Photosensitive caged compounds have enhanced our ability to address the complexity of biological systems by generating effectors with remarkable spatial/ temporal resolutions(1-3). The caging effect is typically removed by photolysis with ultraviolet light to liberate the bioactive species. Although this technique has been successfully applied to many biological problems, it suffers from a number of intrinsic drawbacks. For example, it requires dedicated efforts to design and synthesize a precursor compound for each effector. The ultraviolet light may cause damage to biological samples and is suitable only for in vitro studies because of its quick attenuation in tissue(4). Here we address these issues by developing a platform based on the p...
Photothermal therapy (PTT) is a promising (co)treatment with translation potentiality in oncology. N...
Anionic liposomes coated with cationic polyelectrolyte poly-l-lysine (PLL), or layersomes, were used...
Gold nanoparticles (AuNPs) absorb light and can be used to heat and ablate tumors. The ‘‘tissue wind...
Photosensitive caged compounds have enhanced our ability to address the complexity of biological sys...
Numerous gold nanostructures have the potential for photothermal therapy in cancers. Here, gold nano...
Gold nanocages represent a novel class of nanostructures, well-suited for biomedical applications. T...
Gold nanocages are hollow nanostructures with ultrathin, porous walls. They are bio-inert and their ...
Gold nanocages are hollow nanostructures with porous walls that can be simply prepared via the galva...
Gold nanocages represent a novel class of nanostructures, well-suited for biomedical applications. T...
Gold nanostructures have garnered considerable attention in recent years for their potential to faci...
Targeted killing of cancer cells by engineered nanoparticles holds great promise for noninvasive pho...
Aim: To develop new methodologies for selective cell ablation in a temporally and spatially precise ...
Gold nanocages (AuNCs) with hollow interiors, porous walls, and tunable localized surface plasmon re...
Since the introduction of nanotechnology into cancer treatment, numerous therapeutic nanoagents have...
In this work, we have successfully developed a novel multifunctional near-infrared (NIR)-stimulus co...
Photothermal therapy (PTT) is a promising (co)treatment with translation potentiality in oncology. N...
Anionic liposomes coated with cationic polyelectrolyte poly-l-lysine (PLL), or layersomes, were used...
Gold nanoparticles (AuNPs) absorb light and can be used to heat and ablate tumors. The ‘‘tissue wind...
Photosensitive caged compounds have enhanced our ability to address the complexity of biological sys...
Numerous gold nanostructures have the potential for photothermal therapy in cancers. Here, gold nano...
Gold nanocages represent a novel class of nanostructures, well-suited for biomedical applications. T...
Gold nanocages are hollow nanostructures with ultrathin, porous walls. They are bio-inert and their ...
Gold nanocages are hollow nanostructures with porous walls that can be simply prepared via the galva...
Gold nanocages represent a novel class of nanostructures, well-suited for biomedical applications. T...
Gold nanostructures have garnered considerable attention in recent years for their potential to faci...
Targeted killing of cancer cells by engineered nanoparticles holds great promise for noninvasive pho...
Aim: To develop new methodologies for selective cell ablation in a temporally and spatially precise ...
Gold nanocages (AuNCs) with hollow interiors, porous walls, and tunable localized surface plasmon re...
Since the introduction of nanotechnology into cancer treatment, numerous therapeutic nanoagents have...
In this work, we have successfully developed a novel multifunctional near-infrared (NIR)-stimulus co...
Photothermal therapy (PTT) is a promising (co)treatment with translation potentiality in oncology. N...
Anionic liposomes coated with cationic polyelectrolyte poly-l-lysine (PLL), or layersomes, were used...
Gold nanoparticles (AuNPs) absorb light and can be used to heat and ablate tumors. The ‘‘tissue wind...