Environmental Science & Technology, ISSN 0013-936X, 03/2010, Volume 44, Issue 6, pp. 2169 - 2175
Many important aspects of nanosilver behavior are influenced by the ionic activity associated with the particle suspension, including antibacterial potency,...
Ecotoxicology and Human Environmental Health | NANOPARTICLES | ENVIRONMENTAL SCIENCES | IN-VITRO | SUPEROXIDE | REDUCTION | ENGINEERING, ENVIRONMENTAL | INGESTION | ACIDS | SURFACE | TOXICITY | WATER | Particle Size | Colloids - chemistry | Ions - chemistry | Models, Chemical | Oxidation-Reduction | Metal Nanoparticles - chemistry | Silver - chemistry | Water Pollutants, Chemical - chemistry | Hydrogen-Ion Concentration
Ecotoxicology and Human Environmental Health | NANOPARTICLES | ENVIRONMENTAL SCIENCES | IN-VITRO | SUPEROXIDE | REDUCTION | ENGINEERING, ENVIRONMENTAL | INGESTION | ACIDS | SURFACE | TOXICITY | WATER | Particle Size | Colloids - chemistry | Ions - chemistry | Models, Chemical | Oxidation-Reduction | Metal Nanoparticles - chemistry | Silver - chemistry | Water Pollutants, Chemical - chemistry | Hydrogen-Ion Concentration
Journal Article
Environmental Science & Technology, ISSN 0013-936X, 05/2011, Volume 45, Issue 10, pp. 4422 - 4428
Ion release is an important environmental behavior of silver nanoparticles (AgNPs), and characterization of Ag+ release is critical for understanding the...
Environmental Modeling | ENVIRONMENTAL SCIENCES | SHAPE | DISSOLUTION | ENGINEERING, ENVIRONMENTAL | ANTIBACTERIAL ACTIVITY | ESCHERICHIA-COLI | ENVIRONMENT | NANOMATERIALS | DIVALENT ELECTROLYTES | STAPHYLOCOCCUS-AUREUS | TOXICITY | AGGREGATION KINETICS | Particle Size | Citric Acid - chemistry | Ions - chemistry | Temperature | Models, Chemical | Metal Nanoparticles - chemistry | Silver - chemistry | Water Pollutants, Chemical - chemistry | Kinetics | Hydrogen-Ion Concentration | Salinity
Environmental Modeling | ENVIRONMENTAL SCIENCES | SHAPE | DISSOLUTION | ENGINEERING, ENVIRONMENTAL | ANTIBACTERIAL ACTIVITY | ESCHERICHIA-COLI | ENVIRONMENT | NANOMATERIALS | DIVALENT ELECTROLYTES | STAPHYLOCOCCUS-AUREUS | TOXICITY | AGGREGATION KINETICS | Particle Size | Citric Acid - chemistry | Ions - chemistry | Temperature | Models, Chemical | Metal Nanoparticles - chemistry | Silver - chemistry | Water Pollutants, Chemical - chemistry | Kinetics | Hydrogen-Ion Concentration | Salinity
Journal Article
Environmental Toxicology and Chemistry, ISSN 0730-7268, 01/2012, Volume 31, Issue 1, pp. 155 - 159
The environmental toxicity associated with silver nanoparticles (AgNPs) has been a major focus in nanotoxicology. The Ag+ released from AgNPs may affect...
Ecotoxicity effects | Ion‐release kinetics | Silver nanoparticles | Ion-release kinetics | CELLS | ENVIRONMENTAL SCIENCES | DAPHNIA-MAGNA | TOXICITY | TOXICOLOGY | Daphnia - drug effects | Metal Nanoparticles - toxicity | Animals | Water Pollutants, Chemical - toxicity | Models, Chemical | Metal Nanoparticles - chemistry | Silver - chemistry | Water Pollutants, Chemical - chemistry | Silver - toxicity | Toxicity Tests, Acute | Kinetics | Nanoparticles | Powders | Analysis | Confidence intervals | Silver | Toxicology | Toxicity | Organisms | Dissolution | Conversion | Index Medicus
Ecotoxicity effects | Ion‐release kinetics | Silver nanoparticles | Ion-release kinetics | CELLS | ENVIRONMENTAL SCIENCES | DAPHNIA-MAGNA | TOXICITY | TOXICOLOGY | Daphnia - drug effects | Metal Nanoparticles - toxicity | Animals | Water Pollutants, Chemical - toxicity | Models, Chemical | Metal Nanoparticles - chemistry | Silver - chemistry | Water Pollutants, Chemical - chemistry | Silver - toxicity | Toxicity Tests, Acute | Kinetics | Nanoparticles | Powders | Analysis | Confidence intervals | Silver | Toxicology | Toxicity | Organisms | Dissolution | Conversion | Index Medicus
Journal Article
Materials Science & Engineering C, ISSN 0928-4931, 2004, Volume 24, Issue 6, pp. 745 - 752
Metal ion release from metallic materials, e.g. stainless steel, cobalt–chromium alloy, titanium, and titanium alloys, implanted into human body was reviewed...
Repassivation | Surface oxide | Preferential release | Metal implant | Passivity | Metal ion release | surface oxide | SURFACE OXIDE-FILM | MATERIALS SCIENCE, MULTIDISCIPLINARY | repassivation | metal implant | FATIGUE PROPERTIES | QUASI-BIOLOGICAL ENVIRONMENTS | metal ion release | STAINLESS-STEEL | SUPEROXIDE ANION | ANODIC POLARIZATION | ELECTROCHEMICAL CORROSION | TITANIUM IMPLANT | ALVEOLAR MACROPHAGES | CELL-CULTURE | passivity | preferential release
Repassivation | Surface oxide | Preferential release | Metal implant | Passivity | Metal ion release | surface oxide | SURFACE OXIDE-FILM | MATERIALS SCIENCE, MULTIDISCIPLINARY | repassivation | metal implant | FATIGUE PROPERTIES | QUASI-BIOLOGICAL ENVIRONMENTS | metal ion release | STAINLESS-STEEL | SUPEROXIDE ANION | ANODIC POLARIZATION | ELECTROCHEMICAL CORROSION | TITANIUM IMPLANT | ALVEOLAR MACROPHAGES | CELL-CULTURE | passivity | preferential release
Journal Article
Nanomedicine: Nanotechnology, Biology, and Medicine, ISSN 1549-9634, 2015, Volume 11, Issue 3, pp. 731 - 739
Abstract Toxicity of silver nanoparticles (AgNPs) is supported by many observations in literature, but no mechanism details have been proved yet. Here we...
Internal Medicine | Nanoparticles | Silver | Ion release | Toxicity | MEDICINE, RESEARCH & EXPERIMENTAL | APOPTOSIS | OXIDATIVE STRESS | DNA-DAMAGE | CYCLE ARREST | NANO-SILVER | NANOSCIENCE & NANOTECHNOLOGY | NEMATODE CAENORHABDITIS-ELEGANS | MAMMALIAN-CELLS | IN-VITRO | HUMAN HEPATOMA-CELLS | P38 MAPK ACTIVATION | Silver - pharmacology | Lysosomes - metabolism | Humans | Metal Nanoparticles - chemistry | Silver - pharmacokinetics | Silver - chemistry | Cytosol - metabolism | HeLa Cells | Cations, Monovalent - pharmacokinetics
Internal Medicine | Nanoparticles | Silver | Ion release | Toxicity | MEDICINE, RESEARCH & EXPERIMENTAL | APOPTOSIS | OXIDATIVE STRESS | DNA-DAMAGE | CYCLE ARREST | NANO-SILVER | NANOSCIENCE & NANOTECHNOLOGY | NEMATODE CAENORHABDITIS-ELEGANS | MAMMALIAN-CELLS | IN-VITRO | HUMAN HEPATOMA-CELLS | P38 MAPK ACTIVATION | Silver - pharmacology | Lysosomes - metabolism | Humans | Metal Nanoparticles - chemistry | Silver - pharmacokinetics | Silver - chemistry | Cytosol - metabolism | HeLa Cells | Cations, Monovalent - pharmacokinetics
Journal Article
Journal of Controlled Release, ISSN 0168-3659, 2011, Volume 154, Issue 2, pp. 164 - 170
Metal ion release kinetics from silver and copper nanoparticle silicone composites generated by laser ablation in liquids are investigated. The metal ion...
Silver | Ion release | Nanocomposite | Copper | Nanoparticle | POLYMERS | DELIVERY SYSTEMS | CONTROLLED DRUG-RELEASE | CHEMISTRY, MULTIDISCIPLINARY | ELASTOMERS | BIOMATERIAL | RUBBER MEMBRANES | NANOCOMPOSITES | DISSOLUTION | LASER-ABLATION | PHARMACOLOGY & PHARMACY | Particle Size | Silicones - chemistry | Silicones - pharmacokinetics | Metals - chemistry | Nanoparticles - chemistry | Metals - pharmacokinetics | Ions | Kinetics | Composite materials industry | Anisotropy | Silicones | Nanotechnology
Silver | Ion release | Nanocomposite | Copper | Nanoparticle | POLYMERS | DELIVERY SYSTEMS | CONTROLLED DRUG-RELEASE | CHEMISTRY, MULTIDISCIPLINARY | ELASTOMERS | BIOMATERIAL | RUBBER MEMBRANES | NANOCOMPOSITES | DISSOLUTION | LASER-ABLATION | PHARMACOLOGY & PHARMACY | Particle Size | Silicones - chemistry | Silicones - pharmacokinetics | Metals - chemistry | Nanoparticles - chemistry | Metals - pharmacokinetics | Ions | Kinetics | Composite materials industry | Anisotropy | Silicones | Nanotechnology
Journal Article
Nature Chemical Biology, ISSN 1552-4450, 01/2014, Volume 10, Issue 1, pp. 35 - 41
The relative stability of divalent first-row transition metal ion complexes, as defined by the Irving-Williams series, poses a fundamental chemical challenge...
STREPTOCOCCUS-PNEUMONIAE | OXIDATIVE STRESS RESISTANCE | ZINC TRANSPORT PROTEIN | CRYSTAL-STRUCTURE | BIOCHEMISTRY & MOLECULAR BIOLOGY | X-RAY-STRUCTURE | ESCHERICHIA-COLI | BINDING-PROTEIN | MOLECULAR-DYNAMICS SIMULATIONS | SUPEROXIDE-DISMUTASE | TREPONEMA-PALLIDUM TROA | Metals - metabolism | Streptococcus pneumoniae - metabolism | Models, Molecular | Membrane Transport Proteins - metabolism | Cations | Binding Sites | Membrane Transport Proteins - chemistry | Proteins | Enzymes | Trace elements | Molecular chemistry | Substrates
STREPTOCOCCUS-PNEUMONIAE | OXIDATIVE STRESS RESISTANCE | ZINC TRANSPORT PROTEIN | CRYSTAL-STRUCTURE | BIOCHEMISTRY & MOLECULAR BIOLOGY | X-RAY-STRUCTURE | ESCHERICHIA-COLI | BINDING-PROTEIN | MOLECULAR-DYNAMICS SIMULATIONS | SUPEROXIDE-DISMUTASE | TREPONEMA-PALLIDUM TROA | Metals - metabolism | Streptococcus pneumoniae - metabolism | Models, Molecular | Membrane Transport Proteins - metabolism | Cations | Binding Sites | Membrane Transport Proteins - chemistry | Proteins | Enzymes | Trace elements | Molecular chemistry | Substrates
Journal Article
Angewandte Chemie International Edition, ISSN 1433-7851, 08/2018, Volume 57, Issue 35, pp. 11445 - 11450
The introduction of mechanophores into polymers makes it possible to transduce mechanical forces into chemical reactions that can be used to impart functions...
mechanophores | stimuli-responsive polymers | polymers | organometallic chemistry | DRUG-DELIVERY | COMPLEXES | POLYMERIZATION | CHEMISTRY, MULTIDISCIPLINARY | MECHANOCHEMICAL ACTIVATION | ULTRASONIC DEGRADATION | TRANSITION | INDUCED CHEMILUMINESCENCE | MECHANICAL FORCE | COORDINATION POLYMERS | CATALYSTS | Iron compounds | Polymer industry | Metallocenes | Polymers | Polyurethane resins | Sonication | Mass distribution | Chemical reactions | Ions | Catalytic activity | Iron | Organic chemistry | Pigments | Oxidation | Catalysis | Metal ions
mechanophores | stimuli-responsive polymers | polymers | organometallic chemistry | DRUG-DELIVERY | COMPLEXES | POLYMERIZATION | CHEMISTRY, MULTIDISCIPLINARY | MECHANOCHEMICAL ACTIVATION | ULTRASONIC DEGRADATION | TRANSITION | INDUCED CHEMILUMINESCENCE | MECHANICAL FORCE | COORDINATION POLYMERS | CATALYSTS | Iron compounds | Polymer industry | Metallocenes | Polymers | Polyurethane resins | Sonication | Mass distribution | Chemical reactions | Ions | Catalytic activity | Iron | Organic chemistry | Pigments | Oxidation | Catalysis | Metal ions
Journal Article
International Journal of Nanomedicine, ISSN 1176-9114, 04/2017, Volume 12, pp. 3193 - 3206
Understanding the mechanism of nanosilver-dependent antibacterial activity against microorganisms helps optimize the design and usage of the related...
Trojan-horse-type mechanism | Oxidative stress | Respiratory chain | Silver ion release | Silver nanoparticles | Surface chemistry | RESPIRATORY-CHAIN | surface chemistry | MECHANISM | STABILIZATION | NANOSCIENCE & NANOTECHNOLOGY | TOXICITY | NANOPARTICLES | silver nanoparticles | DISSOLUTION | FATTY-ACID | CHEMISTRY | PHARMACOLOGY & PHARMACY | respiratory chain | oxidative stress | silver ion release | Silver - pharmacology | Reactive Oxygen Species - metabolism | Escherichia coli - drug effects | Metal Nanoparticles - chemistry | Silver - pharmacokinetics | Silver - chemistry | 3-Mercaptopropionic Acid - chemistry | Caproates - chemistry | Citric Acid - chemistry | Animals | Anti-Bacterial Agents - chemistry | Surface Properties | Anti-Bacterial Agents - pharmacokinetics | Ligands | Sulfhydryl Compounds - chemistry | Anti-Bacterial Agents - pharmacology | Cell Membrane - metabolism | Alkanesulfonic Acids - chemistry | Cell Membrane - drug effects | Nanoparticles | Physiological aspects | Silver | Research | Properties | Escherichia coli | Particle size | E coli | DNA methylation | Gram-positive bacteria | Nanomaterials | Bacteria | RNA polymerase | Nanotechnology | silver nanoparticle | trojan horse mechanism
Trojan-horse-type mechanism | Oxidative stress | Respiratory chain | Silver ion release | Silver nanoparticles | Surface chemistry | RESPIRATORY-CHAIN | surface chemistry | MECHANISM | STABILIZATION | NANOSCIENCE & NANOTECHNOLOGY | TOXICITY | NANOPARTICLES | silver nanoparticles | DISSOLUTION | FATTY-ACID | CHEMISTRY | PHARMACOLOGY & PHARMACY | respiratory chain | oxidative stress | silver ion release | Silver - pharmacology | Reactive Oxygen Species - metabolism | Escherichia coli - drug effects | Metal Nanoparticles - chemistry | Silver - pharmacokinetics | Silver - chemistry | 3-Mercaptopropionic Acid - chemistry | Caproates - chemistry | Citric Acid - chemistry | Animals | Anti-Bacterial Agents - chemistry | Surface Properties | Anti-Bacterial Agents - pharmacokinetics | Ligands | Sulfhydryl Compounds - chemistry | Anti-Bacterial Agents - pharmacology | Cell Membrane - metabolism | Alkanesulfonic Acids - chemistry | Cell Membrane - drug effects | Nanoparticles | Physiological aspects | Silver | Research | Properties | Escherichia coli | Particle size | E coli | DNA methylation | Gram-positive bacteria | Nanomaterials | Bacteria | RNA polymerase | Nanotechnology | silver nanoparticle | trojan horse mechanism
Journal Article
Acta Biomaterialia, ISSN 1742-7061, 02/2019, Volume 85, pp. 294 - 309
Magnesium ions (Mg ) are bioactive and proven to promote bone tissue regeneration, in which the enhancement efficiency is closely related to Mg concentrations....
Magnesium ions | Microsphere | Bone regeneration | Controlled release | MATERIALS SCIENCE, BIOMATERIALS | STIMULATION | VIVO | PLA | ENGINEERING, BIOMEDICAL | PHOSPHATE CEMENT | MESENCHYMAL STEM-CELLS | COMPOSITE | NANOPARTICLES | IN-VITRO | CALCIUM | SCAFFOLDS | Cell proliferation | Surgical implants | Mesenchyme | Biodegradability | Differentiation (biology) | Delivery systems | Cytotoxicity | Embedding | Promotion | Polylactide-co-glycolide | Cell adhesion & migration | Microspheres | Engineering | Design engineering | Biomedical materials | Bone growth | Injectability | Bone marrow | Biocompatibility | Bones | Magnesium | Metal ions | Biodegradation | Tissue engineering | Magnesium oxide | Magnesium carbonate | Magnesium compounds | Biological activity | Weight | Regeneration | Embedded systems | Stromal cells | Sustained release | Bone mineral density | Poly(lactide-co-glycolide) | Scaffolds | Cell migration | Osteogenesis
Magnesium ions | Microsphere | Bone regeneration | Controlled release | MATERIALS SCIENCE, BIOMATERIALS | STIMULATION | VIVO | PLA | ENGINEERING, BIOMEDICAL | PHOSPHATE CEMENT | MESENCHYMAL STEM-CELLS | COMPOSITE | NANOPARTICLES | IN-VITRO | CALCIUM | SCAFFOLDS | Cell proliferation | Surgical implants | Mesenchyme | Biodegradability | Differentiation (biology) | Delivery systems | Cytotoxicity | Embedding | Promotion | Polylactide-co-glycolide | Cell adhesion & migration | Microspheres | Engineering | Design engineering | Biomedical materials | Bone growth | Injectability | Bone marrow | Biocompatibility | Bones | Magnesium | Metal ions | Biodegradation | Tissue engineering | Magnesium oxide | Magnesium carbonate | Magnesium compounds | Biological activity | Weight | Regeneration | Embedded systems | Stromal cells | Sustained release | Bone mineral density | Poly(lactide-co-glycolide) | Scaffolds | Cell migration | Osteogenesis
Journal Article
Journal of Arthroplasty, The, ISSN 0883-5403, 2011, Volume 26, Issue 2, pp. 282 - 288
Abstract Preoperative and postoperative ion concentrations were measured in 29 metal-on-metal, large-diameter head total hip arthroplasty (LDH-THA) patients....
Orthopedics | total hip arthroplasty | metal ion release | corrosion | large-diameter components | resurfacing | metal-on-metal articulation | Resurfacing | Corrosion | Large-diameter components | Total hip arthroplasty | Metal ion release | Metal-on-metal articulation | JOINT REPLACEMENT | FOLLOW-UP | BEARINGS | IMPLANTS | CHROMIUM | POLYETHYLENE | IN-VITRO | SERUM-LEVELS | ORTHOPEDICS | COBALT | Prospective Studies | Chromium - blood | Humans | Metals | Hip Prosthesis | Arthroplasty, Replacement, Hip | Cobalt - blood | Male | Prosthesis Design | Young Adult | Adult | Female | Titanium - blood
Orthopedics | total hip arthroplasty | metal ion release | corrosion | large-diameter components | resurfacing | metal-on-metal articulation | Resurfacing | Corrosion | Large-diameter components | Total hip arthroplasty | Metal ion release | Metal-on-metal articulation | JOINT REPLACEMENT | FOLLOW-UP | BEARINGS | IMPLANTS | CHROMIUM | POLYETHYLENE | IN-VITRO | SERUM-LEVELS | ORTHOPEDICS | COBALT | Prospective Studies | Chromium - blood | Humans | Metals | Hip Prosthesis | Arthroplasty, Replacement, Hip | Cobalt - blood | Male | Prosthesis Design | Young Adult | Adult | Female | Titanium - blood
Journal Article