School of Materials and Chemistry, Institute of Bismuth, Shanghai Collaborative Innovation Center of Energy Therapy for Tumors, University of Shanghai for Science and Technology, Shanghai, 200093, China.
Engineering Research Center of Optical Instrument and System, the Ministry of Education & Shanghai Key Laboratory of Modern Optical System, University of Shanghai for Science and Technology, Shanghai, 200093, China.
Small. 2023 Nov;19(48):e2304032. doi: 10.1002/smll.202304032. Epub 2023 Aug 2.
Immunogenic cell death (ICD) can activate the body's immune system via dead cell antigens to achieve immunotherapy. Currently, small molecule drugs have been used for ICD treatment in clinical, however, how to precisely control the induced ICD while treating tumors is of great significance for improving therapeutic efficacy. Based on this, a sono/light dual response strategy to tumor therapy and activation of ICD is proposed. A topological synthesis method is used to obtain sulfur-doped bismuth oxide Bi O S (BS) using BiF (BF) as a template through reduction and a morphology-controllable bismuth-based nano-semiconductor with a narrow bandgap is constructed. Under the stimulation of ultrasound, BS can produce reactive oxygen species (ROS) through the sonocatalytic process, which cooperates with BS to consume glutathione and enhance cellular oxidative damage, further inducing ICD. Due to the introduction of sulfur in the reduction reaction, BS can achieve photothermal conversion under light, and combine with ROS to treat tumors. Further, with the assistance of ivermectin (IVM) to form composite (BSM), combined with sono/light dual strategy, ICD is promoted and DCs maturation is accelerated. The proposed ICD-mediated hyperthermia/sonocatalytic therapy strategy will pay the way for synergetic enhancement of tumor treatment efficacy and provide a feasible idea for controllable induction of ICD.
免疫原性细胞死亡(ICD)可以通过死细胞抗原激活机体免疫系统,从而实现免疫治疗。目前,小分子药物已被用于临床中的 ICD 治疗,但如何在治疗肿瘤的同时精确控制所诱导的 ICD 对于提高治疗效果具有重要意义。基于此,提出了一种声/光双重响应策略来进行肿瘤治疗和 ICD 激活。采用拓扑合成方法,以 BiF(BF)为模板,通过还原反应得到硫掺杂氧化铋 Bi O S(BS),构建了具有窄带隙的形貌可控铋基纳米半导体。在超声刺激下,BS 可以通过声催化过程产生活性氧(ROS),与 BS 协同消耗谷胱甘肽并增强细胞氧化损伤,进一步诱导 ICD。由于在还原反应中引入了硫,BS 可以在光照下实现光热转换,并与 ROS 结合治疗肿瘤。此外,在伊维菌素(IVM)的辅助下形成复合物(BSM),结合声/光双重策略,促进 ICD,并加速 DCs 的成熟。所提出的 ICD 介导的热疗/声催化治疗策略将为协同增强肿瘤治疗效果铺平道路,并为 ICD 的可控诱导提供可行的思路。