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首页> 外文期刊>RSC Advances >Enhanced in vivo tumour imaging by EDTA-bis-GNGR functionalized core shell CdSe:ZnS quantum dot: synergistic effect of active passive targeting
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Enhanced in vivo tumour imaging by EDTA-bis-GNGR functionalized core shell CdSe:ZnS quantum dot: synergistic effect of active passive targeting

机译:EDTA-BIS-GNGR官能化核壳CDSE中增强了体内肿瘤成像:ZNS量子点:主动被动靶向的协同效应

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It has been shown in one of our earlier studies that the homodimeric N _(2) S _(2) system enhances the biocompatibility of semiconductor core shell CdSe:ZnS quantum dots by lowering their toxicity and optimizing the steric ligand packing density. In this study we functionalize the core shell quantum dots with the same homodimeric ligand and add two moieties of GNGR (Gly-Asn-Gly-Asp) peptide which contain the NGR motif known to target the CD13 receptors in tumour vasculature. The aim is to study the influence of active receptor based targeting by peptide and passive targeting by QD nanoconjugate on tumour imaging. The core shell CdSe:ZnS quantum dot were synthesised and conjugated with EDTA-bis-GNGR ligand. The docking studies show high binding affinity of the synthesised quantum dot nanoconjugate to the CD13 receptor. The GNGR peptide was synthesised on solid phase using Fmoc chemistry, followed by its conjugation to EDTA-bis-cysteamine. The complete physicochemical characterisation of the ligand was done using ~(1) H NMR, ~(13) C NMR and mass. The comparative in vivo kinetics, biodistribution and tumour targeting by native GNGR, EDTA-bis-GNGR and EDTA-bis-GNGR-QD was studied in murines after radiolabelling with ~(99m) Tc. The changes observed in vivo on comparing the three are very interesting. A seven fold increase in tumour uptake is seen after nanoconjugation highlighting the synergistic effect of active passive targeting resulting in enhanced tumour imaging. This study thus opens up a new area where the nanoplatforms can be designed to get the best of both targeting and potential theranostic applications.
机译:在我们之前的研究之一中,同源化N _(2)S _(2)系统增强了半导体核心壳CDSE的生物相容性,通过降低它们的毒性并优化空间配体填充密度来增强半导体核心壳CDSE的生物相容性。在该研究中,我们用相同的同源二聚体配体官能化核壳量子点,并加入含有NGR基质的GNGR(Gly-Asn-Gly-ASP)肽的两部分,该肽已知靶向肿瘤脉管系统中的CD13受体。目的是研究QD纳米缀合物对肿瘤成像的肽和被动靶向基于肽和被动靶向的基于活性受体的靶向的影响。核心壳CDSE:ZnS量子点被合成并与EDTA-BIS-GNGR配体缀合。对接研究显示合成量子点纳米缀合物与CD13受体的高结合亲和力。使用FMOC化学在固相上合成GNGR肽,然后将其与EDTA-BIS-胱胺的缀合。使用〜(1)H NMR,〜(13)C NMR和质量完成配体的完全物理化学表征。在用〜(99m)Tc的放射性标记后,在鼠中测定了天然GNGR,EDTA-BIS-GNGR和EDTA-BIS-GNGR-QD的体内动力学,生物分布和肿瘤的比较。比较三者在体内观察到的变化非常有趣。在纳米谐波突出显示活性被动靶向产生增强肿瘤成像的协同效应之后,肿瘤摄取量增加了七倍。因此,该研究开辟了一个新的领域,其中纳米片可以设计成获得靶向和潜在的治疗应用。

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