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Stable Organic Photosensitizer Nanoparticles with Absorption Peak beyond 800 Nanometers and High Reactive Oxygen Species Yield for Multimodality Phototheranostics

机译:稳定的有机光敏剂纳米颗粒,吸收峰值超过800纳米和高反应性氧物质的多层光曝光剂产量

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摘要

Effective multimodality phototheranostics under deep-penetration laser excitation is highly desired for tumor medicine, which is still at a deadlock due to lack of versatile photosensitizers with absorption located in the long-wavelength region. Herein, we demonstrate a stable organic photosensitizer nanoparticle based on molecular engineering of benzo[c ]thiophene (BT)-based photoactivated molecules with strong wavelength-tunable absorption in the near-infrared region. Via molecular design, the absorption and singlet oxygen generation of BT molecules would be reliably tuned. Importantly, the nanoparticles with a red-shifted absorption peak of 843 nm not only show over 10-fold reactive oxygen species yield compared with indocyanine green but also demonstrate a notable photothermal effect and photoacoustic signal upon 808 nm excitation. The in vitro and in vivo experiments substantiate good multimodal anticancer efficacy and imaging performance of BT theranostics. This work provides an organic photosensitizer nanoparticle with long-wavelength excitation and high photoenergy conversion efficiency for multimodality phototherapy.
机译:对于深度渗透激光激发的有效的多模光曝光,对于肿瘤药物,对于由于缺乏位于长波长区域中的吸收的多功能光敏剂而仍然处于僵局。在此,我们证明了一种稳定的有机光敏剂纳米粒子,基于苯并[I> C]噻吩(BT)的分子工程 - 基于近红外区域具有强波长可调谐吸收的光粘活化分子。 通过分子设计,将可靠地调整BT分子的吸收和单线产生。重要的是,具有843nm的红移吸收峰的纳米颗粒不仅显示出与吲哚菁绿相比超过10倍的活性氧物质产率,而且还证明了808nm激发的显着的光热效应和光声信号。体外实验中的在体外和证实了BT Theranostics的良好多模式抗癌疗效和成像性能。该工作提供了一种具有长波长激励的有机光敏剂纳米粒子,以及用于多层光疗法的高波长激励和高光电型转换效率。

著录项

  • 来源
    《ACS nano》 |2020年第8期|共12页
  • 作者单位

    Center of Super-Diamond and Advanced Films (COSDAF) &

    Department of Chemistry;

    Key Laboratory of Molecular Medicine and Biotherapy School of Life Sciences Beijing Institute of Technology;

    Department of Chemistry National Taiwan University Institute of Atomic and Molecular Science Academia Sinica;

    Department of Chemistry National Taiwan University Institute of Atomic and Molecular Science Academia Sinica;

    Center of Super-Diamond and Advanced Films (COSDAF) &

    Department of Chemistry;

    Center of Super-Diamond and Advanced Films (COSDAF) &

    Department of Chemistry;

    Center of Super-Diamond and Advanced Films (COSDAF) &

    Department of Chemistry;

    Center of Super-Diamond and Advanced Films (COSDAF) &

    Department of Chemistry;

    Center of Super-Diamond and Advanced Films (COSDAF) &

    Department of Chemistry;

    Joint Laboratory of Nano-organic Functional Materials and Devices (TIPC and CityU) City University of Hong Kong;

    Joint Laboratory of Nano-organic Functional Materials and Devices (TIPC and CityU) City University of Hong Kong;

    Joint Laboratory of Nano-organic Functional Materials and Devices (TIPC and CityU) City University of Hong Kong;

    Key Laboratory of Molecular Medicine and Biotherapy School of Life Sciences Beijing Institute of Technology;

    Key Laboratory of Molecular Medicine and Biotherapy School of Life Sciences Beijing Institute of Technology;

    Department of Chemistry National Taiwan University Institute of Atomic and Molecular Science Academia Sinica;

    Center of Super-Diamond and Advanced Films (COSDAF) &

    Department of Chemistry;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子物理学、原子物理学;
  • 关键词

    photosensitizer; near-infrared; organic nanoparticles; multimodality; theranostics;

    机译:光敏剂;近红外;有机纳米颗粒;多模;Theranostics;

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