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基于谷胱甘肽激活的双水杨酸根合铋金属有机框架纳米前药增强乳腺癌声动力治疗

A glutathione-activated bismuth-gallic acid metal-organic framework nano-prodrug for enhanced sonodynamic therapy of breast tumor.

机构信息

School of Materials and Chemistry, Institute of Bismuth Science, University of Shanghai for Science and Technology, Shanghai 200093, China.

School of Materials and Chemistry, Institute of Bismuth Science, University of Shanghai for Science and Technology, Shanghai 200093, China.

出版信息

J Colloid Interface Sci. 2025 Feb;679(Pt A):214-223. doi: 10.1016/j.jcis.2024.09.233. Epub 2024 Sep 29.

Abstract

Sonodynamic therapy is a promising, noninvasive, and precise tumor treatment that leverages sonosensitizers to generate cytotoxic reactive oxygen species during ultrasound stimulation. Gallic acid (GA), a natural polyphenol, possesses certain anti-tumor properties, but exhibits significant toxicity toward normal cells, limiting its application in cancer treatment. To overcome this issue, we synthesized a bismuth-gallic acid (BGA), coordinated metal-organic framework (MOF) nano-prodrug. Upon encountering glutathione (GSH), BGA gradually dissociated and depleted GSH, releasing GA, which had anti-tumor effects. As an MOF with semiconductor properties, BGA primarily produced superoxide anion radical upon ultrasound excitation. After the release of GA, GA generated superoxide anion radical and further produced high toxic singlet oxygen under ultrasound stimulation, while further oxidizing and consuming GSH, enhancing sonocatalytic performance. Additionally, the released GA induced cell cycle arrest, ultimately leading to apoptosis. Our results revealed that BGA, as a GSH-activated, metal-polyphenol MOF nano-prodrug, showed potential for use in breast tumor sonodynamic therapy, providing a novel strategy for precise tumor treatment.

摘要

声动力学疗法是一种有前途的、非侵入性的和精确的肿瘤治疗方法,它利用声敏剂在超声刺激下产生细胞毒性活性氧。没食子酸(GA)是一种天然多酚,具有一定的抗肿瘤特性,但对正常细胞表现出显著的毒性,限制了其在癌症治疗中的应用。为了克服这个问题,我们合成了一种铋-没食子酸(BGA)配位金属-有机骨架(MOF)纳米前药。当遇到谷胱甘肽(GSH)时,BGA 逐渐解离并耗尽 GSH,释放出具有抗肿瘤作用的 GA。作为一种具有半导体性质的 MOF,BGA 主要在超声激发下产生超氧阴离子自由基。GA 释放后,GA 在超声刺激下产生超氧阴离子自由基,并进一步产生高毒性的单线态氧,同时进一步氧化和消耗 GSH,增强了声催化性能。此外,释放的 GA 诱导细胞周期停滞,最终导致细胞凋亡。我们的结果表明,BGA 作为一种 GSH 激活的金属-多酚 MOF 纳米前药,在乳腺癌声动力学治疗中具有应用潜力,为精确肿瘤治疗提供了一种新策略。

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