Wang Zeyu, Wang Xue, Fang Hongsheng, Song Xinran, Ding Li, Chang Meiqi, Yan Hao, Chen Yu
Materdicine Lab, School of Life Sciences, Shanghai University, Shanghai, 200444, P. R. China.
Department of Ultrasound, Jiangsu University Affiliated People's Hospital, Zhenjiang, 212002, P. R. China.
Adv Mater. 2025 Jun;37(24):e2414432. doi: 10.1002/adma.202414432. Epub 2025 Apr 10.
Sonocatalytic therapy is gaining interest for its non-invasive nature, precise control, and excellent tissue penetration, making it a promising approach for treating malignant tumors. While defect engineering enhances electron and hole separation to boost reactive oxygen species (ROS) generation, challenges in constructing effective hole traps compared to electron traps severely limit ROS production. In this study, 2D ZnInS-V nanosheets enriched are rationally designed with In vacancies for the efficient capture of electrons and holes, which has achieved substantial sonocatalytic performance in suppressing tumor growth. Compared to pristine ZnInS nanosheets, which possess a periodic electrostatic potential inherent in their structure, In vacancies effectively disrupt this potential field, promote the simultaneous separation and migration of charge carriers, and inhibit their recombination, thereby boosting ROS production and inducing tumor cell pyroptosis via the ROS-NLRP3-caspase-1-GSDMD pathway under ultrasound (US) irradiation. Furthermore, both pristine ZnInS and ZnInS-V nanosheets exhibited remarkable biocompatibility. In vitro and in vivo antineoplastic experiments demonstrate that this sonocatalytic approach effectively promotes tumor elimination, underscoring the critical importance of defect-engineered optimization in sonocatalytic tumor therapy.
声催化疗法因其非侵入性、精确可控性和良好的组织穿透性而备受关注,使其成为治疗恶性肿瘤的一种有前景的方法。虽然缺陷工程可增强电子和空穴的分离以促进活性氧(ROS)的生成,但与电子陷阱相比,构建有效的空穴陷阱面临的挑战严重限制了ROS的产生。在本研究中,合理设计了富含In空位的二维ZnInS-V纳米片,用于有效捕获电子和空穴,在抑制肿瘤生长方面实现了显著的声催化性能。与结构中具有固有周期性静电势的原始ZnInS纳米片相比,In空位有效地破坏了该势场,促进了电荷载流子的同时分离和迁移,并抑制了它们的复合,从而在超声(US)照射下通过ROS-NLRP3-半胱天冬酶-1-GSDMD途径提高ROS产生并诱导肿瘤细胞焦亡。此外,原始ZnInS和ZnInS-V纳米片均表现出显著的生物相容性。体外和体内抗肿瘤实验表明,这种声催化方法有效地促进了肿瘤消除,突出了缺陷工程优化在声催化肿瘤治疗中的关键重要性。