Wang Xiaoyu, Chi Weijie, Wu Jiao, Zou Jingwen, Yoo Jiyoung, Hong Seokjin, Zhang Fan, Mao Zhiqiang, Kim Jong Seung
College of Health Science and Engineering, College of Chemistry and Chemical Engineering, Hubei University, Wuhan, 430062, China.
School of Chemistry and Chemical Engineering, Hainan University, Haikou, 570228, China.
Biomaterials. 2025 Apr;315:122969. doi: 10.1016/j.biomaterials.2024.122969. Epub 2024 Nov 15.
Pyroptosis is considered as a new way to effectively boost the immune response of tumors and inhibit tumor growth. Effective strategies to induce pyroptosis mainly rely on chemotherapeutic drugs and phototherapy, but their potential biotoxicity and phototoxicity limit their application in biomedicine. Herein, we designed a NIR-II emitting pyroptosis biotuner, Rd-TTPA, which induced pyroptosis under ultrasound irradiation to achieve pyroptosis-enhanced sonodynamic therapy (SDT) and immunogenic cell death (ICD) for tumors. Benefiting from its A-π-D-D structure enhanced donor-acceptor interaction, Rd-TTPA can induce cell pyroptosis under both normoxia (21 % O) and hypoxia (2 % O) conditions by rapidly generating superoxide radicals (O) upon ultrasound irradiation. The sonodynamic biotuner of pyroptosis overcomes the longstanding weakness of chemical drug and photosensitizer-based pyroptosis, such as drug resistance and limited penetration depth. In-depth studies demonstrated that Rd-TTPA can selectively target tumor cell mitochondria and possess excellent in vivo NIR-II fluorescence imaging capabilities. Administrating a tumor-bearing mouse model with Rd-TPPA, satisfying antitumor efficacy via pyroptosis-augmented SDT was achieved upon the guidance of NIR-II fluorescence imaging.
细胞焦亡被认为是有效增强肿瘤免疫反应和抑制肿瘤生长的新途径。诱导细胞焦亡的有效策略主要依赖于化疗药物和光疗,但其潜在的生物毒性和光毒性限制了它们在生物医学中的应用。在此,我们设计了一种发射近红外二区光的细胞焦亡生物调谐器Rd-TTPA,其在超声照射下诱导细胞焦亡,以实现细胞焦亡增强的声动力疗法(SDT)和肿瘤的免疫原性细胞死亡(ICD)。得益于其A-π-D-D结构增强的供体-受体相互作用,Rd-TTPA在超声照射下通过快速产生活性氧(O),可在常氧(21% O)和低氧(2% O)条件下诱导细胞焦亡。细胞焦亡的声动力生物调谐器克服了基于化学药物和光敏剂的细胞焦亡长期存在的弱点,如耐药性和穿透深度有限。深入研究表明,Rd-TTPA可选择性靶向肿瘤细胞线粒体,并具有出色的体内近红外二区荧光成像能力。对荷瘤小鼠模型给予Rd-TPPA后,在近红外二区荧光成像的引导下,通过细胞焦亡增强的SDT实现了令人满意的抗肿瘤疗效。