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小檗碱介导的荧光金纳米团簇负载于仿生红细胞膜囊泡中作为纳米载体用于增强光动力治疗

Berberine mediated fluorescent gold nanoclusters in biomimetic erythrocyte ghosts as a nanocarrier for enhanced photodynamic treatment.

作者信息

Pearl Wrenit Gem, Selvam Rajakar, Karmenyan Artashes V, Perevedentseva Elena V, Hung Shih-Che, Chang Hsin-Hou, Shushunova Natalia, Prikhozhdenko Ekaterina S, Bratashov Daniil, Tuchin Valery V, Cheng Chia-Liang

机构信息

Department of Physics, National Dong Hwa University 97401 Taiwan

P. N. Lebedev Physics Institute of Russian Academy of Sciences Moscow 119991 Russia.

出版信息

RSC Adv. 2024 Jan 19;14(5):3321-3334. doi: 10.1039/d3ra08299g. eCollection 2024 Jan 17.

Abstract

Photodynamic therapy (PDT) is a well-established cancer treatment method that employs light to generate reactive oxygen species (ROS) causing oxidative damage to cancer cells. Nevertheless, PDT encounters challenges due to its oxygen-dependent nature, which makes it less effective in hypoxic tumor environments. To address this issue, we have developed a novel nanocomposite known as AuNC@BBR@Ghost. This nanocomposite combines the advantageous features of erythrocyte ghost membranes, the photoresponsive properties of gold nanoclusters (AuNC) and the anticancer characteristics of Berberine (BBR) for cancer treatment. Our synthesized AuNC efficiently produce ROS, with a 25% increase in efficiency when exposed to near-infrared (NIR) irradiation. By harnessing the oxygen-carrying capacity of erythrocyte ghost cells, AuNC@BBR@Ghost demonstrates a significant improvement in ROS generation, achieving an 80% efficiency. Furthermore, the AuNC exhibit tunable emission wavelengths due to their excellent fluorescent properties. In normoxic conditions, treatment of A549 lung carcinoma cells with AuNC@BBR@Ghost followed by exposure to 808 nm NIR irradiation results in a notable increase in intracellular ROS levels, accelerating cell death. In hypoxic conditions, when A549 cells were treated with AuNC@BBR@Ghost, the erythrocyte ghost acted as an oxygen supplement due to the residual hemoglobin, alleviating hypoxia and enhancing the nanocomposite's sensitivity to PDT treatment. Thus, the AuNC@BBR@Ghost nanocomposite achieves an improved effect by combining the advantageous properties of its individual components, resulting in enhanced ROS generation and adaptability to hypoxic conditions. This innovative approach successfully overcomes PDT's limitations, making AuNC@BBR@Ghost a promising nanotheranostic agent with significant potential for advanced cancer therapy.

摘要

光动力疗法(PDT)是一种成熟的癌症治疗方法,它利用光产生活性氧(ROS),对癌细胞造成氧化损伤。然而,由于其对氧气的依赖性,PDT面临挑战,这使得它在缺氧的肿瘤环境中效果较差。为了解决这个问题,我们开发了一种新型纳米复合材料,称为AuNC@BBR@Ghost。这种纳米复合材料结合了红细胞鬼膜的优势特性、金纳米团簇(AuNC)的光响应特性以及黄连素(BBR)的抗癌特性用于癌症治疗。我们合成的AuNC能高效产生活性氧,在近红外(NIR)照射下效率提高25%。通过利用红细胞鬼细胞的携氧能力,AuNC@BBR@Ghost在活性氧生成方面有显著改善,效率达到80%。此外,AuNC由于其优异的荧光特性,发射波长可调。在常氧条件下,用AuNC@BBR@Ghost处理A549肺癌细胞,然后暴露于808 nm近红外辐射,细胞内活性氧水平显著增加,加速细胞死亡。在缺氧条件下,当用AuNC@BBR@Ghost处理A549细胞时,红细胞鬼由于残留的血红蛋白起到了氧气补充的作用,缓解了缺氧并增强了纳米复合材料对PDT治疗的敏感性。因此,AuNC@BBR@Ghost纳米复合材料通过结合其各个组分的优势特性实现了更好的效果,导致活性氧生成增加以及对缺氧条件的适应性增强。这种创新方法成功克服了PDT的局限性,使AuNC@BBR@Ghost成为一种有前途的纳米诊疗剂,在晚期癌症治疗中具有巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2d65/10798219/46d52f4266c9/d3ra08299g-f1.jpg

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