Facile construction of fluorescent C70-COOH nanoparticles with advanced antibacterial and anti-biofilm photodynamic activity
Tài liệu tham khảo
Zhang, 2011, Acceleration of emergence of bacterial antibiotic resistance in connected microenvironments, Science, 333, 1764, 10.1126/science.1208747
Fisher, 2017, Persistent bacterial infections and persister cells, Nat. Rev. Microbiol., 15, 453, 10.1038/nrmicro.2017.42
Cowie, 2012, The perpetual challenge of infectious diseases, New Engl. J. Med., 367, 89, 10.1056/NEJMc1204960
Sands, 2016, Assessment of economic vulnerability to infectious disease crises, Lancet, 388, 2443, 10.1016/S0140-6736(16)30594-3
Paules, 2017, Emerging and reemerging infectious diseases the dichotomy between acute outbreaks and chronic endemicity, JAMA J. Am. Med. Assoc., 317, 691, 10.1001/jama.2016.21079
Calzavara-Pinton, 2012, Photodynamic antifungal chemotherapy, Photochem. Photobiol., 88, 512, 10.1111/j.1751-1097.2012.01107.x
Sobotta, 2019, Non-porphyrinoid photosensitizers mediated photodynamic inactivation against bacteria, Dyes Pigments, 163, 337, 10.1016/j.dyepig.2018.12.014
Benoit, 2016, Targeted, triggered drug delivery to tumor and biofilm microenvironments, Nanomedicine-UK, 11, 873, 10.2217/nnm-2016-0014
Chen, 2021, Type I photosensitizers revitalizing photodynamic oncotherapy, Small, 17, 2006742, 10.1002/smll.202006742
Innocenzi, 2020, Carbon-based antiviral nanomaterials: graphene, C-dots, and fullerenes. A perspective, Chem. Sci., 11, 6606, 10.1039/D0SC02658A
Knoblauch, 2020, Carbon nanodots in photodynamic antimicrobial therapy: a review, Materials, 13, 10.3390/ma13184004
Markovic, 2008, Biomedical potential of the reactive oxygen species generation and quenching by fullerenes (C-60), Biomaterials, 29, 3561, 10.1016/j.biomaterials.2008.05.005
Markovic, 2019, Graphene oxide size and structure pro-oxidant and antioxidant activity and photoinduced cytotoxicity relation on three cancer cell lines, J. Photochem. Photobiol. B, 200, 10.1016/j.jphotobiol.2019.111647
Jovanovic, 2015, Modification of structural and luminescence properties of Graphene quantum dots by gamma irradiation and their application in a photodynamic therapy, ACS Appl. Mater. Interfaces, 7, 25865, 10.1021/acsami.5b08226
Antoku, 2019, Photodynamic activity of fullerene derivatives solubilized in water by natural-product-based solubilizing agents, Chem. Eur. J., 25, 1854, 10.1002/chem.201803657
Heredia, 2022, Fullerene C60 derivatives as antimicrobial photodynamic agents, J Photochem Photobiol C: Photochem Rev, 51, 10.1016/j.jphotochemrev.2021.100471
Jovanovic, 2010, Singlet oxygen generation by higher fullerene-based colloids, J. Serb. Chem. Soc., 75, 965, 10.2298/JSC090617062J
Isakovic, 2006, Distinct cytotoxic mechanisms of pristine versus hydroxylated fullerene, Toxicol. Sci., 91, 173, 10.1093/toxsci/kfj127
Zhang, 2015, Potentiation of antimicrobial photodynamic inactivation mediated by a cationic fullerene by added iodide: in vitro and in vivo studies, Nanomedicine-UK, 10, 603, 10.2217/nnm.14.131
Yin, 2015, Antimicrobial photodynamic inactivation with decacationic functionalized fullerenes: oxygen-independent photokilling in presence of azide and new mechanistic insights, Free Radical Bio Med., 79, 14, 10.1016/j.freeradbiomed.2014.10.514
Huang, 2014, Functionalized fullerenes in photodynamic therapy, J. Biomed. Nanotechnol., 10, 1918, 10.1166/jbn.2014.1963
Kawasaki, 2020, Bacterial elimination via the photodynamic activity of a fullerene/light-harvesting antenna molecule assembled system integrated into liposome membranes, Nanoscale Adv., 2, 4395, 10.1039/D0NA00132E
Fukuzumi, 1999, Enhanced reactivity of C70 in the photochemical reactions with NADH and NAD dimer analogues as compared to C60 via Photoinduced Electron transfer, J. Phys. Chem. A, 103, 5935, 10.1021/jp990825z
Liosi, 2021, Unexpected disparity in Photoinduced reactions of C60 and C70 in water with the generation of O2•– or 1O2, Jacs Au, 1, 1601, 10.1021/jacsau.1c00239
Moor, 2015, Differential photoactivity of aqueous [C-60] and [C-70] fullerene aggregates, Environ. Sci. Technol., 49, 5990, 10.1021/acs.est.5b00100
Liu, 2012, Structural effect and mechanism of C70-Carboxyfullerenes as efficient sensitizers against cancer cells, Small, 8, 2070, 10.1002/smll.201200158
Huang, 2013, Decacationic [70] fullerene approach for efficient photokilling of infectious bacteria and cancer cells, ECS Trans., 45, 65, 10.1149/04520.0065ecst
FrancoCataldo, 2003, Baratta, GraziellaFerini, GiovanniStrazzulla, He+ ion bombardment of C70 fullerene: an FTIR and Raman study, Fuller. Sci. Technol., 11, 191
Singhal, 2018, Low energy ion irradiation studies of fullerene C70 thin films-an emphasis on mapping the local structure modifications, J. Phys. Chem. Solids, 117, 204, 10.1016/j.jpcs.2018.02.036
Romero, 2021, One-pot microwave-assisted synthesis of carbon dots and in vivo and in vitro antimicrobial photodynamic applications, Front. Microbiol., 12, 10.3389/fmicb.2021.662149
Huang, 2018, Facile fabrication of carboxyl groups modified fluorescent C-60 through a one-step thiol-ene click reaction and their potential applications for biological imaging and intracellular drug delivery, J. Taiwan Inst. Chem. E, 86, 192, 10.1016/j.jtice.2018.02.004
Y.F. E, L.L, 2011, Electrochemically generated fluorescent fullerene[60] nanoparticles as a new and viable bioimaging platform, J. Mater. Chem., 21, 819, 10.1039/C0JM02492A
Xie, 2016, Highly water-soluble and surface charge-tunable fluorescent fullerene nanoparticles: facile fabrication and cellular imaging, Electrochim. Acta, 201, 220, 10.1016/j.electacta.2016.03.198
Donlan, 2002, Biofilms: survival mechanisms of clinically relevant microorganisms, Clin. Microbiol. Rev., 15, 167, 10.1128/CMR.15.2.167-193.2002
Hall-Stoodley, 2004, Bacterial biofilms: from the natural environment to infectious diseases, Nat. Rev. Microbiol., 2, 95, 10.1038/nrmicro821
Ma, 2020, Ultra-efficient antibacterial system based on photodynamic therapy and CO gas therapy for synergistic antibacterial and ablation biofilms, ACS Appl. Mater. Interfaces, 12, 22479, 10.1021/acsami.0c01967
Joo, 2018, Factors impacting the interactions of engineered nanoparticles with bacterial cells and biofilms: mechanistic insights and state of knowledge, J. Environ. Manag., 225, 62, 10.1016/j.jenvman.2018.07.084