1 3
Topics in Current Chemistry (2020) 378:12
146. Abradelo DG, Cao R, Schlecht S (2013) One-to-one laccase-gold nanoparticle conjugates: molecular recognition and activity enhancement. RSC Adv 3:21461–21465. https ://doi.org/10.1039/c3ra4
3192d
147. Antuch M, Abradelo DG, Cao R (2014) Bioelectrocatalytic reduction of O 2 at a supramolecularly
associated laccase electrode. New J Chem 38:386–390. https ://doi.org/10.1039/c3nj0 1143g
148. Johnsen KB, Bak M, Kempen PJ et al (2018) Antibody affinity and valency impact brain uptake
of transferrin receptor-targeted gold nanoparticles. Theranostics 8:3416–3436. https ://doi.
org/10.7150/thno.25228
149. Villegas-Serralta E, Zavala O, Flores-Urquizo IA et al (2018) Detection of HER2 through antibody
immobilization is influenced by the properties of the magnetite nanoparticle coating. J Nanomater
2018:1–9. https ://doi.org/10.1155/2018/75716 13
150. Mustafaoglu N, Kiziltepe T, Bilgicer B (2017) Site-specific conjugation of an antibody on a gold
nanoparticle surface for one-step diagnosis of prostate specific antigen with dynamic light scattering. Nanoscale 9:8684–8694. https ://doi.org/10.1039/c7nr0 3096g
151. Presnova G, Presnov D, Krupenin V et al (2017) Biosensor based on a silicon nanowire field-effect
transistor functionalized by gold nanoparticles for the highly sensitive determination of prostate
specific antigen. Biosens Bioelectron 88:283–289. https ://doi.org/10.1016/j.bios.2016.08.054
152. Peterson RD, Chen W, Cunningham BT, Andrade JE (2015) Enhanced sandwich immunoassay
using antibody-functionalized magnetic iron-oxide nanoparticles for extraction and detection of
soluble transferrin receptor on a photonic crystal biosensor. Biosens Bioelectron 74:815–822. https
://doi.org/10.1016/j.bios.2015.07.050
153. Denison MIJ, Raman S, Duraisamy N et al (2015) Preparation, characterization and application
of antibody-conjugated magnetic nanoparticles in the purification of begomovirus. RSC Adv
5:99820–99831. https ://doi.org/10.1039/c5ra1 7982c
154. Treerattrakoon K, Chanthima W, Apiwat C et al (2017) Oriented conjugation of antibodies against
the epithelial cell adhesion molecule on fluorescently doped silica nanoparticles for flow-cytometric determination and in vivo imaging of EpCAM, a biomarker for colorectal cancer. Microchim
Acta 184:1941–1950. https ://doi.org/10.1007/s0060 4-017-2211-6
155. Santra S, Kaittanis C, Grimm J, Perez JM (2009) Drug/dye-loaded, multifunctional iron oxide
nanoparticles for combined targeted cancer therapy and dual optical/magnetic resonance imaging.
Small 5:1862–1868. https ://doi.org/10.1002/smll.20090 0389
156. Jain AK, Thanki K, Jain S (2013) Co-encapsulation of tamoxifen and quercetin in polymeric nanoparticles: implications on oral bioavailability, antitumor efficacy, and drug-induced toxicity. Mol
Pharm 10:3459–3474. https ://doi.org/10.1021/mp400 311j
157. Granata G, Stracquadanio S, Leonardi M et al (2018) Essential oils encapsulated in polymer-based
nanocapsules as potential candidates for application in food preservation. Food Chem 269:286–
292. https ://doi.org/10.1016/j.foodc hem.2018.06.140
158. Bravo Cadena M, Preston GM, Van der Hoorn RAL et al (2018) Species-specific antimicrobial
activity of essential oils and enhancement by encapsulation in mesoporous silica nanoparticles. Ind
Crops Prod 122:582–590. https ://doi.org/10.1016/j.indcr op.2018.05.081
159. Liakos IL, Iordache F, Carzino R et al (2018) Cellulose acetate—essential oil nanocapsules with
antimicrobial activity for biomedical applications. Coll Surf B Biointerfaces 172:471–479. https ://
doi.org/10.1016/j.colsu rfb.2018.08.069
160. Hossain F, Follett P, Vu KD et al (2019) Antifungal activity of combined treatments of active
methylcellulose-based films containing encapsulated nanoemulsion of essential oils and γ–irradiation: in vitro and in situ evaluations. Cellulose 26:1335–1354. https ://doi.org/10.1007/s1057
0-018-2135-2
161. Chu Y, Xu T, Gao CC et al (2019) Evaluations of physicochemical and biological properties of
pullulan-based films incorporated with cinnamon essential oil and Tween 80. Int J Biol Macromol
122:388–394. https ://doi.org/10.1016/j.ijbio mac.2018.10.194
162. Risaliti L, Kehagia A, Daoultzi E et al (2019) Liposomes loaded with Salvia triloba and Rosmarinus officinalis essential oils: in vitro assessment of antioxidant, antiinflammatory and antibacterial
activities. J Drug Deliv Sci Technol 51:493–498. https ://doi.org/10.1016/j.jddst .2019.03.034
163. Park SJ, Garcia CV, Shin GH, Kim JT (2017) Development of nanostructured lipid carriers for
the encapsulation and controlled release of vitamin D3. Food Chem 225:213–219. https ://doi.
org/10.1016/j.foodc hem.2017.01.015
127
Reprinted from the journal
Topics in Current Chemistry (2020) 378:12
146. Abradelo DG, Cao R, Schlecht S (2013) One-to-one laccase-gold nanoparticle conjugates: molecular recognition and activity enhancement. RSC Adv 3:21461–21465. https ://doi.org/10.1039/c3ra4
3192d
147. Antuch M, Abradelo DG, Cao R (2014) Bioelectrocatalytic reduction of O 2 at a supramolecularly
associated laccase electrode. New J Chem 38:386–390. https ://doi.org/10.1039/c3nj0 1143g
148. Johnsen KB, Bak M, Kempen PJ et al (2018) Antibody affinity and valency impact brain uptake
of transferrin receptor-targeted gold nanoparticles. Theranostics 8:3416–3436. https ://doi.
org/10.7150/thno.25228
149. Villegas-Serralta E, Zavala O, Flores-Urquizo IA et al (2018) Detection of HER2 through antibody
immobilization is influenced by the properties of the magnetite nanoparticle coating. J Nanomater
2018:1–9. https ://doi.org/10.1155/2018/75716 13
150. Mustafaoglu N, Kiziltepe T, Bilgicer B (2017) Site-specific conjugation of an antibody on a gold
nanoparticle surface for one-step diagnosis of prostate specific antigen with dynamic light scattering. Nanoscale 9:8684–8694. https ://doi.org/10.1039/c7nr0 3096g
151. Presnova G, Presnov D, Krupenin V et al (2017) Biosensor based on a silicon nanowire field-effect
transistor functionalized by gold nanoparticles for the highly sensitive determination of prostate
specific antigen. Biosens Bioelectron 88:283–289. https ://doi.org/10.1016/j.bios.2016.08.054
152. Peterson RD, Chen W, Cunningham BT, Andrade JE (2015) Enhanced sandwich immunoassay
using antibody-functionalized magnetic iron-oxide nanoparticles for extraction and detection of
soluble transferrin receptor on a photonic crystal biosensor. Biosens Bioelectron 74:815–822. https
://doi.org/10.1016/j.bios.2015.07.050
153. Denison MIJ, Raman S, Duraisamy N et al (2015) Preparation, characterization and application
of antibody-conjugated magnetic nanoparticles in the purification of begomovirus. RSC Adv
5:99820–99831. https ://doi.org/10.1039/c5ra1 7982c
154. Treerattrakoon K, Chanthima W, Apiwat C et al (2017) Oriented conjugation of antibodies against
the epithelial cell adhesion molecule on fluorescently doped silica nanoparticles for flow-cytometric determination and in vivo imaging of EpCAM, a biomarker for colorectal cancer. Microchim
Acta 184:1941–1950. https ://doi.org/10.1007/s0060 4-017-2211-6
155. Santra S, Kaittanis C, Grimm J, Perez JM (2009) Drug/dye-loaded, multifunctional iron oxide
nanoparticles for combined targeted cancer therapy and dual optical/magnetic resonance imaging.
Small 5:1862–1868. https ://doi.org/10.1002/smll.20090 0389
156. Jain AK, Thanki K, Jain S (2013) Co-encapsulation of tamoxifen and quercetin in polymeric nanoparticles: implications on oral bioavailability, antitumor efficacy, and drug-induced toxicity. Mol
Pharm 10:3459–3474. https ://doi.org/10.1021/mp400 311j
157. Granata G, Stracquadanio S, Leonardi M et al (2018) Essential oils encapsulated in polymer-based
nanocapsules as potential candidates for application in food preservation. Food Chem 269:286–
292. https ://doi.org/10.1016/j.foodc hem.2018.06.140
158. Bravo Cadena M, Preston GM, Van der Hoorn RAL et al (2018) Species-specific antimicrobial
activity of essential oils and enhancement by encapsulation in mesoporous silica nanoparticles. Ind
Crops Prod 122:582–590. https ://doi.org/10.1016/j.indcr op.2018.05.081
159. Liakos IL, Iordache F, Carzino R et al (2018) Cellulose acetate—essential oil nanocapsules with
antimicrobial activity for biomedical applications. Coll Surf B Biointerfaces 172:471–479. https ://
doi.org/10.1016/j.colsu rfb.2018.08.069
160. Hossain F, Follett P, Vu KD et al (2019) Antifungal activity of combined treatments of active
methylcellulose-based films containing encapsulated nanoemulsion of essential oils and γ–irradiation: in vitro and in situ evaluations. Cellulose 26:1335–1354. https ://doi.org/10.1007/s1057
0-018-2135-2
161. Chu Y, Xu T, Gao CC et al (2019) Evaluations of physicochemical and biological properties of
pullulan-based films incorporated with cinnamon essential oil and Tween 80. Int J Biol Macromol
122:388–394. https ://doi.org/10.1016/j.ijbio mac.2018.10.194
162. Risaliti L, Kehagia A, Daoultzi E et al (2019) Liposomes loaded with Salvia triloba and Rosmarinus officinalis essential oils: in vitro assessment of antioxidant, antiinflammatory and antibacterial
activities. J Drug Deliv Sci Technol 51:493–498. https ://doi.org/10.1016/j.jddst .2019.03.034
163. Park SJ, Garcia CV, Shin GH, Kim JT (2017) Development of nanostructured lipid carriers for
the encapsulation and controlled release of vitamin D3. Food Chem 225:213–219. https ://doi.
org/10.1016/j.foodc hem.2017.01.015
127
Reprinted from the journal
