Size-dependent antibacterial of carbon dots by selective absorption and differential oxidative stress of bacteria.
暂无分享,去创建一个
Hui Huang | Zhenhui Kang | Yang Liu | Yurong Ma | Mengling Zhang | Xin Du | Xiting Wang
[1] Xiayan Wang,et al. Recent advances of carbon dots as new antimicrobial agents , 2022, SmartMat.
[2] R. S. Kumar,et al. Preparation and characterization of succinyl chitosan and succinyl chitosan nanoparticle film: In vitro and in vivo evaluation of wound healing activity , 2021, International Journal of Biological Macromolecules.
[3] Huibo Wang,et al. Carbon dots with positive surface charge from tartaric acid and m-aminophenol for selective killing of Gram-positive bacteria. , 2020, Journal of materials chemistry. B.
[4] Cheng Yao,et al. Insight into the effect of particle size distribution differences on the antibacterial activity of carbon dots. , 2020, Journal of colloid and interface science.
[5] V. Adam,et al. One-pot synthesis of natural amine-modified biocompatible carbon quantum dots with antibacterial activity. , 2020, Journal of colloid and interface science.
[6] H. C. van der Mei,et al. Circumventing antimicrobial-resistance and preventing its development in novel, bacterial infection-control strategies , 2020, Expert opinion on drug delivery.
[7] Tiancheng Lu,et al. Size-controllable preparation and antibacterial mechanism of thermo-responsive copolymer-stabilized silver nanoparticles with high antimicrobial activity. , 2020, Materials science & engineering. C, Materials for biological applications.
[8] Huibo Wang,et al. Biotoxicity of degradable carbon dots towards microalgae Chlorella vulgaris , 2019, Environmental Science: Nano.
[9] S. Nishanthi,et al. Metal-free visible light photocatalytic carbon nitride quantum dots as efficient antibacterial agents: An insight study , 2019, Carbon.
[10] Jun Liang,et al. The size-controllable preparation of chitosan/silver nanoparticle composite microsphere and its antimicrobial performance. , 2019, Carbohydrate polymers.
[11] A. Alshahrie,et al. Size controlled, antimicrobial ZnO nanostructures produced by the microwave assisted route. , 2019, Materials science & engineering. C, Materials for biological applications.
[12] Ya‐Ping Sun,et al. The dominant role of surface functionalization in carbon dots’ photo-activated antibacterial activity , 2019, International journal of nanomedicine.
[13] Zhenhui Kang,et al. Enhanced RuBisCO activity and promoted dicotyledons growth with degradable carbon dots , 2019, Nano Research.
[14] A. Porgador,et al. Selective Labeling and Growth Inhibition of Pseudomonas aeruginosa by Aminoguanidine Carbon Dots. , 2018, ACS infectious diseases.
[15] Huibo Wang,et al. Degradable Carbon Dots from Cigarette Smoking with Broad-Spectrum Antimicrobial Activities against Drug-Resistant Bacteria. , 2018, ACS applied bio materials.
[16] Minjie Li,et al. Inorganic Salt Incorporated Solvothermal Synthesis of Multicolor Carbon Dots, Emission Mechanism, and Antibacterial Study , 2018, ACS Applied Nano Materials.
[17] Xiaojun Wang,et al. Enhanced Biological Photosynthetic Efficiency Using Light‐Harvesting Engineering with Dual‐Emissive Carbon Dots , 2018, Advanced Functional Materials.
[18] Min Xu,et al. Optimized arylomycins are a new class of Gram-negative antibiotics , 2018, Nature.
[19] M. Prato,et al. Design principles of chiral carbon nanodots help convey chirality from molecular to nanoscale level , 2018, Nature Communications.
[20] E. Rodríguez-Castellón,et al. S- and N-doped carbon quantum dots: Surface chemistry dependent antibacterial activity , 2018, Carbon.
[21] R. Zhou,et al. Degradable Carbon Dots with Broad-Spectrum Antibacterial Activity. , 2018, ACS applied materials & interfaces.
[22] J. Deval,et al. Innovation and trends in the development and approval of antiviral medicines: 1987–2017 and beyond , 2018, Antiviral Research.
[23] Keng-Shiang Huang,et al. Antimicrobial Amino-Functionalized Nitrogen-Doped Graphene Quantum Dots for Eliminating Multidrug-Resistant Species in Dual-Modality Photodynamic Therapy and Bioimaging under Two-Photon Excitation. , 2018, ACS applied materials & interfaces.
[24] X. Qu,et al. Enzyme Mimicry for Combating Bacteria and Biofilms. , 2018, Accounts of chemical research.
[25] X. Yang,et al. Highly Fluorescent Chiral N-S-Doped Carbon Dots from Cysteine: Affecting Cellular Energy Metabolism. , 2018, Angewandte Chemie.
[26] Darren D. Sun,et al. Dimension Induced Intrinsic Physio-electrical Effects of Nanostructured TiO 2 on Its Antibacterial Properties , 2018 .
[27] R. Zhou,et al. Hydroxyl-Group-Dominated Graphite Dots Reshape Laser Desorption/Ionization Mass Spectrometry for Small Biomolecular Analysis and Imaging. , 2017, ACS nano.
[28] I. Bello,et al. Carbon Dots as Fillers Inducing Healing/Self‐Healing and Anticorrosion Properties in Polymers , 2017, Advanced materials.
[29] Bai Yang,et al. One-step hydrothermal synthesis of photoluminescent carbon nanodots with selective antibacterial activity against Porphyromonas gingivalis. , 2017, Nanoscale.
[30] C. Ramalingam,et al. Control of size and antimicrobial activity of green synthesized silver nanoparticles , 2016 .
[31] Tikam Chand Dakal,et al. Mechanistic Basis of Antimicrobial Actions of Silver Nanoparticles , 2016, Frontiers in microbiology.
[32] Vincent M. Rotello,et al. Fully Zwitterionic Nanoparticle Antimicrobial Agents through Tuning of Core Size and Ligand Structure. , 2016, ACS nano.
[33] X. Qu,et al. Programmed Bacteria Death Induced by Carbon Dots with Different Surface Charge. , 2016, Small.
[34] Fengyu Quan,et al. Multifunctional N,S co-doped carbon quantum dots with pH- and thermo-dependent switchable fluorescent properties and highly selective detection of glutathione , 2016 .
[35] Ya‐Ping Sun,et al. Visible-Light-Activated Bactericidal Functions of Carbon "Quantum" Dots. , 2016, ACS applied materials & interfaces.
[36] Z. Marković,et al. Photodynamic antibacterial effect of graphene quantum dots. , 2014, Biomaterials.
[37] Haiping Fang,et al. Destructive extraction of phospholipids from Escherichia coli membranes by graphene nanosheets. , 2013, Nature nanotechnology.
[38] Madhu Rani,et al. Comparative Study Of TiO2 and TiSiO4 nanoparticles Induced Oxidative Stress And Apoptosis Of HEK-293 Cells , 2012 .
[39] C. M. Li,et al. A polycationic antimicrobial and biocompatible hydrogel with microbe membrane suctioning ability. , 2011, Nature materials.
[40] G. Somorjai,et al. Size effect of ruthenium nanoparticles in catalytic carbon monoxide oxidation. , 2010, Nano letters.
[41] J. Monserrat,et al. A method to measure total antioxidant capacity against peroxyl radicals in aquatic organisms: application to evaluate microcystins toxicity. , 2009, The Science of the total environment.
[42] Li Fei,et al. Effect of Nanoparticles on Protein Folding and Fibrillogenesis , 2009, International journal of molecular sciences.
[43] R. Tang,et al. Size effect of hydroxyapatite nanoparticles on proliferation and apoptosis of osteoblast-like cells. , 2009, Acta biomaterialia.
[44] George John,et al. Silver-nanoparticle-embedded antimicrobial paints based on vegetable oil. , 2008, Nature materials.
[45] A. Fleming,et al. Classics in infectious diseases: on the antibacterial action of cultures of a penicillium, with special reference to their use in the isolation of B. influenzae by Alexander Fleming, Reprinted from the British Journal of Experimental Pathology 10:226-236, 1929. , 1980, Reviews of infectious diseases.
[46] H. Neu,et al. The Crisis in Antibiotic Resistance , 1992, Science.