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:Clinical translation of mRNA-based cancer vaccines for solid tumors.
使用信使RNA(mRNA)的疫苗已成为一个有前景的平台,正在改变癌症免疫治疗。
使用信使RNA(mRNA)的疫苗已成为一个有前景的平台,正在改变癌症免疫治疗。这些mRNA疫苗由于其模块化设计可以快速生成和生产,并且与传统基于蛋白质或肽的疫苗不同,还能诱导CD4⁺ T细胞和CD8⁺ T细胞反应。此外,合成mRNA可以通过多种策略(例如密码子优化、化学修饰和多表位设计)进行优化,不仅确保有效的抗原表达和免疫激活,还能减轻过度的先天免疫感知。递送mRNA疫苗的技术(脂质纳米颗粒、基于树突状细胞的制剂、自佐剂mRNA构建体和病毒载体系统)都支持了mRNA疫苗临床应用的发展,同时在稳定性、抗原呈递或免疫原性方面提供了独特优势。涉及多种实体瘤(如胰腺癌、胶质母细胞瘤、肾细胞癌、黑色素瘤和非小细胞肺癌)的早期临床试验表明,mRNA疫苗可以引发持久的T细胞反应,扩增高亲和力T细胞克隆,并在某些情况下延长无复发生存期。然而,临床获益参差不齐,通常受到肿瘤异质性、免疫逃逸和免疫优势的限制。利用免疫检查点抑制剂、化疗和过继性T细胞治疗的联合策略正在研究中。本综述综合了已发表的临床研究和65项注册临床试验中关于基于mRNA的癌症疫苗的证据,总结了关键分子原理、递送策略、实体瘤中的临床转化以及未来治疗开发的持续机遇。
Vaccines that use messenger RNA (mRNA) have become a promising platform that is transforming cancer immunotherapy. These mRNA vaccines can be generated and manufactured quickly due to their modular design and can also induce CD4⁺ T-cell and CD8⁺ T-cell responses, in contrast to conventional protein or peptide-based vaccines. Additionally, synthetic mRNA can be optimized through various strategies (e.g., codon optimization, chemical modifications, and polyepitopic design) to not only ensure efficient antigen expression and immune activation but also to mitigate excessive innate immune sensing. Technologies that deliver mRNA vaccines (lipid nanoparticles, dendritic cell-based formulations, self-adjuvanted mRNA constructs, and viral vector systems) have all supported the development of mRNA-vaccine clinical applications while providing unique advantages in stability, antigen presentation, or immunogenicity. Clinical trials in the early phases involving a variety of solid tumors, such as pancreatic cancer, glioblastoma, renal cell carcinoma, melanoma, and non-small cell lung cancer, show that mRNA vaccines can elicit durable T-cell responses, expand high-avidity T-cell clones, and, in some cases, prolong recurrence-free survival. However, the clinical benefit has been variable, often limited by tumor heterogeneity, immune evasion, and immunodominance. Combination strategies utilizing immune checkpoint inhibitors, chemotherapy, and adoptive T-cell therapy are under investigation. This review synthesizes evidence from published clinical studies and 65 registered clinical trials on mRNA-based cancer vaccines, summarizing key molecular principles, delivery strategies, clinical translation in solid tumors, and ongoing opportunities for future therapeutic development.
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