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用于生物成像和光动力疗法的多功能MnCuInSe/ZnS量子点

Multifunctional MnCuInSe/ZnS quantum dots for bioimaging and photodynamic therapy.

作者信息

Irmania Novi, Dehvari Khalilalrahman, Chang Jia-Yaw

机构信息

Department of Chemical Engineering, 34878National Taiwan University of Science and Technology, Taipei, Taiwan, China.

出版信息

J Biomater Appl. 2022 Apr;36(9):1617-1628. doi: 10.1177/08853282211068959. Epub 2022 Feb 21.

Abstract

In this work, manganese (Mn)-doped CuInSe quantum dots (QDs) with a ZnS passivation layer (MnCuInSe/ZnS) have been synthesized via a one-pot microwave-assisted hydrothermal reaction using glutathione (GSH) as a stabilizer. The MnCuInSe/ZnS core-shell QDs combine magnetic resonance imaging (MRI), excitation-dependent red emission, and reactive oxygen radical generation functions, in which regulation of Mn incorporation leads to synergistic imaging and therapeutic modalities. The MnCuInSe/ZnS QDs exhibit high colloidal and photochemical stability in simulated media and at different pH values. An r/r ratio of 9.99 was calculated from MRI studies suggesting their potential application as dual-modal imaging agents. Based on tests on Hela, B16, and HepG2 cell lines, it is apparent that MnCuInSe/ZnS QDs impose no significant cytotoxicity in the dark, while they can efficiently generate singlet oxygen radicals for photodynamic therapy of cancers, killing more than 80% of B16 cells within 5 min of laser irradiation (671 nm, 1 W cm). Furthermore, fluorescence imaging and cellular internalization of QDs are examined to visualize cellular uptake and in situ ROS generation. Therefore, this research exemplifies a new set of multifunctional chalcogenide QDs for theranostic applications.

摘要

在本研究中,通过一锅法微波辅助水热反应,以谷胱甘肽(GSH)作为稳定剂,合成了具有ZnS钝化层的锰(Mn)掺杂铜铟硒量子点(QDs)(MnCuInSe/ZnS)。MnCuInSe/ZnS核壳量子点结合了磁共振成像(MRI)、激发依赖的红色发射和活性氧自由基生成功能,其中锰掺入量的调节导致了协同成像和治疗方式。MnCuInSe/ZnS量子点在模拟介质和不同pH值下表现出高胶体稳定性和光化学稳定性。通过MRI研究计算出的r/r比为9.99,表明它们作为双模态成像剂的潜在应用。基于对Hela、B16和HepG2细胞系的测试,很明显MnCuInSe/ZnS量子点在黑暗中不会产生明显的细胞毒性,而它们可以有效地产生单线态氧自由基用于癌症的光动力治疗,在激光照射(671nm,1W/cm)5分钟内杀死超过80%的B16细胞。此外,还对量子点的荧光成像和细胞内化进行了检测,以可视化细胞摄取和原位ROS生成。因此,本研究例证了一组用于诊疗应用的新型多功能硫族化物量子点。

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