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Fluorescent/phosphorescent dual-emissive conjugated polymer dots for hypoxia bioimaging

机译:用于缺氧生物成像的荧光/磷光双发射共轭聚合物点

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摘要

A kind of fluorescent/phosphorescent dual-emissive conjugated polyelectrolyte has been prepared by introducing phosphorescent platinum(ii) porphyrin (O2-sensitive) into a fluorene-based conjugated polyelectrolyte (O2-insensitive), which can form ultrasmall conjugated polymer dots (FP-Pdots) in the phosphate buffer solution (PBS) via self-assembly caused by their amphiphilic structures with hydrophobic backbones and hydrophilic side chains. These FP-Pdots can exhibit an excellent ratiometric luminescence response to O2 content with high reliability and full reversibility for measuring oxygen levels, and the excellent intracellular ratiometric O2 sensing properties of the FP-Pdots nanoprobe have also been confirmed by the evident change in the I red/I blue ratio values in living cells cultured at different O2 concentrations. To confirm the reliability of the O2 sensing measurements of the FP-Pdots nanoprobe, O2 quenching experiments based on lifetime measurements of phosphorescence from Pt(ii) porphyrin moieties have also been carried out. Utilizing the sensitivity of the long phosphorescence lifetime from Pt(ii) porphyrins to oxygen, the FP-Pdots have been successfully applied in time-resolved luminescence imaging of intracellular O2 levels, including photoluminescence lifetime imaging and time-gated luminescence imaging, which will evidently improve the sensing sensitivity and reliability. Finally, in vivo oxygen sensing experiments were successfully performed by luminescence imaging of tumor hypoxia in nude mice.
机译:通过将磷光的铂(ii)卟啉(O2敏感)引入芴基共轭聚电解质(O2不敏感)中,可以制备一种荧光/磷光双发射共轭聚电解质,可以形成超小共轭聚合物点(FP-磷酸缓冲液(PBS)中的Pdots通过其具有疏水性主链和亲水性侧链的两亲结构引起的自组装而形成。这些FP-Pdots可以表现出对O2含量的出色的比例发光响应,具有高的可靠性和完全可逆性,可用于测量氧水平,并且FP-Pdots纳米探针的出色的细胞内比率式O2感测特性也已被I的明显变化所证实。在不同O2浓度下培养的活细胞中的红色/蓝色比率值。为了确认FP-Pdots纳米探针的O2传感测量的可靠性,还进行了基于Pt(ii)卟啉部分的磷光寿命的O2猝灭实验。利用Pt(ii)卟啉对氧气的长磷光寿命的敏感性,FP-Pdots已成功应用于细胞内O2水平的时间分辨发光成像,包括光致发光寿命成像和时间门控发光成像。提高感应灵敏度和可靠性。最后,通过对裸鼠体内的肿瘤缺氧进行发光成像,成功地进行了体内氧气传感实验。

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