声激活纳米平台通过加剧肿瘤缺氧实现肿瘤消退。

Caixia Ling, Shanshan Ma, Mengqi Zhang, Danke Su, Zixuan Liang
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引用次数: 0

摘要

背景:通过阻断肿瘤的营养和氧血供,“饿死癌细胞”来减缓肿瘤的快速增殖,是肿瘤治疗的一个重大挑战。方法:我们开发了一个多途径纳米平台,旨在改善缺氧加剧的癌症饥饿治疗。这是通过将声敏化剂ir780和血管干扰物vadimezan (DMXAA)共同加载到树突状二氧化硅纳米载体中,通过简单的一锅合成方法建立酸响应纳米平台,称为DMXAA/IR780@SiO2 (DIS NPs)。通过体内和体外实验来确定该纳米材料的抗肿瘤机制。结果:体外细胞实验显示,通过DMXAA/IR780@SiO2达到肿瘤微环境的酸性值,使DIS NPs中的二氧化硅降解,同时伴有药物的释放,释放的DMXAA破坏肿瘤部位的血管,从而阻断氧气和营养的供应。同时,DIS NPs裂解后释放的声敏化剂ir780在超声(US)作用下产生活性氧,使氧气消耗,进一步加重肿瘤缺氧,并通过破坏氧化还原反应损伤线粒体,最终引发细胞损伤甚至死亡。此外,当与超声US治疗联合使用时,观察到对体内肿瘤的显著治疗效果,在声学动力学和血管破坏方面显示出协同治疗效果,并且具有良好的生物安全性。结论:DIS NPs在缺氧加重的癌症饥饿治疗中表现出良好的前景,为癌症治疗提供了一条潜在的新途径,具有良好的疗效和生物相容性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Acoustically activated nanoplatforms achieve tumor regression by exacerbating tumor hypoxia.

Background: Rapid tumor proliferation can be mitigated by "starving the cancer cells" through nutrient and oxygen blood supply blockade to the tumor, which is a significant challenge in oncological treatment.

Methods: We developed a multipathway nano platform designed to improve hypoxia-exacerbated cancer starvation therapy. This was achieved by co-loading the acoustic sensitizer-IR780-and the vascular disruptor-vadimezan (DMXAA)-into dendritic silica nanocarriers to establish acid-responsive nanoplatforms, termed DMXAA/IR780@SiO2 (DIS NPs), using a simple one-pot synthesis method. In vivo and in vitro experiments were conducted to determine the antitumor mechanisms of this nanomaterial.

Results: In vitro cellular experiments revealed that reaching the acidic tumor microenvironment value with DMXAA/IR780@SiO2 degrades silica in DIS NPs, accompanied by the release of the drug, and the released DMXAA damaged blood vessels at the tumor site, thereby blocking oxygen and nutrient supplies. Concurrently, the acoustic sensitizer-IR780-released after the cleavage of DIS NPs generates reactive oxygen species under the action of ultrasound (US), thereby depleting oxygen, further aggravating tumor hypoxia, and damaging the mitochondria by disrupting the redox reaction, which ultimately triggers cellular damage and even death. Further, a significant therapeutic effect on tumors in vivo was observed when combined with ultrasound US therapy, demonstrating synergistic therapeutic effects in terms of acoustic dynamics and vascular disruption, as well as good biosafety.

Conclusion: The DIS NPs exhibit a promising approach for hypoxia-exacerbated cancer starvation therapy, providing a potential new avenue for cancer treatment with demonstrated efficacy and biocompatibility.

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