164
Brown A, Smith K, Samuels TA, Lu J, Obare S, Scott ME (2012) Nanoparticles Functionalized
with Ampicillin Destroy Multiple Antibiotic Resistant Isolates of Pseudomonas aeruginosa,
Enterobacter aerogenes and Methicillin Resistant Staphylococcus aureus. Appl Environ
Microbiol 78:2768–2774
Butler KS, Casey BJ, Garborcauskas GV, Dair BJ, Elespuru RK (2014) Assessment of titanium
dioxide nanoparticle effects in bacteria: association, uptake, mutagenicity, co-mutagenicity
and DNA repair inhibition. Mutat Res Genet Toxicol Environ Mutagen 768:14–22. https://doi.
org/10.1016/j.mrgentox.2014.04.008
Capeletti LB et al (2014) Tailored silica–antibiotic nanoparticles: overcoming bacterial resistance
with low cytotoxicity. Langmuir 30:7456–7464
Casciaro B, Moreactive oxygen species M, Rivera-Fernández S, Bellelli A, Jesús M, Mangoni ML
(2017) Gold-nanoparticles coated with the antimicrobial peptide esculentin-1a (1-21) NH2 as
a reliable strategy for antipseudomonal drugs. Acta Biomater 47:170–181
Centers for Disease Control and Prevention (2017) Antibiotic Resistance Threats in the United
States, 2013. Centers for Disease Control and Prevention
Chakraborti S, Mandal AK, Sarwar S, Singh P, Chakraborty R, Chakrabarti P (2014) Bactericidal
effect of polyethyleneimine capped Zinc oxide nanoparticles on multiple antibiotic resistant bacteria harboring genes of high-pathogenicity island. Colloids Surf B: Biointerfaces
121:44–53
Chaloupka K, Malam Y, Seifalian AM (2010) Nanosilver as a new generation of nanoproduct in
biomedical applications. Trends Biotechnol 28:580–588
Chaudhari AA, Jasper SL, Dosunmu E, Miller ME, Arnold RD, Singh SR, Pillai S (2015) Novel
pegylated silver coated carbon nanotubes kill Salmonella but they are non-toxic to eukaryotic
cells. J Nanobiotechnol 13:1–23
Chen WY, Lin JY, Chen WJ, Luo L, Wei Guang Digold E, Chen YC (2010) Functional gold nanoclusters as antimicrobial agents for antibiotic-resistant bacteria. Nanomedicine 5:755–764
Choi O, Hu Z (2008) Size dependent and reactive oxygen species related nanosilver toxicity to
nitrifying bacteria. Environ Sci Technol 42:4583–4588
Choi O, Deng KK, Kim N-J, Reactive oxygen species s L, Surampalli RY, Hu Z (2008) The inhibitory effects of silver nanoparticles, silver ions, and silver chloride colloids on microbial growth.
Water Res 42:3066–3074. https://doi.org/10.1016/j.watres.2008.02.021
Choi SK et al (2012) Dendrimer-based multivalent vancomycin nanoplatform for targeting the
drug-resistant bacterial surface. ACS Nano 7:214–228
Courtney CM, Goodman SM, McDaniel JA, Madinger NE, Chatterjee A, Nagpal P (2016)
Photoexcited quantum dots for killing multidrug-resistant bacteria. Nat Mater 15:529–534
Courtney CM et al (2017) Potentiating antibiotics in drug-resistant clinical isolates via stimuliactivated superoxide generation. Sci Adv 3:e1701776
Dakal TC, Kumar A, Majumdar RS, Yadav V (2016) Mechanistic basis of antimicrobial actions of
silver nanoparticles. Front Microbiol 7:1–17
Dallas P, Sharma VK, Zboril R (2011) Silver polymeric nanocomposites as advanced antimicrobial
agents: classification, synthetic paths, applications, and perspectives. Adv Colloid Interf Sci
166:119–135
Das B et al (2017a) Green synthesized silver nanoparticles destroy multidrug resistant bacteria via
reactive oxygen species mediated membrane damage. Arab J Chem 10:862–876
Das S, Sinha S, Das B, Jayabalan R, Suar M, Mishra A, Tamhankar AJ, Lundborg CS, Tripathy SK
(2017b) Disinfection of multidrug resistant Escherichia coli by solar photocatalysis using Fe
doped ZnO nanoparticles. Sci Rep 7:104
de Faria AF, Martinez DST, Meira SMM, de Moraes ACM, Brandelli A, Souza Filho AG, Alves
OL (2014) Anti-adhesion and antibacterial activity of silver nanoparticles supported on graphene oxide sheets. Colloids Surf B: Biointerfaces 113:115–124
de Oliveira JFA, Saito Â, Bido AT, Kobarg J, Stassen HK, Cardoso MB (2017) Defeating bacterial resistance and preventing mammalian cells toxicity through rational design of antibioticfunctionalized nanoparticles. Sci Rep 7:1–10
R. Sinha et al.
Brown A, Smith K, Samuels TA, Lu J, Obare S, Scott ME (2012) Nanoparticles Functionalized
with Ampicillin Destroy Multiple Antibiotic Resistant Isolates of Pseudomonas aeruginosa,
Enterobacter aerogenes and Methicillin Resistant Staphylococcus aureus. Appl Environ
Microbiol 78:2768–2774
Butler KS, Casey BJ, Garborcauskas GV, Dair BJ, Elespuru RK (2014) Assessment of titanium
dioxide nanoparticle effects in bacteria: association, uptake, mutagenicity, co-mutagenicity
and DNA repair inhibition. Mutat Res Genet Toxicol Environ Mutagen 768:14–22. https://doi.
org/10.1016/j.mrgentox.2014.04.008
Capeletti LB et al (2014) Tailored silica–antibiotic nanoparticles: overcoming bacterial resistance
with low cytotoxicity. Langmuir 30:7456–7464
Casciaro B, Moreactive oxygen species M, Rivera-Fernández S, Bellelli A, Jesús M, Mangoni ML
(2017) Gold-nanoparticles coated with the antimicrobial peptide esculentin-1a (1-21) NH2 as
a reliable strategy for antipseudomonal drugs. Acta Biomater 47:170–181
Centers for Disease Control and Prevention (2017) Antibiotic Resistance Threats in the United
States, 2013. Centers for Disease Control and Prevention
Chakraborti S, Mandal AK, Sarwar S, Singh P, Chakraborty R, Chakrabarti P (2014) Bactericidal
effect of polyethyleneimine capped Zinc oxide nanoparticles on multiple antibiotic resistant bacteria harboring genes of high-pathogenicity island. Colloids Surf B: Biointerfaces
121:44–53
Chaloupka K, Malam Y, Seifalian AM (2010) Nanosilver as a new generation of nanoproduct in
biomedical applications. Trends Biotechnol 28:580–588
Chaudhari AA, Jasper SL, Dosunmu E, Miller ME, Arnold RD, Singh SR, Pillai S (2015) Novel
pegylated silver coated carbon nanotubes kill Salmonella but they are non-toxic to eukaryotic
cells. J Nanobiotechnol 13:1–23
Chen WY, Lin JY, Chen WJ, Luo L, Wei Guang Digold E, Chen YC (2010) Functional gold nanoclusters as antimicrobial agents for antibiotic-resistant bacteria. Nanomedicine 5:755–764
Choi O, Hu Z (2008) Size dependent and reactive oxygen species related nanosilver toxicity to
nitrifying bacteria. Environ Sci Technol 42:4583–4588
Choi O, Deng KK, Kim N-J, Reactive oxygen species s L, Surampalli RY, Hu Z (2008) The inhibitory effects of silver nanoparticles, silver ions, and silver chloride colloids on microbial growth.
Water Res 42:3066–3074. https://doi.org/10.1016/j.watres.2008.02.021
Choi SK et al (2012) Dendrimer-based multivalent vancomycin nanoplatform for targeting the
drug-resistant bacterial surface. ACS Nano 7:214–228
Courtney CM, Goodman SM, McDaniel JA, Madinger NE, Chatterjee A, Nagpal P (2016)
Photoexcited quantum dots for killing multidrug-resistant bacteria. Nat Mater 15:529–534
Courtney CM et al (2017) Potentiating antibiotics in drug-resistant clinical isolates via stimuliactivated superoxide generation. Sci Adv 3:e1701776
Dakal TC, Kumar A, Majumdar RS, Yadav V (2016) Mechanistic basis of antimicrobial actions of
silver nanoparticles. Front Microbiol 7:1–17
Dallas P, Sharma VK, Zboril R (2011) Silver polymeric nanocomposites as advanced antimicrobial
agents: classification, synthetic paths, applications, and perspectives. Adv Colloid Interf Sci
166:119–135
Das B et al (2017a) Green synthesized silver nanoparticles destroy multidrug resistant bacteria via
reactive oxygen species mediated membrane damage. Arab J Chem 10:862–876
Das S, Sinha S, Das B, Jayabalan R, Suar M, Mishra A, Tamhankar AJ, Lundborg CS, Tripathy SK
(2017b) Disinfection of multidrug resistant Escherichia coli by solar photocatalysis using Fe
doped ZnO nanoparticles. Sci Rep 7:104
de Faria AF, Martinez DST, Meira SMM, de Moraes ACM, Brandelli A, Souza Filho AG, Alves
OL (2014) Anti-adhesion and antibacterial activity of silver nanoparticles supported on graphene oxide sheets. Colloids Surf B: Biointerfaces 113:115–124
de Oliveira JFA, Saito Â, Bido AT, Kobarg J, Stassen HK, Cardoso MB (2017) Defeating bacterial resistance and preventing mammalian cells toxicity through rational design of antibioticfunctionalized nanoparticles. Sci Rep 7:1–10
R. Sinha et al.
