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Nanoimaging: photophysical and pharmaceutical characterization of poly-lactide-co-glycolide nanoparticles engineered with quantum dots

机译:纳米成像:用量子点设计的聚丙交酯-乙交酯共聚物纳米颗粒的光物理和药物表征

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Quantum dots (QDs) and polymeric nanoparticles (NPs) are considered good binomials for the development of multifunctional nanomedicines for multimodal imaging. Fluorescent imaging of QDs can monitor the behavior of QD-labeled NPs in both cells and animals with high temporal and spatial resolutions. The comprehension of polymer interaction with the metallic QD surface must be considered to achieve a complete chemicophysical characterization of these systems and to describe the QD optical properties to be used for their unequivocal identification in the tissue. In this study, by comparing two different synthetic procedures to obtain polymeric nanoparticles labeled with QDs, we investigated whether their optical properties may change according to the formulation methods, as a consequence of the different polymeric environments. Atomic force microscopy, transmission electron microscopy, confocal and fluorescence lifetime imaging microscopy characterization demonstrated that NPs modified with QDs after the formulation process (post-NPs-QDs) conserved the photophysical features of the. QD probe. In contrast, by using a polymer modified with QDs to formulate NPs (pre-NPs-QDs), a significant quenching of QD fluorescence and a blueshift in its emission spectra were observed. Our results suggest that the packaging of QDs into the polymeric matrix causes a modification of the QD optical properties: these effects must be characterized in depth and carefully considered when developing nanosystems for imaging and biological applications.
机译:量子点(QD)和聚合物纳米颗粒(NPs)被认为是开发用于多峰成像的多功能纳米药物的良好二项式。 QD的荧光成像可以高时间和空间分辨率监测细胞和动物中QD标记的NP的行为。必须考虑理解聚合物与金属QD表面的相互作用,以实现这些系统的完整化学物理表征,并描述用于组织中明确鉴定的QD光学性质。在这项研究中,通过比较两种不同的合成程序以获得带有QD标记的聚合物纳米颗粒,我们研究了由于不同的聚合物环境,其光学性能是否会根据配制方法而改变。原子力显微镜,透射电镜,共焦和荧光寿命成像显微镜表征表明,在配制过程后(QNP后),经QD修饰的NP保留了其光物理特性。 QD探针。相比之下,通过使用经QD修饰的聚合物来配制NP(前NPs-QDs),可以观察到QD荧光的显着猝灭和发射光谱的蓝移。我们的结果表明,将QD封装到聚合物基体中会导致QD光学特性的改变:在开发用于成像和生物应用的纳米系统时,必须深入表征这些效应并仔细考虑。

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