Topics in Current Chemistry (2020) 378:15
1 3
168. Kam NWS, Liu Z, Dai H (2005) Functionalization of carbon nanotubes via cleavable disulfide
bonds for efficient intracellular delivery of siRNA and potent gene silencing. J Am Chem Soc
127(36):12492–12493. https ://doi.org/10.1021/ja053 962k
169. Taghavi S, Nia AH, Abnous K, Ramezani M (2017) Polyethylenimine-functionalized carbon nanotubes tagged with AS1411 aptamer for combination gene and drug delivery into human gastric
cancer cells. Int J Pharm 516(1):301–312. https ://doi.org/10.1016/j.ijpha rm.2016.11.027
170. Guo C, Al-Jamal WT, Toma FM, Bianco A, Prato M, Al-Jamal KT, Kostarelos K (2015) Design of
cationic multiwalled carbon nanotubes as efficient siRNA vectors for lung cancer xenograft eradication. Bioconjug Chem 26(7):1370–1379. https ://doi.org/10.1021/acs.bioco njche m.5b002 49
171. Foldvari M, Bagonluri M (2008) Carbon nanotubes as functional excipients for nanomedicines: II.
Drug delivery and biocompatibility issues. Nanomedicine Nanotechnol Biol Med 4(3):183–200.
https ://doi.org/10.1016/j.nano.2008.04.003
172. Son KH, Hong JH, Lee JW (2016) Carbon nanotubes as cancer therapeutic carriers and mediators.
Int J Nanomed 11:5163–5185. https ://doi.org/10.2147/IJN.S1126 60
173. Guo Q, Shen XT, Li YY, Xu SQ (2017) Carbon nanotubes-based drug delivery to cancer and brain.
J Huazhong Univ Sci Technol Med Sci 37(5):635–641. https ://doi.org/10.1007/s1159 6-017-1783-z
174. Moon HK, Lee SH, Choi HC (2009) In vivo near-infrared mediated tumor destruction by photothermal effect of carbon nanotubes. ACS Nano 3(11):3707–3713. https ://doi.org/10.1021/nn900
904h
175. Needa AV, Carole D, Patrick M, Paul H, Robert EH, Joel S, Ricardo PS, Daniel ER, Roger GH
(2018) Phosphatidylserine targeted single-walled carbon nanotubes for photothermal ablation of
bladder cancer. Nanotechnology 29(3):035101
176. Shiue RJ, Gao Y, Tan C, Peng C, Zheng J, Efetov DK, Kim YD, Hone J, Englund D (2019) Thermal radiation control from hot graphene electrons coupled to a photonic crystal nanocavity. Nat
Commun 10(1):109. https ://doi.org/10.1038/s4146 7-018-08047 -3
177. Xu Y, Shan Y, Cong H, Shen Y, Yu B (2018) Advanced carbon-based nanoplatforms combining
drug delivery and thermal therapy for cancer treatment. Curr Pharm Des 24(34):4060–4076. https
://doi.org/10.2174/13816 12825 66618 11201 60959
178. Wang L, Shi J, Zhang H, Li H, Gao Y, Wang Z, Wang H, Li L, Zhang C, Chen C, Zhang Z, Zhang
Y (2013) Synergistic anticancer effect of RNAi and photothermal therapy mediated by functionalized single-walled carbon nanotubes. Biomaterials 34(1):262–274. https ://doi.org/10.1016/j.bioma
teria ls.2012.09.037
179. Kafa H, Wang JT-W, Rubio N, Venner K, Anderson G, Pach E, Ballesteros B, Preston JE, Abbott
NJ, Al-Jamal KT (2015) The interaction of carbon nanotubes with an in vitro blood-brain barrier model and mouse brain in vivo. Biomaterials 53:437–452. https ://doi.org/10.1016/j.bioma teria
ls.2015.02.083
180. Kafa H, Wang JT-W, Rubio N, Klippstein R, Costa PM, Hassan HAFM, Sosabowski JK, Bansal
SS, Preston JE, Abbott NJ, Al-Jamal KT (2016) Translocation of LRP1 targeted carbon nanotubes of different diameters across the blood–brain barrier in vitro and in vivo. J Control Release
225:217–229. https ://doi.org/10.1016/j.jconr el.2016.01.031
181. Wang JTW, Rubio N, Kafa H, Venturelli E, Fabbro C, Ménard-Moyon C, Da Ros T, Sosabowski
JK, Lawson AD, Robinson MK, Prato M, Bianco A, Festy F, Preston JE, Kostarelos K, Al-Jamal
KT (2016) Kinetics of functionalised carbon nanotube distribution in mouse brain after systemic injection: spatial to ultra-structural analyses. J Control Release 224:22–32. https ://doi.
org/10.1016/j.jconr el.2015.12.039
182. Pedro Miguel Costa JT-WW, Morfin Jean-François, Khanum Tamanna, To Wan, Sosabowski Jane,
Tóth Eva, Al-Jamal Khuloud T (2018) Functionalised carbon nanotubes enhance brain delivery of
amyloid-targeting Pittsburgh compound B (PiB)-derived ligands. Nanotheranostics 2(2):168–183.
https ://doi.org/10.7150/ntno.23125
183. Lohan S, Raza K, Mehta SK, Bhatti GK, Saini S, Singh B (2017) Anti-Alzheimer’s potential of
berberine using surface decorated multi-walled carbon nanotubes: a preclinical evidence. Int J
Pharm 530(1):263–278. https ://doi.org/10.1016/j.ijpha rm.2017.07.080
184. Hassanzadeh P, Arbabi E, Atyabi F, Dinarvand R (2017) Nerve growth factor-carbon nanotube
complex exerts prolonged protective effects in an in vitro model of ischemic stroke. Life Sci
179:15–22. https ://doi.org/10.1016/j.lfs.2016.11.029
185. Fiorito S, Russier J, Salemme A, Soligo M, Manni L, Krasnowska E, Bonnamy S, Flahaut E, Serafino A, Togna GI, Marlier LNJL, Togna AR (2018) Switching on microglia with electro-conductive
multi walled carbon nanotubes. Carbon 129:572–584. https ://doi.org/10.1016/j.carbo n.2017.12.069
214
Reprinted from the journal
1 3
168. Kam NWS, Liu Z, Dai H (2005) Functionalization of carbon nanotubes via cleavable disulfide
bonds for efficient intracellular delivery of siRNA and potent gene silencing. J Am Chem Soc
127(36):12492–12493. https ://doi.org/10.1021/ja053 962k
169. Taghavi S, Nia AH, Abnous K, Ramezani M (2017) Polyethylenimine-functionalized carbon nanotubes tagged with AS1411 aptamer for combination gene and drug delivery into human gastric
cancer cells. Int J Pharm 516(1):301–312. https ://doi.org/10.1016/j.ijpha rm.2016.11.027
170. Guo C, Al-Jamal WT, Toma FM, Bianco A, Prato M, Al-Jamal KT, Kostarelos K (2015) Design of
cationic multiwalled carbon nanotubes as efficient siRNA vectors for lung cancer xenograft eradication. Bioconjug Chem 26(7):1370–1379. https ://doi.org/10.1021/acs.bioco njche m.5b002 49
171. Foldvari M, Bagonluri M (2008) Carbon nanotubes as functional excipients for nanomedicines: II.
Drug delivery and biocompatibility issues. Nanomedicine Nanotechnol Biol Med 4(3):183–200.
https ://doi.org/10.1016/j.nano.2008.04.003
172. Son KH, Hong JH, Lee JW (2016) Carbon nanotubes as cancer therapeutic carriers and mediators.
Int J Nanomed 11:5163–5185. https ://doi.org/10.2147/IJN.S1126 60
173. Guo Q, Shen XT, Li YY, Xu SQ (2017) Carbon nanotubes-based drug delivery to cancer and brain.
J Huazhong Univ Sci Technol Med Sci 37(5):635–641. https ://doi.org/10.1007/s1159 6-017-1783-z
174. Moon HK, Lee SH, Choi HC (2009) In vivo near-infrared mediated tumor destruction by photothermal effect of carbon nanotubes. ACS Nano 3(11):3707–3713. https ://doi.org/10.1021/nn900
904h
175. Needa AV, Carole D, Patrick M, Paul H, Robert EH, Joel S, Ricardo PS, Daniel ER, Roger GH
(2018) Phosphatidylserine targeted single-walled carbon nanotubes for photothermal ablation of
bladder cancer. Nanotechnology 29(3):035101
176. Shiue RJ, Gao Y, Tan C, Peng C, Zheng J, Efetov DK, Kim YD, Hone J, Englund D (2019) Thermal radiation control from hot graphene electrons coupled to a photonic crystal nanocavity. Nat
Commun 10(1):109. https ://doi.org/10.1038/s4146 7-018-08047 -3
177. Xu Y, Shan Y, Cong H, Shen Y, Yu B (2018) Advanced carbon-based nanoplatforms combining
drug delivery and thermal therapy for cancer treatment. Curr Pharm Des 24(34):4060–4076. https
://doi.org/10.2174/13816 12825 66618 11201 60959
178. Wang L, Shi J, Zhang H, Li H, Gao Y, Wang Z, Wang H, Li L, Zhang C, Chen C, Zhang Z, Zhang
Y (2013) Synergistic anticancer effect of RNAi and photothermal therapy mediated by functionalized single-walled carbon nanotubes. Biomaterials 34(1):262–274. https ://doi.org/10.1016/j.bioma
teria ls.2012.09.037
179. Kafa H, Wang JT-W, Rubio N, Venner K, Anderson G, Pach E, Ballesteros B, Preston JE, Abbott
NJ, Al-Jamal KT (2015) The interaction of carbon nanotubes with an in vitro blood-brain barrier model and mouse brain in vivo. Biomaterials 53:437–452. https ://doi.org/10.1016/j.bioma teria
ls.2015.02.083
180. Kafa H, Wang JT-W, Rubio N, Klippstein R, Costa PM, Hassan HAFM, Sosabowski JK, Bansal
SS, Preston JE, Abbott NJ, Al-Jamal KT (2016) Translocation of LRP1 targeted carbon nanotubes of different diameters across the blood–brain barrier in vitro and in vivo. J Control Release
225:217–229. https ://doi.org/10.1016/j.jconr el.2016.01.031
181. Wang JTW, Rubio N, Kafa H, Venturelli E, Fabbro C, Ménard-Moyon C, Da Ros T, Sosabowski
JK, Lawson AD, Robinson MK, Prato M, Bianco A, Festy F, Preston JE, Kostarelos K, Al-Jamal
KT (2016) Kinetics of functionalised carbon nanotube distribution in mouse brain after systemic injection: spatial to ultra-structural analyses. J Control Release 224:22–32. https ://doi.
org/10.1016/j.jconr el.2015.12.039
182. Pedro Miguel Costa JT-WW, Morfin Jean-François, Khanum Tamanna, To Wan, Sosabowski Jane,
Tóth Eva, Al-Jamal Khuloud T (2018) Functionalised carbon nanotubes enhance brain delivery of
amyloid-targeting Pittsburgh compound B (PiB)-derived ligands. Nanotheranostics 2(2):168–183.
https ://doi.org/10.7150/ntno.23125
183. Lohan S, Raza K, Mehta SK, Bhatti GK, Saini S, Singh B (2017) Anti-Alzheimer’s potential of
berberine using surface decorated multi-walled carbon nanotubes: a preclinical evidence. Int J
Pharm 530(1):263–278. https ://doi.org/10.1016/j.ijpha rm.2017.07.080
184. Hassanzadeh P, Arbabi E, Atyabi F, Dinarvand R (2017) Nerve growth factor-carbon nanotube
complex exerts prolonged protective effects in an in vitro model of ischemic stroke. Life Sci
179:15–22. https ://doi.org/10.1016/j.lfs.2016.11.029
185. Fiorito S, Russier J, Salemme A, Soligo M, Manni L, Krasnowska E, Bonnamy S, Flahaut E, Serafino A, Togna GI, Marlier LNJL, Togna AR (2018) Switching on microglia with electro-conductive
multi walled carbon nanotubes. Carbon 129:572–584. https ://doi.org/10.1016/j.carbo n.2017.12.069
214
Reprinted from the journal
