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一种金属配位聚合物纳米颗粒协同重建酸中毒并增强对胶质母细胞瘤的化学动力学治疗。

A metal coordination polymer nanoparticle synergistically re-establishes acidosis and enhances chemodynamic therapy for Glioblastoma.

作者信息

Chi Yajing, Song Chaoqi, Jia Qian, Zhang Ruili, Sun Fang, Li Zheng, Jia Yuanyuan, An Xian, Wang Zhongliang, Li Jianxiong

机构信息

School of Medicine, Nankai University, Tianjin, 300071, China; Lab of Molecular Imaging and Translational Medicine (MITM), Engineering Research Center of Molecular and Neuro Imaging, Ministry of Education, School of Life Science and Technology, Xidian University & International Joint Research Center for Advanced Medical Imaging and Intelligent Diagnosis and Treatment, Xi'an, Shaanxi, 710126, China.

Lab of Molecular Imaging and Translational Medicine (MITM), Engineering Research Center of Molecular and Neuro Imaging, Ministry of Education, School of Life Science and Technology, Xidian University & International Joint Research Center for Advanced Medical Imaging and Intelligent Diagnosis and Treatment, Xi'an, Shaanxi, 710126, China.

出版信息

Acta Biomater. 2025 Jan 15;192:290-301. doi: 10.1016/j.actbio.2024.11.042. Epub 2024 Nov 26.

DOI:10.1016/j.actbio.2024.11.042
PMID:39608659
Abstract

BACKGROUND

Chemodynamic therapy (CDT) has become increasingly important as a tumor treatment strategy, which relies on intracellular acid and hydrogen peroxide to kill tumor cells by generating hydroxyl radicals (·OH) through Fenton/Fenton-like reactions. However, the weakly alkaline intracellular environment considerably caused by the efflux of lactate and H from glioblastoma cells is not conducive to CDT performance. Intracellular acidification induced by inhibiting the transmembrane monocarboxylate transporter 4 (MCT4) can enhance the therapeutic efficacy of CDT. Existing approaches suffer from insufficient MCT4 inhibition, involve complex drug synthesis, and have many unsatisfactory side effects.

METHODS

In this study, we constructed an anti-tumor nanoparticle formed by self-assembly driven by the coordination interaction of Fe and α-cyano-4-hydroxycinnamate (CHC) to avoid safety issues posed by excessive modification. Fe-CHC nanoparticles were designed to decrease intracellular pH through inhibition of MCT4, which transports lactate/H to the extracellular space. The resulting intracellular accumulation of lactate and H led to fatal acidosis and promoted ·OH generated by Fenton/Fenton-like reactions with the presence of the Fe, thus enhancing CDT-induced tumor cell death.

RESULTS

In vitro and in vivo results revealed that Fe-CHC exerted a significant synergistic anti-tumor effect by re-establishing acidosis and enhancing CDT in glioblastoma. Furthermore, the decreased Houtside the cells caused by the inhibition of lactate/H efflux hindered extracellular matrix degradation, thereby inhibiting tumor metastasis.

CONCLUSION

Fe-CHC is an effective anti-cancer agent against glioblastoma. This study provides valuable insights for developing acid-modulating anti-tumor nanoparticles, as well as enriching and optimizing the application of CDT in tumor therapy.

STATEMENT OF SIGNIFICANCE

Our study pioneers the Fe-CHC nanoparticle, a metal-coordination polymer that targets MCT4 in glioblastoma cells to restore intracellular acidity and synergize with Fe to boost chemodynamic therapy (CDT). Unlike other studies, Fe and CHC work together to maximize the therapeutic potential and safety of Fe-CHC with minimal complexity. This innovative approach not only increased the production of reactive oxygen species within tumor cells, but also hindered tumor metastasis. Our work has important scientific implications for tumor microenvironment regulation and the application of CDT, and will provide a promising pathway for the treatment of aggressive cancers and attract a wide audience through its scientific implications.

摘要

背景

化学动力疗法(CDT)作为一种肿瘤治疗策略变得越来越重要,它依靠细胞内的酸性环境和过氧化氢,通过芬顿/类芬顿反应产生羟基自由基(·OH)来杀死肿瘤细胞。然而,胶质母细胞瘤细胞中乳酸和氢离子外流导致细胞内环境呈弱碱性,这对CDT的疗效有很大不利影响。抑制跨膜单羧酸转运体4(MCT4)诱导的细胞内酸化可以提高CDT的治疗效果。现有的方法存在对MCT4抑制不足、涉及复杂的药物合成且有许多不尽人意的副作用等问题。

方法

在本研究中,我们构建了一种由铁(Fe)与α-氰基-4-羟基肉桂酸(CHC)的配位相互作用驱动自组装形成的抗肿瘤纳米颗粒,以避免过度修饰带来的安全问题。设计Fe-CHC纳米颗粒通过抑制将乳酸/氢离子转运到细胞外空间的MCT4来降低细胞内pH值。由此导致的细胞内乳酸和氢离子积累会引发致命的酸中毒,并在Fe存在的情况下促进芬顿/类芬顿反应产生·OH,从而增强CDT诱导的肿瘤细胞死亡。

结果

体外和体内实验结果表明,Fe-CHC通过重新建立酸中毒和增强胶质母细胞瘤中的CDT发挥了显著的协同抗肿瘤作用。此外,抑制乳酸/氢离子外流导致细胞外氢离子减少,阻碍了细胞外基质降解,从而抑制了肿瘤转移。

结论

Fe-CHC是一种有效的抗胶质母细胞瘤抗癌剂。本研究为开发调节酸性的抗肿瘤纳米颗粒以及丰富和优化CDT在肿瘤治疗中的应用提供了有价值的见解。

意义声明

我们的研究开创了Fe-CHC纳米颗粒,这是一种金属配位聚合物,靶向胶质母细胞瘤细胞中的MCT4以恢复细胞内酸度,并与Fe协同增强化学动力疗法(CDT)。与其他研究不同,Fe和CHC共同作用,以最小的复杂性最大化Fe-CHC的治疗潜力和安全性。这种创新方法不仅增加了肿瘤细胞内活性氧的产生,还阻碍了肿瘤转移。我们的工作对肿瘤微环境调节和CDT的应用具有重要的科学意义,并将为侵袭性癌症的治疗提供一条有前景的途径,因其科学意义吸引广泛关注。

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