基于脂质纳米颗粒的多尺度系统性免疫编程用于癌症治疗
Lipid nanoparticle-based multi-scale systemic immune programming for cancer therapy.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Engineering Anti-Tumor Immunity: An Immunological Framework for mRNA Cancer Vaccines.
Engineering Anti-Tumor Immunity: An Immunological Framework for mRNA Cancer Vaccines.
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mRNA疫苗作为快速且临床可行的策略,有助于诱导强效的肿瘤特异性免疫反应,从而重新定义了癌症免疫治疗的格局。本综述重点介绍mRNA工程和抗原设计方面的当前进展,以建立用于癌症疫苗开发的整合免疫学框架。实现持久的临床获益不仅仅需要抗原表达。有效的疫苗需要精确的表位选择、优化的递送系统和严格的免疫监测。该领域正从单纯诱导免疫反应转向更加关注生物化学和分子设计原则,这些原则结合了强度、多功能性和持久性,以克服肿瘤诱导的免疫抑制。我们探讨了用于mRNA癌症疫苗开发的整合免疫学框架,审视疫苗组分的合理分子工程——从核苷修饰和密码子优化到非翻译区和连接序列——如何塑造免疫原性和治疗效力。未来的方向将取决于平衡联合策略,即将疫苗接种与免疫检查点抑制剂和过继细胞疗法相结合。
The landscape of cancer immunotherapy has been redefined by mRNA vaccines as rapid clinically viable strategies that help induce potent, tumor-specific immune responses. This review highlights the current advances in mRNA engineering and antigen design to establish an integrated immunological framework for cancer vaccine development. Achieving durable clinical benefit requires more than antigen expression.
Effective vaccines need precise epitope selection, optimized delivery systems, and rigorous immune monitoring. The field is shifting from merely inducing immune responses to focusing more on the biochemistry and molecular design principles that combine magnitude, polyfunctionality, and longevity to overcome tumor-induced immune suppression.
We examine an integrated immunological framework for mRNA cancer vaccine development, examining how rational molecular engineering of vaccine components, from nucleoside modifications and codon optimization to untranslated regions and linker sequences, shapes immunogenicity and therapeutic efficacy. Future directions will depend on balancing combinatorial strategies combining vaccination with immune checkpoint inhibitors and adoptive cell therapies.
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