光激活氧化释放的多纳米载体策略:用于癌症治疗的脂质体,菌根体和体中的酸复合体
Nitin1, Nancy Sharma1,2, Priyanka Sharma2
1Department of Chemistry, National Institute of Technology Kurukshetra, Kurukshetra, 136119 Haryana, India.
ACS applied bio materials
|October 27, 2025
概括
研究人员开发了用于控制氧化 (NO) 输送的新型纳米载体,显示出有希望的光激活抗癌效应. 纳米材料设计显著影响NO释放和治疗癌症治疗的疗效.
科学领域:
- 生物医学工程 生物医学工程
- 材料科学 材料科学 材料科学
- 摄影化学的使用.
背景情况:
- 氧化 (NO) 具有治疗潜力,但面临着短半衰期和不受控制的释放等挑战.
- 正在探索新型纳米材料,以克服直接NO的局限性.
- 可光激活的NO捐赠者提供了对NO释放的时空控制.
研究的目的:
- 合成和表征一种两性尼特 (Ru-NO) 复合物 (1·NO) 作为可光激活的NO供体.
- 将Ru-NO复合体封装成各种纳米载体 (囊泡,小胞,体) 以提高NO的传递.
- 评估纳米封装Ru-NO复合物的NO释放动力学,量子产量和体外抗癌疗效.
主要方法:
- 合成一种两性Ru-NO复合物 (1·NO).
- 将1·NO封装成囊泡 (1·NO-Ves),小 (1·NO-Mic) 和阴阳体 (1·NO-Nio).
- 在蓝光照射下使用紫外线光谱,Griess测定和DAF-FM DA光学评估NO释放.
- 对4T1乳腺癌细胞的体外抗癌活性的评估.
主要成果:
- 与自由1·NO.相比,纳米封装提供了受控和长时间的NO释放.
- 尼奥索姆配方 (1·NO-Nio) 呈现出最慢的NO释放率 (0.0025分−1).
- 所有纳米载体配方都显示出光激活的抗癌活性,脂质体配方 (1·NO-Ves) 最有效.
结论:
- 不同的纳米材料平台显著影响可光控制的Ru-NO复合物的NO释放特征.
- 在癌症治疗中,纳米载体设计对于优化光活性NO捐赠者的性能至关重要.
- 这项研究表明,使用光激活的NO输送系统进行向癌症治疗的有希望的策略.
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