Department of Clinical Pharmacy, the First Affiliated Hospital, Zhejiang University School of Medicine, Hangzhou, 310000, People's Republic of China.
Int J Nanomedicine. 2024 Jul 19;19:7383-7398. doi: 10.2147/IJN.S467222. eCollection 2024.
Tumor vessels characterized by abnormal functions and structures hinder the infiltration and immune antigen presentation of immune cells by inducing the formation of an immunosuppressive microenvironment ("cold" environment). Vascular-targeted therapy has been proven to enhance immune stimulation and the effectiveness of immunotherapy by modulating the "cold" microenvironment, such as hypoxia and an acidic microenvironment. Notably, a therapeutic strategy based on "vascular-immune" crosstalk can achieve dual regulation of tumor vessels and the immune system by reprogramming the tumor microenvironment (TME), thus forming a positive feedback loop between tumor vessels and the immune microenvironment. From this perspective, we discuss the factors of tumor angiogenesis and "cold" TME formation. Building on this foundation, some vascular-targeted therapeutic drugs will be elaborated upon in detail to achieve dual regulation of tumor vessels and immunity. More importantly, we focus on cutting-edge nanotechnology in view of "vascular-immune" crosstalk and discuss the rational fabrication of tailor-made nanosystems for efficiently enhancing immunotherapy.
肿瘤血管具有异常的功能和结构特征,通过诱导免疫抑制微环境(“冷”环境)的形成,阻碍免疫细胞的浸润和免疫抗原呈递。血管靶向治疗已被证明通过调节“冷”微环境(如缺氧和酸性微环境)来增强免疫刺激和免疫疗法的效果。值得注意的是,基于“血管-免疫”串扰的治疗策略可以通过重编程肿瘤微环境(TME)来实现对肿瘤血管和免疫系统的双重调节,从而在肿瘤血管和免疫微环境之间形成正反馈循环。从这个角度来看,我们讨论了肿瘤血管生成和“冷”TME 形成的因素。在此基础上,详细阐述了一些血管靶向治疗药物,以实现对肿瘤血管和免疫的双重调节。更重要的是,我们关注“血管-免疫”串扰的前沿纳米技术,并讨论了定制纳米系统的合理构建,以有效地增强免疫治疗。