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首页> 外文期刊>European Journal of Medicinal Chemistry: Chimie Therapeutique >Multifunctional gold nanorod theragnostics probed by multi-photon imaging.
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Multifunctional gold nanorod theragnostics probed by multi-photon imaging.

机译:通过多光子成像探测多功能金纳米棒治疗学。

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This study exhibits the fabrication of target-specific Gold nanorods (GNRs) coupled with an anti-tumorigenic apoptotic drug and provides tracking of the labeled particles as they migrate through cells and release their drug-load to targeted cancer cells. We utilize the photoluminescence property of GNRs and their ability to be conjugated with multiple agents to transform facile rods to a targeted drug delivery vehicle. GNRs of aspect ratio 2.8 were conjugated with a targeting ligand, folic acid and an anthracycline drug, Doxorubicin. The multifunctional nanorods were then used to target folate receptor expressing cancers cells for the delivery of a concentration dependent dosage of Doxorubicin (DOX). By utilizing the photoluminescence of GNRs and the innate fluorescence of DOX, multi-photon fluorescence lifetime imaging was utilized to monitor the uptake of functionalized nanorods, the release of the drug and its localization in living cells. We show that these nano-vehicles successfully targeted cancer cells over expressing folate receptors and showed low toxicity to control cell lines. Release of DOX was observed in the cytoplasmic region and after 16?h was found to be redistributed in the nucleus resulting in cell death. Our theragnostic approach demonstrates the fabrication of multifunctional GNRs for targeted drug delivery and monitoring of the drug and the vehicle by multi-photon microscopy using fluorescence intensity and lifetime imaging.
机译:这项研究展示了结合抗肿瘤发生性凋亡药物的靶标特异性金纳米棒(GNR)的制造,并跟踪了标记颗粒在细胞中迁移并释放其载药量以靶向癌细胞的过程。我们利用GNRs的光致发光特性及其与多种试剂结合的能力,以将轻巧的棒转化为靶向药物输送载体。将长宽比为2.8的GNR与靶向配体叶酸和蒽环类药物阿霉素结合。然后将多功能纳米棒用于靶向表达叶酸受体的癌细胞,以递送浓度依赖性剂量的阿霉素(DOX)。通过利用GNRs的光致发光和DOX的固有荧光,利用多光子荧光寿命成像来监测功能化纳米棒的摄取,药物的释放及其在活细胞中的定位。我们表明,这些纳米载体成功地针对癌细胞表达叶酸受体,并表现出低毒性来控制细胞系。在细胞质区域观察到DOX的释放,并且在16小时后发现DOX重新分布在细胞核中,导致细胞死亡。我们的Therasnostic方法论证了通过使用荧光强度和寿命成像的多光子显微镜技术,制造用于目标药物递送以及药物和媒介物监测的多功能GNR。

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