] Jishou Univ, Key Lab Hunan Forest Prod & Chem Ind Engn, Natl & Local United Engn Lab Integrat Utilizat Euc, Zhangjiajie 427000, Peoples R China
[2] Jishou Univ, Coll Chem & Chem Engn, Jishou 416000, Peoples R China
基金
中国国家自然科学基金;
关键词
Polyethylene glycol; Graphene-based nanomaterials; Green synthesis; Dispersion stability; Antibacterial activity; GREEN SYNTHESIS; EXTRACT; COMPOSITES; SURFACE; NPS; AG;
D O I
10.1016/j.colsurfb.2023.113435
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Inorganic antibacterial nanomaterials play an increasingly important role in addressing the growing threat of drug-resistant bacteria. Graphene oxide-silver nanoparticles composite (GO-AgNPs), as a kind of inorganic nanomaterials, have excellent antibacterial properties, showing promising potential in biomedical field. However, GO-AgNPs are terribly prone to sedimentation due to aggregation in physiological solutions, along with its non-environmental issues during the synthesis process, seriously limits the antibacterial application of GO-AgNPs in the biomedical field. To solve this problem, herein, polyethylene glycol-graphene oxide-silver nanoparticles composite (GO-AgNPs-PEG) were prepared by modifying GO-AgNPs with polyethylene glycol to enhance their dispersion stability in physiological solutions. In addition, GO-AgNPs-PEG were prepared with using the natural product gallic acid as a reductant and stabilizer, exhibiting the characteristic of environmentally friendly. Meanwhile, the dispersion stability and antibacterial activity of GO-AgNPs-PEG were characterized by various technical methods, it was found that GO-AgNPs-PEG can be stably dispersed in a variety of physiological solutions (e.g., physiological saline, phosphate buffer solution, Luria-Bertani medium, Murashige and Skoog medium) for more than one week. Moreover, the antibacterial properties of GO-AgNPs-PEG in physiological solutions were significantly better than those of GO-AgNPs. Furthermore, it was discovered that the antibacterial mechanism of GO-AgNPs-PEG was probably associated to destroying the integrity of bacterial cell walls and membranes. The findings in this work can provide new ideas and references for the development of new inorganic antibacterial nanomaterials with stable dispersion in physiological solutions.
引用
收藏
页数:11
相关论文
共 54 条
[41]   The Preparation of Graphene Oxide-Silver Nanocomposites: The Effect of Silver Loads on Gram-Positive and Gram-Negative Antibacterial Activities [J].
Truong Thi Tuong Vi ;
Kumar, Selvaraj Rajesh ;
Rout, Bishakh ;
Liu, Chi-Hsien ;
Wong, Chak-Bor ;
Chang, Chia-Wei ;
Chen, Chien-Hao ;
Chen, Dave W. ;
Lue, Shingjiang Jessie .
NANOMATERIALS, 2018, 8 (03)
[42]   Optimal Balance of Hydrophobic Content and Degree of Polymerization Results in a Potent Membrane-Targeting Antibacterial Polymer [J].
Tyagi, Anju ;
Mishra, Abhijit .
ACS OMEGA, 2021, 6 (50) :34724-34735
[43]   Biosynthesis of the silver nanoparticles on the graphene oxide's surface using Pistacia atlantica leaves extract and its antibacterial activity against some human pathogens [J].
Veisi, Hojat ;
Kavian, Marziyeh ;
Hekmati, Malak ;
Hemmati, Saba .
POLYHEDRON, 2019, 161 :338-345
[44]  
Wang R., 2010, MET FUNCT MAT, V17, P17, DOI 10.13228/j.boyuan.issn1005-8192.2010.01.00310.5188/ijsmer.17.93
[45]   Evaluation of Gallic Acid-Coated Gold Nanoparticles as an Anti-Aging Ingredient [J].
Wu, Yun-Zhen ;
Tsai, Yen-Yu ;
Chang, Long-Sen ;
Chen, Ying-Jung .
PHARMACEUTICALS, 2021, 14 (11)
[46]   Facile synthesis of silver@graphene oxide nanocomposites and their enhanced antibacterial properties [J].
Xu, Wei-Ping ;
Zhang, Le-Cheng ;
Li, Jian-Ping ;
Lu, Yang ;
Li, Hui-Hui ;
Ma, Yi-Ni ;
Wang, Wei-Di ;
Yu, Shu-Hong .
JOURNAL OF MATERIALS CHEMISTRY, 2011, 21 (12) :4593-4597
[47]   Study on the interaction of graphene oxide silver nanocomposites with bovine serum albumin and the formation of nanoparticle-protein corona [J].
Xu, Xiangyu ;
Mao, Xuyan ;
Wang, Yunfei ;
Li, Dandan ;
Du, Zhongyu ;
Wu, Weihua ;
Jiang, Liang ;
Yang, Jie ;
Li, Jianjun .
INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2018, 116 :492-501
[48]   Reduction of silver nanoparticles onto graphene oxide nanosheets with N,N-dimethylformamide and SERS activities of GO/Ag composites [J].
Yang, Ying-Kui ;
He, Cheng-En ;
He, Wen-Jie ;
Yu, Lin-Juan ;
Peng, Ren-Gui ;
Xie, Xiao-Lin ;
Wang, Xian-Bao ;
Mai, Yiu-Wing .
JOURNAL OF NANOPARTICLE RESEARCH, 2011, 13 (10) :5571-5581
[49]   Ti3C2Tx MXene loaded with indocyanine green for synergistic photothermal and photodynamic therapy for drug-resistant bacterium [J].
Yu, Chenhao ;
Sui, Shangyan ;
Yu, Xiaotong ;
Huang, Wenlong ;
Wu, Yafei ;
Zeng, Xin ;
Chen, Qianming ;
Wang, Jun ;
Peng, Qiang .
COLLOIDS AND SURFACES B-BIOINTERFACES, 2022, 217
[50]   Graphene oxide-wrapped flower-like sliver particles for surface-enhanced Raman spectroscopy and their applications in polychlorinated biphenyls detection [J].
Zhang, Cong-yun ;
Hao, Rui ;
Zhao, Bin ;
Fu, Yizheng ;
Zhang, Huijuan ;
Moeendarbari, Sina ;
Pickering, Christopher S. ;
Hao, Yao-wu ;
Liu, Ya-qing .
APPLIED SURFACE SCIENCE, 2017, 400 :49-56