Xiang Yuting, Liu Min, Yang Yunrong, Wang Yubo, Qiu Yige, Tu Shiqi, Jiang Yitian, Nan Yayun, Zhang Xiaojie, Huang Qiong
Xiangya School of Pharmaceutical Sciences, Central South University, Changsha, China.
Hunan Provincial Key Laboratory of Cardiovascular Research, Xiangya School of Pharmaceutical Sciences, Central South University, Changsha, China.
Front Pharmacol. 2022 Jul 12;13:949001. doi: 10.3389/fphar.2022.949001. eCollection 2022.
Cancer is one of the leading causes of death worldwide due to high morbidity and mortality. Many attempts and efforts have been devoted to fighting cancer. Owing to the significant role of the endoplasmic reticulum (ER) in cell function, inducing ER stress can be promising for cancer treatment. However, the sustained activation of cytoprotective unfolded protein response (UPR) presents a tremendous obstacle for drugs in inducing unsolved ER stress in tumor cells, especially small-molecule drugs with poor bioavailability. Therefore, many emerging nanodrugs inducing and amplifying ER stress have been developed for efficient cancer treatment. More importantly, the novel discovery of ER stress in immunogenic cell death (ICD) makes it possible to repurpose antitumor drugs for immunotherapy through nanodrug-based strategies amplifying ER stress. Therefore, this mini-review aims to provide a comprehensive summary of the latest developments of the strategies underlying nanodrugs in the treatment of cancer manipulating ER stress. Meanwhile, the prospects of ER stress-inducing nanodrugs for cancer treatment are systematically discussed, which provide a sound platform for novel therapeutic insights and inspiration for the design of nanodrugs in treating cancer.
癌症是全球主要死因之一,因其发病率和死亡率都很高。人们为抗击癌症付出了诸多尝试和努力。由于内质网(ER)在细胞功能中发挥着重要作用,诱导内质网应激有望用于癌症治疗。然而,细胞保护性未折叠蛋白反应(UPR)的持续激活给药物诱导肿瘤细胞产生未解决的内质网应激带来了巨大障碍,尤其是生物利用度差的小分子药物。因此,为了实现高效的癌症治疗,人们开发了许多能够诱导和放大内质网应激的新型纳米药物。更重要的是,内质网应激在免疫原性细胞死亡(ICD)中的新发现,使得通过基于纳米药物的策略放大内质网应激,将抗肿瘤药物重新用于免疫治疗成为可能。因此,本综述旨在全面总结纳米药物在癌症治疗中调控内质网应激策略的最新进展。同时,系统地讨论了诱导内质网应激的纳米药物在癌症治疗中的前景,这为新的治疗见解提供了良好的平台,并为设计治疗癌症的纳米药物提供了灵感。