声动力疗法
空化
超声波
活性氧
过氧化氢
肿瘤微环境
氧气
材料科学
生物医学工程
生物物理学
肿瘤缺氧
化学
纳米技术
癌症研究
医学
放射治疗
外科
放射科
生物化学
生物
肿瘤细胞
有机化学
物理
机械
作者
Xiahui Lin,Shan Chen,Yina Su,Ying Wu,Linjie Huang,Qin Ye,Jibin Song
标识
DOI:10.1002/advs.202306301
摘要
Abstract Owing to the high penetration ability and the safety of ultrasound (US) of sonodynamic therapy (SDT), it has gained significant attention in tumor treatment. However, its therapeutic efficiency depends on the performance of the sonosensitizers. The hypoxic microenvironment and abnormal stromal matrix restrict the full potential of sonosensitizers. In this study, a US‐activated bowl‐shaped nanobomb (APBN) is designed as a novel sonosensitizer to enhance the SDT effect through various means. This enhancement strategy combines three major characteristics: relieving tumor hypoxia, amplifying bubble cavitation damage, and US‐movement‐enhanced permeation. The unique bowl‐shaped structure of APBN provides more favorable attachment sites for the generated oxygen gas bubbles. Thus, when catalase‐like APBN catalyzes endogenous hydrogen peroxide to produce oxygen, bubbles accumulate at the groove, preventing the dissipation of oxygen and increasing the number of cavitation nuclei to improve the acoustic cavitation effect. This approach differs from traditional SDT strategies because it couples the sonodynamic effect with reactive oxygen species generation and bubble cavitation damage rather than a single action. Additionally, the asymmetric bowl‐shaped structure generates a driving force under the US field, improving the distribution of sonosensitizers in the tumors. Using US and photoacoustic imaging for dual localization, these sonosensitizers can improve the accuracy of orthotopic liver tumor treatment, which presents a promising avenue for the treatment of deep tumors.
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