期刊文献+

纳米银与纳米氧化锌混合物的抗菌活性 被引量:2

The antibacterial activity of the mixture of nano Ag and nano ZnO
下载PDF
导出
摘要 采用常温还原法合成纳米银及微波超声波组合法合成纳米氧化锌样品,运用X线粉末衍射(XRD)、透射电子显微镜(TEM)、扫描电子显微镜(SEM)及UV-Vis光谱对样品的组成及形貌进行表征.将纳米银与纳米氧化锌进行混合,采用菌落计数法测定混合物对大肠杆菌(E.coli)和金黄色葡萄球菌(S.aureus)的抑菌活性.结果表明,所合成样品为分散性好的5nm银颗粒及均一棱柱状结构的纳米氧化锌.二者混合物在银含量减少一半时对两种细菌的抗菌活性明显高于单独的纳米银或纳米氧化锌,表明混合物中纳米银和纳米氧化锌在抗菌时发挥了协同作用. The nanostructures of silver (Ag) and zinc oxide (ZnO) were fabricated via reduction method at room temperature or microwave and ultrasonic combined technique. The compositions and morphologies of the products were characterized by powder X-ray diffraction (XRD), transmission electron microscopy (TEM), scan electron microscopy (SEM) and UV-Vis spectroscopy. The antibacterial activities of the mixture of nano Ag with nano ZnO against E. coli and S. aureus were measured by colony counting methods. The results showed that the products obtained were well dispersed Ag nanoparticles with size of 5 nm and homogeneous prism like nano ZnO. The antibacterial activity of the mixture of the nano Ag with the nano Zn() against the two bacteria was apparent higher than that of nano Ag or nano ZnO alone at the concentration of Ag was reduced to the half. It indicated that there were synergistic antibacterial activities of the nano Ag with nano ZnO in the mixture.
出处 《湖北大学学报(自然科学版)》 CAS 2013年第1期20-23,共4页 Journal of Hubei University:Natural Science
基金 教育部新世纪优秀人才支持计划(NCET-09-0136) 湖北省自然科学基金杰出青年基金(2009CDA075) 湖北省教育厅重点项目(D20111510) 武汉市科技局对外科技合作与交流计划(201171034319 201231234465) 湖北省自然科学基金(2011CDB219)资助
关键词 纳米银 纳米氧化锌 混合物 抗菌活性 协同作用 nano Ag nano ZnO mixture antibacterial activity synergistic effect
  • 相关文献

参考文献19

  • 1Fadeel B, Garcia-Bennett A E. Better safe than sorry: understanding the toxicological properties of inorganic nanoparticles manufactured for biomedical applications[J]. Adv Drug Deliver Rev, 2010, 62(3) : 362 374.
  • 2Rai M, Yadav A, Gade A. Silver nanoparticles as a new generation of antimicrobials[J]. Biotechnol Adv, 2009,27(1): 76-83.
  • 3马万顺,崔燕,赵玉云,郑文富,张伟,蒋兴宇,张文杰.纳米颗粒抗菌机理的研究进展[J].生物物理学报,2010,26(8):638-648. 被引量:18
  • 4钟金栋,夏雪山,张若愚,高毅颖.纳米银材料抗菌效果研究及其安全性初步评价[J].昆明理工大学学报(理工版),2005,30(5):91-93. 被引量:34
  • 5Yoon K Y, Hoon Byeon J, Park J H, et al. Susceptibility constants of escherichia coli and bacillus subtilis to silver and copper nanoparticles[J]. Sci Total Environ, 2007,373 (2/3) : 572-575.
  • 6Jones N, Ray B, Ranjit K T, et al. Antibacterial activity of ZnO nanoparticle suspensions on a broad spectrum of microorganisms[J]. Ferns Microbiol Lett, 2008, 279 (1) : 71-76.
  • 7Adams L, Lyon D, Mdntosh A, et al. Comparative toxicity of nano-scale TiO2, SiO2 and ZnO water suspensions[J]. Water Sci Technol, 2006,54 (11/12) : 327-334.
  • 8Zeyons O, Thill A, Chauvat F, et al. Direct and indirect CeO2 nanoparticles toxicity for Escherichia coli and synechocystis[J]. Nanotoxicology, 2009,3(4) : 284-295.
  • 9Chaloupka K, Malam Y, Seifalian A M. Nanosilver as a new generation of nanoproduct in biomedical applications[J]. Trends Biotechnol, 2010,28 (11) : 580-588.
  • 10Sondi I, Salopek-Sondi B. Silver nanoparticles as antimicrobial agent: a case study on E. coli as a model for gram negative bacteria[J]. J Colloid Interface Sei, 2004,275 (1) : 177-182.

二级参考文献49

  • 1Lyon DY, Brunet L, Hinkal GW, Wiesner MR, Alvarez PJ. Antibacterial activity of fullerene water suspensions (nC60) is not due to ros-mediated damage. Nano Lett, 2008, 8(5): 1539-1543.
  • 2Lyon DY, Fortner JD, Sayes CM, Colvin VL, Hughe JB. Bacterial cell association and antimicrobial activity of a C60 water suspension. Environ Toxicol Chem, 2005, 24 (11): 2757-2762.
  • 3Wang B, Zhang LF, Bae SC, Granick S. Nanoparticle- induced surface reconstruction of phospholipid membranes. Proc NaU Acad Sci USA, 2008, 105(47): 18171-18175.
  • 4Leroueil PR, Berry SA, Duthie K, Han G, Rotelio VM, McNerny DQ, Baker JR Jr, Orr BG, Holl MMB. Wide varieties of cationic nanoparticles induce defects in supported lipid bilayers. Nano Lett, 2008, 8(2): 420-424.
  • 5Roiter Y, Ornatska M, Rammohan AR, Balakrishnan J, Heine DR, Minko S. Interaction of nanoparticles with lipid membrane. Nano Lett, 2008, 8(3): 941-944.
  • 6Gogoi SK, Gopinath P, Paul A, Ramesh A, Ghosh SS, Chattopadhyay A. Green fluorescent protein-expressing Escherichia coil as a model system for investigating the antimicrobial activities of silver nanoparticles. Langmuir, 2006, 22(22): 9322-9328.
  • 7Chen X, Schluesener HJ. Nanosilver: A nanoproduct in medical application. Toxicol Lett, 2008, 176(1): 1-12.
  • 8Liu Y, Li J, Qiu XF, Burda C. Bactericidal activity of nitrogen-doped metal oxide nanocatalysts and the influence of bacterial extracellular polymeric substances (EPS). J Photochem Photobiol A: Chem, 2007, 190(1): 94-100.
  • 9Chen XY, Tang HZ, Even MA, Wang J, Tew GN, Chen Z. Observing a molecular knife at work. J Am Chem Soc, 2006, 128(8): 2711-2714.
  • 10Nel A, Xia T, Madler L, Li N. Toxic potential of materials at the nanolevel. Science, 2006, 311(5761): 622-627.

共引文献50

同被引文献29

  • 1李颖君,张庆,李慧霞.针刺布鞋材的抗菌及易去污功能整理[J].合成纤维,2012,41(4):42-44. 被引量:3
  • 2李东英,石飞,刘江.纳米抗菌鞋垫的制备与研究[J].中国皮革,2006,35(8):137-139. 被引量:3
  • 3张利,李玉宝,周钢,吕国玉,左奕.纳米羟基磷灰石/壳聚糖复合骨水泥的固化机理研究[J].无机材料学报,2006,21(5):1197-1202. 被引量:13
  • 4Torres Y R, Berlinck S, Nascimento F. Antibacterial activity against resistant bacteria and cytotoxiciy of four alkaloid toxins isolated from the marine sponge Arenosclera brasiliensis [ J ] . Toxicon, 2002,40:885 - 891.
  • 5Sataev M S, Koshkarbaeva S T,Tleuova A B, et al. Novel process for coating textile materials with silver to prepareantimicro- bial fabrics [ J ] . Colloids and Surfaces ( A ) : Physicochemical and Engineering Aspects ,2014,442 : 142 - 151.
  • 6Perera S, Bhushan B, Bandara R, et al. Morphological, antimicrobial, durability, and physical properties of untreated and treated textiles using silver - nanoparti- cles[J].Colloids and Surfaces A: Physi- cochemical and Engineering Aspects, 2013,436:975 -989.
  • 7Kozicki M, Sasiadek E, Kolodziejczyk M, et al. Facile and durable antimicrobial finishing of cotton textiles using a silver salt and UV light[J]. Carbohydrate Pol- ymers ,2013,91 : 115 - 127.
  • 8Ib~nescu M, Musat V, Textor T, et al. Photocatalytic and antimicrobial Ag/ZnO nanocomposites for functionalization of textile fabrics [J]. Journal of Alloys and Compounds ,2014,610:244 - 249.
  • 9Ananth A, Dharaneedharan S, Heo M S,et al. Copper oxide nanomaterials: Syn- thesis, characterization and structure- specific antibacterial performance [ J ] . Chemical Engineering Journal, 2015, 262 ~ 179 - 188.
  • 10Pugachev M V, Shtyrlin N V,Sapozhnikov S V, et al. Bis - phosphonium salts of pyridoxine : The relationship between structure and antibacterial activity [ J ] . Bioorganic and Medicinal Chemistry, 2013,21:7 330 -7 342.

引证文献2

二级引证文献11

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部