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基于 CdSe/ZnS 量子点的平台,用于将铝酞菁递送至细菌细胞。

A CdSe/ZnS quantum dot-based platform for the delivery of aluminum phthalocyanines to bacterial cells.

机构信息

Department of Biophysics, Faculty of Biology, M.V. Lomonosov Moscow State University, 119992 Moscow, Russia.

Department of Biophysics, Faculty of Biology, M.V. Lomonosov Moscow State University, 119992 Moscow, Russia.

出版信息

J Photochem Photobiol B. 2018 Oct;187:170-179. doi: 10.1016/j.jphotobiol.2018.08.003. Epub 2018 Aug 2.

Abstract

Enhancement of optical properties of photosensitizers by additional light-harvesting antennas is promising for the improvement of the photodynamic therapy. However, large number of parameters determine interactions of nanoparticles and photosensitizers in complex and, thus the photodynamic efficacy of the hybrid structure. In order to achieve high efficiency of energetic coupling and photodynamic activity of such complexes it is important to know the location of the photosensitizer molecule on the nanoparticle, because it affects the spectral properties of the photosensitizer and the stability of the hybrid complex in vitro/in vivo. In this work complexes of polycationic aluminum phthalocyanines and CdSe/ZnS quantum dots were obtained. We used quantum dots which outer shell consists of polymer with carboxyl groups and provides water solubility and the negative charge of the nanoparticle. We found that phthalocyanine molecules could penetrate deeply into the polymer shell of quantum dot, leading thereby to significant changes in the spectral and photodynamic properties of phthalocyanines. We also showed that noncovalent interactions between phthalocyanine and quantum dot provide possibility for a release of the phthalocyanine from the hybrid complex and its binding to both Gram-positive and Gram-negative bacterial cells. Also, detailed characterization of the nanoparticle core and shell sizes was carried out.

摘要

通过额外的光收集天线来增强光敏剂的光学性质,有望改善光动力疗法。然而,大量参数决定了纳米粒子和光敏剂在复杂体系中的相互作用,因此也决定了杂化结构的光动力疗效。为了实现这种复合物的高效能量偶联和光动力活性,了解光敏剂分子在纳米粒子上的位置是很重要的,因为它会影响光敏剂的光谱性质和杂化复合物在体外/体内的稳定性。在这项工作中,我们获得了聚阳离子铝酞菁和 CdSe/ZnS 量子点的复合物。我们使用的量子点外壳由带有羧基的聚合物组成,提供了纳米粒子的水溶性和负电荷。我们发现酞菁分子可以深入到量子点的聚合物壳中,从而导致酞菁光谱和光动力性质的显著变化。我们还表明,酞菁和量子点之间的非共价相互作用为酞菁从杂化复合物中释放出来并与革兰氏阳性和革兰氏阴性细菌细胞结合提供了可能性。此外,还对纳米粒子核和壳的尺寸进行了详细的表征。

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