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具有吸收红移的碳点用于肿瘤组织 pH 值的双光子荧光成像和协同光疗。

Carbon Dots with Absorption Red-Shifting for Two-Photon Fluorescence Imaging of Tumor Tissue pH and Synergistic Phototherapy.

机构信息

State Key Laboratory for the Chemistry and Molecular Engineering of Medicinal Resources, Key Laboratory of Ecology of Rare and Endangered Species and Environmental Protection, Guangxi Normal University, Guilin 541004, China.

出版信息

ACS Appl Mater Interfaces. 2021 Aug 4;13(30):35365-35375. doi: 10.1021/acsami.1c08076. Epub 2021 Jul 21.

Abstract

Phototherapy exhibits significant potential as a novel tumor treatment method, and the development of highly active photosensitizers and photothermal agents has drawn considerable attention. In this work, S and N atom co-doped carbon dots (S,N-CDs) with an absorption redshift effect were prepared by hydrothermal synthesis with lysine, -phenylenediamine, and sulfuric acid as raw materials. The near-infrared (NIR) absorption features of the S,N-CDs resulted in two-photon (TP) emission, which has been used in TP fluorescence imaging of lysosomes and tumor tissue pH and real-time monitoring of apoptosis during tumor phototherapy, respectively. The obtained heteroatom co-doped CDs can be used not only as an NIR imaging probe but also as an effective photodynamic therapy/photothermal therapy (PDT/PTT) therapeutic agent. The efficiencies of different heteroatom-doped CDs in tumor treatment were compared. It was found that the S,N-CDs showed higher therapeutic efficiency than N-doped CDs, the efficiency of producing O was 27%, and the photothermal conversion efficiency reached 34.4%. The study provides new insight into the synthesis of carbon-based nanodrugs for synergistic phototherapy and accurate diagnosis of tumors.

摘要

光疗作为一种新型的肿瘤治疗方法具有显著的潜力,因此,高效的光敏剂和光热试剂的开发引起了广泛关注。在这项工作中,以赖氨酸、邻苯二胺和硫酸为原料,通过水热合成制备了具有吸收红移效应的 S 和 N 原子共掺杂碳点(S,N-CDs)。S,N-CDs 的近红外(NIR)吸收特性导致双光子(TP)发射,分别用于溶酶体的 TP 荧光成像和肿瘤组织 pH 值以及肿瘤光疗期间细胞凋亡的实时监测。所获得的杂原子共掺杂 CDs 不仅可用作 NIR 成像探针,而且可用作有效的光动力疗法/光热疗法(PDT/PTT)治疗剂。比较了不同杂原子掺杂 CDs 在肿瘤治疗中的效率。结果发现,S,N-CDs 的治疗效率高于 N 掺杂 CDs,产生 O 的效率为 27%,光热转换效率达到 34.4%。该研究为协同光疗和肿瘤的精确诊断提供了一种合成基于碳的纳米药物的新视角。

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