Wang Ziqi, Liu Bo, Tu Jingyao, Xiang Jingfeng, Xiong Hui, Wu Yue, Ding Shuaijie, Zhu Daoming, Zhu Dongyong, Liu Fei, Hu Guangyuan, Yuan Xianglin
Department of Oncology, Tongji Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan 430030, China.
Guangdong Provincial Key Laboratory of Precision Medicine for Gastrointestinal Tumor and Department of General Surgery, Nanfang Hospital, The First School of Clinical Medicine, Southern Medical University, Guangzhou 510515, China.
Pharmaceutics. 2023 Feb 1;15(2):487. doi: 10.3390/pharmaceutics15020487.
Hypoxia is typically the leading cause of radiotherapy (RT) resistance in solid tumors, and glutathione (GSH) overexpression in tumor cells is a potent antioxidant mechanism that protects tumor cells from radiation damage. Herein, we developed a sorafenib (SFN) loaded-PLGA hydrogel system (SPH) in combination with microwave (MW) hyperthermia for RT sensitization. SPH with stable properties was produced by combining SFN and PLGA in a specific ratio and encapsulating the mixture in agarose hydrogel. Intratumoral injection of SPH to mice combined with MW hyperthermia can not only directly cause thermal damage to tumor cells, but also increase blood oxygen delivery to the tumor site, thus overcoming the problem of intratumoral hypoxia and achieving "first layer" RT sensitization. Moreover, high temperatures can cause the hydrogel to disintegrate and release SFN. Not only can SFN inhibit tumor growth, but it can also achieve the "second layer" of RT sensitization by inhibiting glutathione (GSH) synthesis in cells and increasing reactive oxygen species (ROS) production. Experiments, both in vitro and in vivo, have indicated that SPH and MW hyperthermia can achieve a double RT sensitization effect and a significant tumor inhibition effect. In conclusion, combining our SPH nanosystem and thermoradiotherapy is a promising anti-tumor treatment.
缺氧通常是实体瘤放疗(RT)耐药的主要原因,肿瘤细胞中谷胱甘肽(GSH)的过表达是一种强大的抗氧化机制,可保护肿瘤细胞免受辐射损伤。在此,我们开发了一种负载索拉非尼(SFN)的聚乳酸-羟基乙酸共聚物(PLGA)水凝胶系统(SPH),并结合微波(MW)热疗用于放疗增敏。通过将SFN和PLGA按特定比例混合并将混合物封装在琼脂糖水凝胶中,制备出具有稳定性质的SPH。对小鼠进行瘤内注射SPH并结合MW热疗,不仅可以直接对肿瘤细胞造成热损伤,还可以增加肿瘤部位的血氧供应,从而克服瘤内缺氧问题,实现“第一层”放疗增敏。此外,高温可导致水凝胶分解并释放SFN。SFN不仅可以抑制肿瘤生长,还可以通过抑制细胞内谷胱甘肽(GSH)的合成并增加活性氧(ROS)的产生来实现“第二层”放疗增敏。体外和体内实验均表明,SPH和MW热疗可实现双重放疗增敏效果和显著的肿瘤抑制作用。总之,将我们的SPH纳米系统与热放疗相结合是一种很有前景的抗肿瘤治疗方法。