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Gold nanocages covered by smart polymers for controlled release with near-infrared light

机译:由智能聚合物覆盖的金纳米笼,可通过近红外光进行控制释放

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摘要

Photosensitive caged compounds have enhanced our ability to address the complexity of biological systems by generating effectors with remarkable spatial/temporal resolutions. 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. Here we address these issues by developing a platform based on the photothermal effect of gold nanocages. Gold nanocages represent a class of nanostructures with hollow interiors and porous walls. They can have strong absorption (for the photothermal effect) in the near-infrared while maintaining a compact size. When the surface of a gold nanocage is covered with a smart polymer, the pre-loaded effector can be released in a controllable fashion using a near-infrared laser. This system works well with various effectors without involving sophisticated syntheses, and is well suited for in vivo studies owing to the high transparency of soft tissue in the near-infrared region.
机译:感光笼状化合物通过产生具有显着的时空分辨率的效应子,增强了我们应对生物系统复杂性的能力。通常通过用紫外线光解来消除笼效应,以释放生物活性物质。尽管该技术已经成功地应用于许多生物学问题,但是它具有许多固有的缺点。例如,需要专门的努力来设计和合成每个效应子的前体化合物。紫外线可能会损坏生物样品,并且由于其在组织中的快速衰减,因此仅适用于体外研究。在这里,我们通过开发基于金纳米笼的光热效应的平台来解决这些问题。金纳米笼代表了一类具有中空内部和多孔壁的纳米结构。它们可以在近红外线中具有很强的吸收(用于光热效应),同时保持紧凑的尺寸。当金纳米笼的表面覆盖有智能聚合物时,可以使用近红外激光以可控制的方式释放预加载的效应器。该系统可在不涉及复杂合成的情况下与各种效应器很好地结合,并且由于软组织在近红外区域的高度透明性,非常适合于体内研究。

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