Topics in Current Chemistry (2020) 378:8
1 3
5. Burduşel A-C, Gherasim O, Grumezescu AM et al (2018) Biomedical applications of silver nanoparticles: an up-to-date overview. Nanomaterials 8:681. https ://doi.org/10.3390/nano8 09068 1
6. Woehrle GH, Brown LO, Hutchison JE (2005) Thiol-functionalized, 1.5-nm gold nanoparticles
through ligand exchange reactions: scope and mechanism of ligand exchange. J Am Chem Soc
127:2172–2183. https ://doi.org/10.1021/ja045 7718
7. Alba-Molina D, Puente Santiago AR, Giner-Casares JJ et al (2019) Tailoring the ORR and HER
electrocatalytic performances of gold nanoparticles through metal–ligand interfaces. J Mater Chem
A 7:20425–20434. https ://doi.org/10.1039/C9TA0 5492H
8. Berry V, Saraf RF (2005) Self-assembly of nanoparticles on live bacterium: an avenue to fabricate
electronic devices. Angew Chemie Int Ed 44:6668–6673. https ://doi.org/10.1002/anie.20050 1711
9. Chen Y-S, Hong M-Y, Huang GS (2012) A protein transistor made of an antibody molecule and two
gold nanoparticles. Nat Nanotechnol 7:197–203. https ://doi.org/10.1038/nnano .2012.7
10. Alba-Molina D, Rodriguez-Padron D, Puente Santiago ARR et al (2018) Mimicking the bioelectrocatalytic function of recombinant CotA laccase via electrostatically self-assembled nanobioconjugates. Nanoscale. https ://doi.org/10.1039/C8NR0 6001K
11. Alba-Molina D, Puente Santiago AR, Giner-Casares JJ et al (2019) Citrate-stabilized gold nanoparticles as high-performance electrocatalysts: the role of size in the electroreduction of oxygen. J Phys
Chem C 123:9807–9812. https ://doi.org/10.1021/acs.jpcc.9b002 49
12. Upadhyayula VKK (2012) Functionalized gold nanoparticle supported sensory mechanisms applied
in detection of chemical and biological threat agents: a review. Anal Chim Acta 715:1–18. https ://
doi.org/10.1016/j.aca.2011.12.008
13. Draz MS, Shafiee H (2018) Applications of gold nanoparticles in virus detection. Theranostics
8:1985–2017. https ://doi.org/10.7150/thno.23856
14. Huang X, El-Sayed MA (2010) Gold nanoparticles: optical properties and implementations
in cancer diagnosis and photothermal therapy. J Adv Res 1:13–28. https ://doi.org/10.1016/j.
jare.2010.02.002
15. Vines JB, Yoon J-H, Ryu N-E et al (2019) Gold nanoparticles for photothermal cancer therapy.
Front Chem 7:167. https ://doi.org/10.3389/fchem .2019.00167
16. Dreaden EC, Austin LA, Mackey MA, El-Sayed MA (2012) Size matters: gold nanoparticles in targeted cancer drug delivery. Ther Deliv 3:457–478. https ://doi.org/10.4155/tde.12.21
17. Farooq MU, Novosad V, Rozhkova EA et al (2018) Gold nanoparticles-enabled efficient dual delivery of anticancer therapeutics to HeLa cells. Sci Rep 8:2907. https ://doi.org/10.1038/s4159 8-01821331 -y
18. Cole LE, Ross RD, Tilley JM et al (2015) Gold nanoparticles as contrast agents in x-ray imaging
and computed tomography. Nanomedicine 10:321–341. https ://doi.org/10.2217/nnm.14.171
19. Mahan MM, Doiron AL (2018) Gold nanoparticles as X-ray, CT, and multimodal imaging contrast agents: formulation, targeting, and methodology. J Nanomater 2018:1–15. https ://doi.
org/10.1155/2018/58372 76
20. Gong P, Li H, He X et al (2007) Preparation and antibacterial activity of Fe 3 O 4 @Ag nanoparticles.
Nanotechnology 18:285604. https ://doi.org/10.1088/0957-4484/18/28/28560 4
21. Durán N, Durán M, de Jesus MB et al (2016) Silver nanoparticles: a new view on mechanistic aspects on antimicrobial activity. Nanomed Nanotechnol Biol Med 12:789–799. https ://doi.
org/10.1016/j.nano.2015.11.016
22. Samberg ME, Oldenburg SJ, Monteiro-Riviere NA (2010) Evaluation of silver nanoparticle toxicity in skin in vivo and keratinocytes in vitro. Environ Health Perspect 118:407–413. https ://doi.
org/10.1289/ehp.09013 98
23. Brandt O, Mildner M, Egger AE et al (2012) Nanoscalic silver possesses broad-spectrum antimicrobial activities and exhibits fewer toxicological side effects than silver sulfadiazine. Nanomed Nanotechnol Biol Med 8:478–488. https ://doi.org/10.1016/j.nano.2011.07.005
24. Pegoraro C, MacNeil S, Battaglia G (2012) Transdermal drug delivery: from micro to nano.
Nanoscale 4:1881. https ://doi.org/10.1039/c2nr1 1606e
25. Amjadi M, Mostaghaci B, Sitti M (2017) Recent advances in skin penetration enhancers for transdermal gene and drug delivery. Curr Gene Ther 17:139–146. https ://doi.org/10.2174/15665 23217
66617 05101 51540
26. Prausnitz MR, Mitragotri S, Langer R (2004) Current status and future potential of transdermal drug
delivery. Nat Rev Drug Discov 3:115–124. https ://doi.org/10.1038/nrd13 04
27. Patzelt A, Lademann J (2013) Drug delivery to hair follicles. Expert Opin Drug Deliv 10:787–797.
https ://doi.org/10.1517/17425 247.2013.77603 8
232
Reprinted from the journal
1 3
5. Burduşel A-C, Gherasim O, Grumezescu AM et al (2018) Biomedical applications of silver nanoparticles: an up-to-date overview. Nanomaterials 8:681. https ://doi.org/10.3390/nano8 09068 1
6. Woehrle GH, Brown LO, Hutchison JE (2005) Thiol-functionalized, 1.5-nm gold nanoparticles
through ligand exchange reactions: scope and mechanism of ligand exchange. J Am Chem Soc
127:2172–2183. https ://doi.org/10.1021/ja045 7718
7. Alba-Molina D, Puente Santiago AR, Giner-Casares JJ et al (2019) Tailoring the ORR and HER
electrocatalytic performances of gold nanoparticles through metal–ligand interfaces. J Mater Chem
A 7:20425–20434. https ://doi.org/10.1039/C9TA0 5492H
8. Berry V, Saraf RF (2005) Self-assembly of nanoparticles on live bacterium: an avenue to fabricate
electronic devices. Angew Chemie Int Ed 44:6668–6673. https ://doi.org/10.1002/anie.20050 1711
9. Chen Y-S, Hong M-Y, Huang GS (2012) A protein transistor made of an antibody molecule and two
gold nanoparticles. Nat Nanotechnol 7:197–203. https ://doi.org/10.1038/nnano .2012.7
10. Alba-Molina D, Rodriguez-Padron D, Puente Santiago ARR et al (2018) Mimicking the bioelectrocatalytic function of recombinant CotA laccase via electrostatically self-assembled nanobioconjugates. Nanoscale. https ://doi.org/10.1039/C8NR0 6001K
11. Alba-Molina D, Puente Santiago AR, Giner-Casares JJ et al (2019) Citrate-stabilized gold nanoparticles as high-performance electrocatalysts: the role of size in the electroreduction of oxygen. J Phys
Chem C 123:9807–9812. https ://doi.org/10.1021/acs.jpcc.9b002 49
12. Upadhyayula VKK (2012) Functionalized gold nanoparticle supported sensory mechanisms applied
in detection of chemical and biological threat agents: a review. Anal Chim Acta 715:1–18. https ://
doi.org/10.1016/j.aca.2011.12.008
13. Draz MS, Shafiee H (2018) Applications of gold nanoparticles in virus detection. Theranostics
8:1985–2017. https ://doi.org/10.7150/thno.23856
14. Huang X, El-Sayed MA (2010) Gold nanoparticles: optical properties and implementations
in cancer diagnosis and photothermal therapy. J Adv Res 1:13–28. https ://doi.org/10.1016/j.
jare.2010.02.002
15. Vines JB, Yoon J-H, Ryu N-E et al (2019) Gold nanoparticles for photothermal cancer therapy.
Front Chem 7:167. https ://doi.org/10.3389/fchem .2019.00167
16. Dreaden EC, Austin LA, Mackey MA, El-Sayed MA (2012) Size matters: gold nanoparticles in targeted cancer drug delivery. Ther Deliv 3:457–478. https ://doi.org/10.4155/tde.12.21
17. Farooq MU, Novosad V, Rozhkova EA et al (2018) Gold nanoparticles-enabled efficient dual delivery of anticancer therapeutics to HeLa cells. Sci Rep 8:2907. https ://doi.org/10.1038/s4159 8-01821331 -y
18. Cole LE, Ross RD, Tilley JM et al (2015) Gold nanoparticles as contrast agents in x-ray imaging
and computed tomography. Nanomedicine 10:321–341. https ://doi.org/10.2217/nnm.14.171
19. Mahan MM, Doiron AL (2018) Gold nanoparticles as X-ray, CT, and multimodal imaging contrast agents: formulation, targeting, and methodology. J Nanomater 2018:1–15. https ://doi.
org/10.1155/2018/58372 76
20. Gong P, Li H, He X et al (2007) Preparation and antibacterial activity of Fe 3 O 4 @Ag nanoparticles.
Nanotechnology 18:285604. https ://doi.org/10.1088/0957-4484/18/28/28560 4
21. Durán N, Durán M, de Jesus MB et al (2016) Silver nanoparticles: a new view on mechanistic aspects on antimicrobial activity. Nanomed Nanotechnol Biol Med 12:789–799. https ://doi.
org/10.1016/j.nano.2015.11.016
22. Samberg ME, Oldenburg SJ, Monteiro-Riviere NA (2010) Evaluation of silver nanoparticle toxicity in skin in vivo and keratinocytes in vitro. Environ Health Perspect 118:407–413. https ://doi.
org/10.1289/ehp.09013 98
23. Brandt O, Mildner M, Egger AE et al (2012) Nanoscalic silver possesses broad-spectrum antimicrobial activities and exhibits fewer toxicological side effects than silver sulfadiazine. Nanomed Nanotechnol Biol Med 8:478–488. https ://doi.org/10.1016/j.nano.2011.07.005
24. Pegoraro C, MacNeil S, Battaglia G (2012) Transdermal drug delivery: from micro to nano.
Nanoscale 4:1881. https ://doi.org/10.1039/c2nr1 1606e
25. Amjadi M, Mostaghaci B, Sitti M (2017) Recent advances in skin penetration enhancers for transdermal gene and drug delivery. Curr Gene Ther 17:139–146. https ://doi.org/10.2174/15665 23217
66617 05101 51540
26. Prausnitz MR, Mitragotri S, Langer R (2004) Current status and future potential of transdermal drug
delivery. Nat Rev Drug Discov 3:115–124. https ://doi.org/10.1038/nrd13 04
27. Patzelt A, Lademann J (2013) Drug delivery to hair follicles. Expert Opin Drug Deliv 10:787–797.
https ://doi.org/10.1517/17425 247.2013.77603 8
232
Reprinted from the journal
