170
Wang X, Zhou Z, Chen F (2017) Surface modification of carbon nanotubes with an enhanced
antifungal activity for the control of plant fungal pathogen. Materials 10:1–11. https://doi.
org/10.3390/ma10121375
Wong MS, Chen CW, Hsieh CC, Hung SC, Sun DS, Chang HH (2015) Antibacterial property
of Silver nanoparticle-impregnated N-doped titania films under visible light. Sci Rep 5:1–11
World Health Organization (2017) Global antimicrobial resistance surveillance system (GLASS)
report: early implementation 2016–2017. In: Global antimicrobial resistance surveillance system (GLASS) report: early implementation 2016–2017
Xue XY et al (2015) A potent and selective antimicrobial poly (amidoamine) dendrimer conjugate
with LED209 targeting QseC receptor to inhibit the virulence genes of gram negative bacteria.
Nanomedicine 11:329–339
Yamanaka M, Hara K, Kudo J (2005) Bactericidal actions of a silver ion solution on Escherichia
coli, studied by energy-filtering transmission electron microscopy and proteomic analysis.
Appl Environ Microbiol 71:7589–7593. https://doi.org/10.1128/aem.71.11.7589- 7593.2005
Yousefi M et al (2017) Anti-bacterial activity of graphene oxide as a new weapon nanomaterial to
combat multidrug-resistance bacteria. Mater Sci Eng C Mater Biol Appl 74:568–581. https://
doi.org/10.1016/j.msec.2016.12.125
Yu TJ, Li PH, Tseng TW, Chen YC (2011) Multifunctional Fe(3)O(4)/alumina core/shell MNPs as
photothermal agents for targeted hyperthermia of nosocomial and antibiotic-resistant bacteria.
Nanomedicine (London, England) 6:1353–1363. https://doi.org/10.2217/nnm.11.34
Yuan YG, Peng QL, Gurunathan S (2017) Silver nanoparticles enhance the apoptotic potential of
gemcitabine in human ovarian cancer cells: combination therapy for effective cancer treatment.
Int J Nanomedicine 12:6487–6502
Zhang L et al (2010) Mechanistic investigation into antibacterial behaviour of suspensions of Zinc
oxide nanoparticles against E. coli. J Nanopart Res 12:1625–1636
Zhang Y, Dai T, Wang M, Vecchio D, Chiang LY, Hamblin MR (2015) Potentiation of antimicrobial photodynamic inactivation mediated by a cationic fullerene by added iodide: in vitro and
in vivo studies. Nanomedicine 10:603–614
Zhang N et al (2016) Rapidly probing antibacterial activity of graphene oxide by mass spectrometrybased metabolite fingerprinting. Sci Rep 6:1–10
R. Sinha et al.
Wang X, Zhou Z, Chen F (2017) Surface modification of carbon nanotubes with an enhanced
antifungal activity for the control of plant fungal pathogen. Materials 10:1–11. https://doi.
org/10.3390/ma10121375
Wong MS, Chen CW, Hsieh CC, Hung SC, Sun DS, Chang HH (2015) Antibacterial property
of Silver nanoparticle-impregnated N-doped titania films under visible light. Sci Rep 5:1–11
World Health Organization (2017) Global antimicrobial resistance surveillance system (GLASS)
report: early implementation 2016–2017. In: Global antimicrobial resistance surveillance system (GLASS) report: early implementation 2016–2017
Xue XY et al (2015) A potent and selective antimicrobial poly (amidoamine) dendrimer conjugate
with LED209 targeting QseC receptor to inhibit the virulence genes of gram negative bacteria.
Nanomedicine 11:329–339
Yamanaka M, Hara K, Kudo J (2005) Bactericidal actions of a silver ion solution on Escherichia
coli, studied by energy-filtering transmission electron microscopy and proteomic analysis.
Appl Environ Microbiol 71:7589–7593. https://doi.org/10.1128/aem.71.11.7589- 7593.2005
Yousefi M et al (2017) Anti-bacterial activity of graphene oxide as a new weapon nanomaterial to
combat multidrug-resistance bacteria. Mater Sci Eng C Mater Biol Appl 74:568–581. https://
doi.org/10.1016/j.msec.2016.12.125
Yu TJ, Li PH, Tseng TW, Chen YC (2011) Multifunctional Fe(3)O(4)/alumina core/shell MNPs as
photothermal agents for targeted hyperthermia of nosocomial and antibiotic-resistant bacteria.
Nanomedicine (London, England) 6:1353–1363. https://doi.org/10.2217/nnm.11.34
Yuan YG, Peng QL, Gurunathan S (2017) Silver nanoparticles enhance the apoptotic potential of
gemcitabine in human ovarian cancer cells: combination therapy for effective cancer treatment.
Int J Nanomedicine 12:6487–6502
Zhang L et al (2010) Mechanistic investigation into antibacterial behaviour of suspensions of Zinc
oxide nanoparticles against E. coli. J Nanopart Res 12:1625–1636
Zhang Y, Dai T, Wang M, Vecchio D, Chiang LY, Hamblin MR (2015) Potentiation of antimicrobial photodynamic inactivation mediated by a cationic fullerene by added iodide: in vitro and
in vivo studies. Nanomedicine 10:603–614
Zhang N et al (2016) Rapidly probing antibacterial activity of graphene oxide by mass spectrometrybased metabolite fingerprinting. Sci Rep 6:1–10
R. Sinha et al.
