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Highly fluorescent and superparamagnetic nanosystem for biomedical applications

机译:用于生物医学应用的高荧光和超顺磁性纳米系统

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摘要

This work reports on highly fluorescent and superparamagnetic bimodal nanoparticles (BNPs) obtained by a simple and efficient method as probes for fluorescence analysis and/or contrast agents for MRI. These promising BNPs with small dimensions (ca. 17nm) consist of superparamagnetic iron oxide nanoparticles (SPIONs) covalently bound with CdTe quantum dots (ca. 3nm). The chemical structure of the magnetic part of BNPs is predominantly magnetite, with minor goethite and maghemite contributions, as shown by Mossbauer spectroscopy, which is compatible with the x-ray diffraction data. Their size evaluation by different techniques showed that the SPION derivatization process, in order to produce the BNPs, does not lead to a large size increase. The BNPs saturation magnetization, when corrected for the organic content of the sample, is ca. 68 emu g(-1), which is only slightly reduced relative to the bare nanoparticles. This indicates that the SPION surface functionalization does not change considerably the magnetic properties. The BNP aqueous suspensions presented stability, high fluorescence, high relaxivity ratio (r(2)/r(1) equal to 25) and labeled efficiently HeLa cells as can be seen by fluorescence analysis. These BNP properties point to their applications as fluorescent probes as well as negative T-2-weighted MRI contrast agents. Moreover, their potential magnetic response could also be used for fast bioseparation applications.
机译:这项工作报告了通过一种简单有效的方法作为MRI的荧光分析和/或造影剂的探针获得的高荧光和超顺磁性双峰纳米粒子(BNP)。这些具有小尺寸(约17nm)的有前途的BNP由超顺磁性氧化铁纳米颗粒(散氏)与CdTe量子点(约3nm)共价结合。 BNP的磁性部分的化学结构主要是磁铁矿,具有轻微的碎片纤维素和磁石散,如疣蛋白光谱所示,其与X射线衍射数据兼容。它们的尺寸评估通过不同的技术表明,Spion衍生化过程,为了产生BNP,不会导致大尺寸增加。 BNPS饱和磁化,当校正样品的有机含量时,是CA。 68 EMU G(-1),其相对于裸纳米颗粒略微减小。这表明Spion表面官能化不会显着变化磁性。 BNP含水悬浮液呈现稳定性,高荧光,高松弛率(R(2)/ R(1)等于25),并通过荧光分析可以看到高效的HeLa细胞。这些BNP属性点为其应用作为荧光探针以及阴性T-2加权MRI造影剂。此外,它们的潜在磁响应也可用于快速生物分离应用。

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