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Exploiting gold nanoparticles for diagnosis and cancer treatments

机译:利用金纳米粒子进行诊断和癌症治疗方法

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Gold nanoparticles (AuNPs) represent a relatively simple nanosystem to be synthesised and functionalized. AuNPs offer numerous advantages over different nanomaterials, primarily due to highly optimized protocols for their production with sizes in the range 1-150 nm and shapes, spherical, nanorods (AuNRs), nanocages, nanostars or nanoshells (AuNSs), just to name a few. AuNPs possess unique properties both from the optical and chemical point of view. AuNPs can absorb and scatter light with remarkable efficiency. Their outstanding interaction with light is due to the conduction electrons on the metal surface undergoing a collective oscillation when they are excited by light at specific wavelengths. This oscillation, known as a localized surface plasmon resonance, causes the absorption and scattering intensities of AuNPs to be significantly higher than identically sized non-plasmonic nanoparticles. In addition, AuNP absorption and scattering properties can be tuned by controlling the particle size, shape, and the local refractive index near the particle surface. By the chemical side, AuNPs offer the advantage of functionalization with therapeutic agents through covalent and ionic binding, which can be useful for biomedical applications, with particular emphasis on cancer treatments. Functionalized AuNPs exhibit good biocompatibility and controllable distribution patterns when delivered in cells and tissues, which make them particularly fine candidates for the basis of innovative therapies. Currently, major available AuNP-based cancer therapeutic approaches are the photothermal therapy (PTT) or photodynamic therapy (PDT). PTT and PDT rely upon irradiation of surface plasmon resonant AuNPs (previously delivered in cancer cells) by light, in particular, in the near-infrared range. Under irradiation, AuNPs surface electrons are excited and resonate intensely, and fast conversion of light into heat takes place in about 1 ps. The cancer cells are destroyed by the induced hyperthermia, i.e. the condition under which cells are subject to temperature in the range of 41 degrees C-47 degrees C for tens of minutes. The review is focused on the description of the optical and thermal properties of AuNPs that underlie their continuous and progressive exploitation for diagnosis and cancer therapy.
机译:金纳米颗粒(AuNPs)是一种相对简单的纳米系统,可以进行合成和功能化。与不同的纳米材料相比,AUNP具有许多优势,主要是因为它们的生产工艺经过了高度优化,尺寸范围为1-150纳米,形状为球形、纳米棒(AUNR)、纳米笼、纳米星或纳米壳(AuNSs),仅举几例。从光学和化学角度来看,AuNPs都具有独特的性质。AUNP能以惊人的效率吸收和散射光。它们与光的显著相互作用是由于金属表面上的传导电子在特定波长的光激发下发生集体振荡。这种振荡被称为局部表面等离子体共振,导致AuNP的吸收和散射强度显著高于尺寸相同的非等离子体纳米颗粒。此外,可以通过控制颗粒大小、形状和颗粒表面附近的局部折射率来调节AuNP的吸收和散射特性。在化学方面,AUNP通过共价键和离子结合与治疗剂进行功能化,具有优势,可用于生物医学应用,尤其是癌症治疗。功能化的AUNP在细胞和组织中表现出良好的生物相容性和可控的分布模式,这使得它们特别适合作为创新疗法的基础。目前,基于AuNP的主要癌症治疗方法是光热疗法(PTT)或光动力疗法(PDT)。PTT和PDT依赖于光对表面等离子体共振AuNP(之前在癌细胞中传递)的照射,尤其是在近红外范围内。在辐射下,AuNPs表面电子被激发并强烈共振,光到热的快速转换在大约1ps内发生。癌细胞被诱导的热疗破坏,即细胞在41摄氏度到47摄氏度的温度下持续数十分钟。综述的重点是描述AUNP的光学和热学特性,这些特性是AUNP在诊断和癌症治疗中持续不断开发的基础。

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