Yang Yilin, Wang Zhihua, Wang Ning, Yan Fei, Shi Zhan, Feng Shouhua
State Key Laboratory of Inorganic Synthesis and Preparative Chemistry, College of Chemistry, Jilin University, 2699 Qianjin Street, Changchun 130012, China.
State Key Laboratory of Inorganic Synthesis and Preparative Chemistry, College of Chemistry, Jilin University, 2699 Qianjin Street, Changchun 130012, China.
Acta Biomater. 2025 May 1. doi: 10.1016/j.actbio.2025.05.001.
Metal-organic framework (MOF)-based nano-sonosensitizers are promising for antitumor sonodynamic therapy (SDT). Under ultrasound (US) irradiation, MOF-based sonosensitizers can generate reactive oxygen species (ROS), thereby exerting cytotoxic effects on tumor cells. However, their low electron-hole (e/h) separation efficiency and limited tumor-targeting capability hinder the therapeutic efficacy of SDT. In this study, these challenges were addressed by developing a MOF-on-MOF Z-scheme heterojunction GaMOF/TiMOF (GM/TM) to enable mitochondria-targeted SDT. Research on gallium (Ga)-based materials in the field of antitumor treatment is continuously advancing, particularly in targeted therapy and combination therapy. The GM/TM heterojunction was constructed by epitaxially growing GaMOF on the surface of NH-MIL-125 (TiMOF), forming a structure that effectively enhances charge transfer and prevents rapid e/h recombination, significantly enhancing ROS generation and apoptosis under US irradiation. Additionally, the presence of surface Ga enables efficient mitochondrial targeting in tumor cells, leading to altered membrane permeability, mitochondrial iron overload, and the initiation of ferroptosis via lipid peroxidation. These synergistic effects collectively result in potent antitumor efficacy. This study conceptually introduces the MOF-on-MOF heterojunction as a multifunctional sonosensitizer for mitochondria-targeted tumor therapy, offering a reference for the development of SDT and providing insights into the bioavailability and potential applications of gallium-based materials in antitumor treatment. STATEMENT OF SIGNIFICANCE: In this study, we developed a MOF-on-MOF composite ultrasound-sensitive platform targeting mitochondria to improve the efficacy of SDT in complex tumor lesions. It integrated apoptosis and ferroptosis to enhance anti-tumor SDT via ultrasound. The Z-scheme heterostructure sonosensitizer GaMOF/TiMOF significantly enhanced ROS generation under ultrasound and accumulated in mitochondria, making them the primary target for SDT. Moreover, the damage to mitochondrial function caused by GaMOF/TiMOF led to an imbalance of endogenous iron and oxidative stress, inducing mitochondrial-associated ferroptosis. This, in turn, triggered lipid peroxidation in conjunction with high levels of ROS generated by ultrasound, significantly enhancing the anti-tumor effects of SDT. This work provided a new strategy for efficient and safe sonosensitizer modification and proposed an innovative mitochondrial-targeted therapeutic approach.
基于金属有机框架(MOF)的纳米声敏剂在抗肿瘤声动力疗法(SDT)中具有广阔前景。在超声(US)照射下,基于MOF的声敏剂可产生活性氧(ROS),从而对肿瘤细胞发挥细胞毒性作用。然而,其低的电子 - 空穴(e/h)分离效率和有限的肿瘤靶向能力阻碍了SDT的治疗效果。在本研究中,通过构建一种MOF-on-MOF Z型异质结GaMOF/TiMOF(GM/TM)来实现线粒体靶向SDT,从而解决了这些挑战。在抗肿瘤治疗领域,对镓(Ga)基材料的研究不断推进,特别是在靶向治疗和联合治疗方面。GM/TM异质结是通过在NH-MIL-125(TiMOF)表面外延生长GaMOF构建而成,形成了一种有效增强电荷转移并防止e/h快速复合的结构,显著增强了超声照射下的ROS生成和细胞凋亡。此外,表面Ga的存在使肿瘤细胞能够高效地靶向线粒体,导致膜通透性改变、线粒体铁过载,并通过脂质过氧化引发铁死亡。这些协同效应共同产生强大的抗肿瘤效果。本研究在概念上引入了MOF-on-MOF异质结作为一种用于线粒体靶向肿瘤治疗的多功能声敏剂,为SDT的发展提供了参考,并为镓基材料在抗肿瘤治疗中的生物利用度和潜在应用提供了见解。
在本研究中,我们开发了一种靶向线粒体的MOF-on-MOF复合超声敏感平台,以提高复杂肿瘤病变中SDT的疗效。它整合了凋亡和铁死亡,通过超声增强抗肿瘤SDT。Z型异质结声敏剂GaMOF/TiMOF在超声作用下显著增强ROS生成并在线粒体中积累,使其成为SDT的主要靶点。此外,GaMOF/TiMOF对线粒体功能的损害导致内源性铁和氧化应激失衡,诱导线粒体相关的铁死亡。这反过来又与超声产生的高水平ROS一起引发脂质过氧化,显著增强了SDT的抗肿瘤作用。这项工作为高效安全的声敏剂修饰提供了新策略,并提出了一种创新的线粒体靶向治疗方法。