Yuan Haitao, Ma Jingbo, Huang Wei, Gong Ping, Shi Fei, Xu Xiaolong, Fu Chunjin, Wang Xiaoxian, Wong Yin Kwan, Long Ying, Sun Xin, Li Weihua, Li Zhijie, Wang Jigang
Department of Cardiology, Shenzhen Cardiovascular Minimally Invasive Medical Engineering Technology Research and Development Center, and Shenzhen Clinical Research Centre for Geriatrics, Shenzhen People's Hospital, The First Affiliated Hospital, Southern University of Science and Technology, Shenzhen 518020, Guangdong, P. R. China.
School of Chemical Engineering and Technology, Sun Yat-sen University, Zhuhai 519082, P. R. China.
JACS Au. 2023 May 9;3(5):1507-1520. doi: 10.1021/jacsau.3c00156. eCollection 2023 May 22.
Sonodynamic therapy (SDT) holds great promise to be applied for cancer therapy in clinical settings. However, its poor therapeutic efficacy has limited its applications owing to the apoptosis-resistant mechanism of cancer cells. Moreover, the hypoxic and immunosuppressive tumor microenvironment (TME) also weakens the efficacy of immunotherapy in solid tumors. Therefore, reversing TME remains a formidable challenge. To circumvent these critical issues, we developed an ultrasound-augmented strategy to regulate the TME by utilizing an HMME-based liposomal nanosystem (HB liposomes), which can synergistically promote the induction of ferroptosis/apoptosis/immunogenic cell death (ICD) and initiate the reprograming of TME. The RNA sequencing analysis demonstrated that apoptosis, hypoxia factors, and redox-related pathways were modulated during the treatment with HB liposomes under ultrasound irradiation. The in vivo photoacoustic imaging experiment showed that HB liposomes enhanced oxygen production in the TME, alleviated TME hypoxia, and helped to overcome the hypoxia of the solid tumors, consequently improving the SDT efficiency. More importantly, HB liposomes extensively induced ICD, resulting in enhanced T-cell recruitment and infiltration, which normalizes the immunosuppressive TME and facilitates antitumor immune responses. Meanwhile, the HB liposomal SDT system combined with PD1 immune checkpoint inhibitor achieves superior synergistic cancer inhibition. Both in vitro and in vivo results indicate that the HB liposomes act as a sonodynamic immune adjuvant that is able to induce ferroptosis/apoptosis/ICD via generated lipid-reactive oxide species during the SDT and reprogram TME due to ICD induction. This sonodynamic nanosystem integrating oxygen supply, reactive oxygen species generation, and induction of ferroptosis/apoptosis/ICD is an excellent strategy for effective TME modulation and efficient tumor therapy.
声动力疗法(SDT)在临床环境中用于癌症治疗具有很大的前景。然而,由于癌细胞的抗凋亡机制,其较差的治疗效果限制了其应用。此外,缺氧和免疫抑制的肿瘤微环境(TME)也削弱了实体瘤免疫治疗的效果。因此,逆转TME仍然是一项艰巨的挑战。为了规避这些关键问题,我们开发了一种超声增强策略,通过利用基于血卟啉单甲醚(HMME)的脂质体纳米系统(HB脂质体)来调节TME,该系统可以协同促进铁死亡/凋亡/免疫原性细胞死亡(ICD)的诱导,并启动TME的重编程。RNA测序分析表明,在超声照射下用HB脂质体治疗期间,凋亡、缺氧因子和氧化还原相关途径受到调节。体内光声成像实验表明,HB脂质体增强了TME中的氧气生成,减轻了TME缺氧,并有助于克服实体瘤的缺氧,从而提高了SDT效率。更重要的是,HB脂质体广泛诱导ICD,导致T细胞募集和浸润增强,从而使免疫抑制性TME正常化并促进抗肿瘤免疫反应。同时,HB脂质体SDT系统与PD1免疫检查点抑制剂联合使用可实现卓越的协同癌症抑制作用。体外和体内结果均表明,HB脂质体作为一种声动力免疫佐剂,能够在SDT期间通过产生脂质活性氧诱导铁死亡/凋亡/ICD,并由于ICD诱导而重编程TME。这种整合氧气供应、活性氧生成以及铁死亡/凋亡/ICD诱导的声动力纳米系统是有效调节TME和高效肿瘤治疗的优秀策略。