Topics in Current Chemistry (2020) 378:40
1 3
218. Li H, Yan K, Shang Y, Shrestha L, Liao R, Liu F, Li P, Xu H, Xu Z, Chu PK (2015) Folate-bovine
serum albumin functionalized polymeric micelles loaded with superparamagnetic iron oxide nanoparticles for tumor targeting and magnetic resonance imaging. Acta Biomater 15:117–126. https ://
doi.org/10.1016/j.actbi o.2015.01.006
219. Starmans LWE, Moonen RPM, Aussems-Custers E, Daemen MJAP, Strijkers GJ, Nicolay K, Grüll
H (2015) Evaluation of iron oxide nanoparticle micelles for magnetic particle imaging (MPI) of
thrombosis. PLoS ONE 10:3. https ://doi.org/10.1371/journ al.pone.01192 57
220. Xiao S, Castro R, Rodrigues J, Shi X, Tomá H (2014) PAMAM dendrimer/pDNA functionalizedmagnetic iron oxide nanoparticles for gene delivery. J Biomed Nanotechnol 11(8):1418–1430.
https ://doi.org/10.1166/jbn.2015.2101
221. Upponi JR, Jerajani K, Nagesha DK, Kulkarni P, Sridhar S, Ferris C, Torchilin VP (2018) Polymeric micelles: theranostic co-delivery system for poorly water-soluble drugs and contrast agents.
Biomaterials 170:26–36. https ://doi.org/10.1016/j.bioma teria ls.2018.03.054
222. Tsai CH, Tang YH, Chen HT, Yao YW, Chien TC, Kao CL (2018) A selective glucose sensor: the
cooperative effect of monoboronic acid-modified poly(amidoamine) dendrimers. Chem Commun
54(36):4577–4580. https ://doi.org/10.1039/c8cc0 0914g
223. Babamiri B, Hallaj R, Salimi A (2018) Ultrasensitive electrochemiluminescence immunoassay for
simultaneous determination of CA125 and CA15-3 tumor markers based on PAMAM-sulfanilic
acid-Ru(bpy)32+ and PAMAM-CdTe@CdS nanocomposite. Biosens Bioelectron 99:353–360.
https ://doi.org/10.1016/j.bios.2017.07.062
224. Wang G, Fu L, Walker A, Chen X, Lovejoy DB, Hao M, Lee A, Chung R, Rizos H, Irvine M,
Zheng M, Liu X, Lu Y, Shi B (2019) Label-free fluorescent poly(amidoamine) dendrimer for traceable and controlled drug delivery. Biomacromol 20(5):2148–2158. https ://doi.org/10.1021/acs.
bioma c.9b004 94
225. Najafi F, Salami-Kalajahi M, Roghani-Mamaqani H, Kahaie-Khosrowshahi A (2019) Effect of
grafting ratio of poly(propylene imine) dendrimer onto gold nanoparticles on the properties of colloidal hybrids, their DOX loading and release behavior and cytotoxicity. Colloids Surf B 178:500–
507. https ://doi.org/10.1016/j.colsu rfb.2019.03.050
226. Wang B, Sun Y, Davis TP, Ke PC, Wu Y, Ding F (2018) Understanding effects of PAMAM
dendrimer size and surface chemistry on serum protein binding with discrete molecular dynamics simulations. ACS Sustain Chem Eng 6(9):11704–11715. https ://doi.org/10.1021/acssu schem
eng.8b019 59
227. Tian F, Lin X, Valle RP, Zuo YY, Gu N (2019) Poly(amidoamine) dendrimer as a respiratory nanocarrier: insights from experiments and molecular dynamics simulations. Langmuir 35(15):5364–
5371. https ://doi.org/10.1021/acs.langm uir.9b004 34
228. Jędrzak A, Grześkowiak BF, Coy E, Wojnarowicz J, Szutkowski K, Jurga S, Jesionowski T,
Mrówczyński R (2019) Dendrimer based theranostic nanostructures for combined chemo- and
photothermal therapy of liver cancer cells in vitro. Colloids Surf B 173:698–708. https ://doi.
org/10.1016/j.colsu rfb.2018.10.045
229. Luong D, Sau S, Kesharwani P, Iyer AK (2017) Polyvalent Folate–Dendrimer-coated iron oxide
theranostic nanoparticles for simultaneous magnetic resonance imaging and precise cancer cell targeting. Biomacromol 18(4):1197–1209. https ://doi.org/10.1021/acs.bioma c.6b018 85
230. Shirmardi Shaghasemi B, Virk MM, Reimhult E (2017) Optimization of magneto-thermally controlled release kinetics by tuning of magnetoliposome composition and structure. Sci Rep 7:1. https
://doi.org/10.1038/s4159 8-017-06980 -9
231. German SV, Navolokin NA, Kuznetsova NR, Zuev VV, Inozemtseva OA, Anis’kov AA, Volkova
EK, Bucharskaya AB, Maslyakova GN, Fakhrullin RF, Terentyuk GS, Vodovozova EL, Gorin
DA (2015) Liposomes loaded with hydrophilic magnetite nanoparticles: preparation and application as contrast agents for magnetic resonance imaging. Colloids SurfB 135:109–115. https ://doi.
org/10.1016/j.colsu rfb.2015.07.042
232. Cuomo F, Cofelice M, Venditti F, Ceglie A, Miguel M, Lindman B, Lopez F (2018) In-vitro
digestion of curcumin loaded chitosan-coated liposomes. Colloids Surf B 168:29–34. https ://
doi.org/10.1016/j.colsu rfb.2017.11.047
233. Di Corato R, Béalle G, Kolosnjaj-Tabi J, Espinosa A, Clément O, Silva AKA, Ménager C, Wilhelm C (2015) Combining magnetic hyperthermia and photodynamic therapy for tumor ablation
with photoresponsive magnetic liposomes. ACS Nano 9(3):2904–2916. https ://doi.org/10.1021/
nn506 949t
86
Reprinted from the journal
1 3
218. Li H, Yan K, Shang Y, Shrestha L, Liao R, Liu F, Li P, Xu H, Xu Z, Chu PK (2015) Folate-bovine
serum albumin functionalized polymeric micelles loaded with superparamagnetic iron oxide nanoparticles for tumor targeting and magnetic resonance imaging. Acta Biomater 15:117–126. https ://
doi.org/10.1016/j.actbi o.2015.01.006
219. Starmans LWE, Moonen RPM, Aussems-Custers E, Daemen MJAP, Strijkers GJ, Nicolay K, Grüll
H (2015) Evaluation of iron oxide nanoparticle micelles for magnetic particle imaging (MPI) of
thrombosis. PLoS ONE 10:3. https ://doi.org/10.1371/journ al.pone.01192 57
220. Xiao S, Castro R, Rodrigues J, Shi X, Tomá H (2014) PAMAM dendrimer/pDNA functionalizedmagnetic iron oxide nanoparticles for gene delivery. J Biomed Nanotechnol 11(8):1418–1430.
https ://doi.org/10.1166/jbn.2015.2101
221. Upponi JR, Jerajani K, Nagesha DK, Kulkarni P, Sridhar S, Ferris C, Torchilin VP (2018) Polymeric micelles: theranostic co-delivery system for poorly water-soluble drugs and contrast agents.
Biomaterials 170:26–36. https ://doi.org/10.1016/j.bioma teria ls.2018.03.054
222. Tsai CH, Tang YH, Chen HT, Yao YW, Chien TC, Kao CL (2018) A selective glucose sensor: the
cooperative effect of monoboronic acid-modified poly(amidoamine) dendrimers. Chem Commun
54(36):4577–4580. https ://doi.org/10.1039/c8cc0 0914g
223. Babamiri B, Hallaj R, Salimi A (2018) Ultrasensitive electrochemiluminescence immunoassay for
simultaneous determination of CA125 and CA15-3 tumor markers based on PAMAM-sulfanilic
acid-Ru(bpy)32+ and PAMAM-CdTe@CdS nanocomposite. Biosens Bioelectron 99:353–360.
https ://doi.org/10.1016/j.bios.2017.07.062
224. Wang G, Fu L, Walker A, Chen X, Lovejoy DB, Hao M, Lee A, Chung R, Rizos H, Irvine M,
Zheng M, Liu X, Lu Y, Shi B (2019) Label-free fluorescent poly(amidoamine) dendrimer for traceable and controlled drug delivery. Biomacromol 20(5):2148–2158. https ://doi.org/10.1021/acs.
bioma c.9b004 94
225. Najafi F, Salami-Kalajahi M, Roghani-Mamaqani H, Kahaie-Khosrowshahi A (2019) Effect of
grafting ratio of poly(propylene imine) dendrimer onto gold nanoparticles on the properties of colloidal hybrids, their DOX loading and release behavior and cytotoxicity. Colloids Surf B 178:500–
507. https ://doi.org/10.1016/j.colsu rfb.2019.03.050
226. Wang B, Sun Y, Davis TP, Ke PC, Wu Y, Ding F (2018) Understanding effects of PAMAM
dendrimer size and surface chemistry on serum protein binding with discrete molecular dynamics simulations. ACS Sustain Chem Eng 6(9):11704–11715. https ://doi.org/10.1021/acssu schem
eng.8b019 59
227. Tian F, Lin X, Valle RP, Zuo YY, Gu N (2019) Poly(amidoamine) dendrimer as a respiratory nanocarrier: insights from experiments and molecular dynamics simulations. Langmuir 35(15):5364–
5371. https ://doi.org/10.1021/acs.langm uir.9b004 34
228. Jędrzak A, Grześkowiak BF, Coy E, Wojnarowicz J, Szutkowski K, Jurga S, Jesionowski T,
Mrówczyński R (2019) Dendrimer based theranostic nanostructures for combined chemo- and
photothermal therapy of liver cancer cells in vitro. Colloids Surf B 173:698–708. https ://doi.
org/10.1016/j.colsu rfb.2018.10.045
229. Luong D, Sau S, Kesharwani P, Iyer AK (2017) Polyvalent Folate–Dendrimer-coated iron oxide
theranostic nanoparticles for simultaneous magnetic resonance imaging and precise cancer cell targeting. Biomacromol 18(4):1197–1209. https ://doi.org/10.1021/acs.bioma c.6b018 85
230. Shirmardi Shaghasemi B, Virk MM, Reimhult E (2017) Optimization of magneto-thermally controlled release kinetics by tuning of magnetoliposome composition and structure. Sci Rep 7:1. https
://doi.org/10.1038/s4159 8-017-06980 -9
231. German SV, Navolokin NA, Kuznetsova NR, Zuev VV, Inozemtseva OA, Anis’kov AA, Volkova
EK, Bucharskaya AB, Maslyakova GN, Fakhrullin RF, Terentyuk GS, Vodovozova EL, Gorin
DA (2015) Liposomes loaded with hydrophilic magnetite nanoparticles: preparation and application as contrast agents for magnetic resonance imaging. Colloids SurfB 135:109–115. https ://doi.
org/10.1016/j.colsu rfb.2015.07.042
232. Cuomo F, Cofelice M, Venditti F, Ceglie A, Miguel M, Lindman B, Lopez F (2018) In-vitro
digestion of curcumin loaded chitosan-coated liposomes. Colloids Surf B 168:29–34. https ://
doi.org/10.1016/j.colsu rfb.2017.11.047
233. Di Corato R, Béalle G, Kolosnjaj-Tabi J, Espinosa A, Clément O, Silva AKA, Ménager C, Wilhelm C (2015) Combining magnetic hyperthermia and photodynamic therapy for tumor ablation
with photoresponsive magnetic liposomes. ACS Nano 9(3):2904–2916. https ://doi.org/10.1021/
nn506 949t
86
Reprinted from the journal
