CD81 通过阻断 CD274/PD-L1 的选择性自噬降解驱动放射抵抗性胶质母细胞瘤的免疫逃逸
CD81 drives immune evasion in radioresistant glioblastoma by blocking selective autophagic degradation of CD274/PD-L1.
我们的工作确立了CD81作为连接放射抵抗与免疫逃逸的关键桥梁,其通过维持GBM中CD274的丰度发挥作用,并突显CD81作为优化放射免疫治疗的有前景的治疗靶点。
英文原题:Design of nano-delivery systems for pancreatic cancer immunotherapy.
胰腺癌常被称为“癌症之王”,由于大多数病例确诊时已处于晚期,它对公共卫生构成了严重威胁。
常被称为“癌症之王”的胰腺癌对公共健康构成严重威胁,因为大多数病例在确诊时已处于晚期。尽管肿瘤免疫治疗是癌症治疗的一项重大进展,但其在胰腺癌中的疗效仍然有限,尤其是由于肿瘤微环境的独特特征。纳米递送系统为克服致密的基质屏障提供了一种有前景的方法,这对于提高治疗效果至关重要。在本综述中,我们系统总结了关键免疫治疗靶点,包括癌症相关成纤维细胞(CAF)、免疫细胞(肿瘤相关巨噬细胞(TAM)、髓源性抑制细胞(MDSC)、调节性T细胞(Treg)、肿瘤相关中性粒细胞(TAN)、CD4 + T、CD8 + T细胞)、细胞外基质(ECM),并基于其发病机制和近期临床进展讨论了胰腺癌中的调控策略,以指导靶点选择。随后,我们详细介绍了适用于胰腺癌的纳米递送系统的理化性质,并概述了肿瘤微环境响应性连接子如何实现粒径或电荷转换。此外,我们综述了多种纳米递送系统(脂质基纳米颗粒、水凝胶/微针、无机纳米颗粒、癌症疫苗、过继细胞治疗、外泌体/囊泡、细菌/病毒)的最新研究进展,以为胰腺癌纳米载体的设计提供参考。最后,我们讨论了未来方向,并总结了胰腺癌纳米递送系统转化为临床实践所面临的挑战。通过整合靶点识别、纳米载体设计和临床应用,我们旨在提供一个连贯的框架,为加速有效胰腺癌疗法的开发提供见解。
Often referred to as the "king of cancers" pancreatic cancer is a serious threat to public health, as most cases are diagnosed at an advanced stage. Although tumor immunotherapy is a major advancement in cancer treatment, its effectiveness in pancreatic cancer remains limited, particularly owing to the unique characteristics of the tumor microenvironment. Nano-delivery systems offer a promising approach for overcoming the dense stromal barrier, which is crucial for enhancing the therapeutic efficacy. In this review, we systematically summarize key immunotherapeutic targets, including cancer-associated fibroblast (CAF), immune cells (tumor-associated macrophage (TAM), myeloid-derived suppressor cell (MDSC), regulatory T cells (Treg), tumor-associated neutrophil (TAN), CD4 + T, CD8 + T cells), extracellular matrix (ECM), and discussed regulatory strategies in pancreatic cancer based on its pathogenesis and recent clinical advances to guide target selection. We then detail the physicochemical properties of nano-delivery systems suitable for pancreatic cancer and outline how tumor microenvironment-responsive linkers can enable particle size or charge conversion. Furthermore, we review the latest research progress on various nano-delivery systems (Lipid-based nanoparticle, Hydrogel/microneedle, Inorganic nanoparticle, Cancer vaccine, Adoptive cell therapy, Exosome/vesicle, Bacteria/virus) to inform the design of pancreatic cancer nanocarriers. Finally, we discuss future directions and summarize the challenges in translating pancreatic cancer nano-delivery systems into clinical practice. By integrating target identification, nanocarrier design, and clinical applications, we aimed to provide a cohesive framework that offers insights to accelerate the development of effective pancreatic cancer therapies.
MEMBER ACCOUNT
登录成功会直接打开下一页。