Suo Meng, Shen Hanchen, Lyu Meng, Jiang Yi, Liao Xiaoming, Tang Wei, Pan You, Zhang Tianfu, Ning Shipeng, Tang Ben Zhong
School of Biomedical Engineering, Affiliated Cancer Hospital & Institute of Guangzhou Medical University, Guangzhou Medical University, Guangzhou, 511436, China.
Department of Chemistry, the Hong Kong Branch of Chinese National Engineering Research Center for Tissue Restoration and Reconstruction, Division of Life Science, and State Key Laboratory of Molecular Neuroscience, The Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong, 999077, China.
Small. 2024 Jul;20(29):e2400666. doi: 10.1002/smll.202400666. Epub 2024 Feb 17.
Compared to conventional radiotherapy (RT), FLASH-RT delivers ultra-high dose radiation, significantly reducing damage to normal tissue while guaranteeing the effect of cancer treatment. However, cancer recurrence and metastasis frequently occur after all RT due to the existence of intractable cancer stem cells (CSCs). To address this, a biomimetic nanoplatform (named TAFL) of tumor-derived exosome fusion liposomes is designed by co-loading aggregation-induced emission photothermal agents, TPE-BBT, and anti-cancer drugs, aspirin, aiming to clear CSCs for inhibiting cancer recurrence and metastasis after FLASH-RT therapy . Aspirin released in TAFL system triggered by laser irradiation can induce apoptosis and DNA damage of 4T1 CSCs, comprehensively downregulate their stemness phenotype, and inhibit their sphericity. Furthermore, the TPE-BBT mediated mild-photothermal therapy can alleviate the hypoxic tumor microenvironment, inhibit the DNA repair of CSCs, which further amplifies the effect of aspirin against CSCs, therefore reduces the effective dose of aspirin, making TAFL more biologically safe. In vivo experimental results demonstrated that decreased CSCs population mediated by TAFL system treatment significantly inhibited tumor recurrence and metastasis after FLASH-RT therapy. In summary, this TAFL system provides a new idea for the future clinical application of FLASH-RT therapy.
与传统放疗(RT)相比,FLASH-RT可提供超高剂量辐射,在保证癌症治疗效果的同时,显著减少对正常组织的损伤。然而,由于难治性癌症干细胞(CSCs)的存在,所有放疗后癌症复发和转移仍频繁发生。为解决这一问题,通过共负载聚集诱导发光光热剂TPE-BBT和抗癌药物阿司匹林,设计了一种肿瘤衍生外泌体融合脂质体的仿生纳米平台(命名为TAFL),旨在清除CSCs以抑制FLASH-RT治疗后的癌症复发和转移。激光照射触发TAFL系统释放的阿司匹林可诱导4T1 CSCs凋亡和DNA损伤,全面下调其干性表型,并抑制其成球性。此外,TPE-BBT介导的温和光热疗法可缓解肿瘤缺氧微环境,抑制CSCs的DNA修复,进一步放大阿司匹林对CSCs的作用,从而降低阿司匹林的有效剂量,使TAFL更具生物安全性。体内实验结果表明,TAFL系统治疗介导的CSCs数量减少显著抑制了FLASH-RT治疗后的肿瘤复发和转移。综上所述,该TAFL系统为FLASH-RT治疗的未来临床应用提供了新思路。