Personalized cancer vaccines: bridging immune-oncology and precision medicine for advanced therapeutics.

IF 81.2 1区 医学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Leiguang Ye, Guo Zhao, Jiaxiu Ma, Qianqian Gan, Na Luo, Dingyu Pan, Chunxi Chen, Xiaoyuan Chen, Shipeng Ning
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Abstract

Despite advancements in therapeutic cancer vaccines, clinical translation has been hindered by limited efficacy, with Sipuleucel-T remaining the only FDA-approved therapeutic cancer vaccine to date. However, recent advances in personalized mRNA vaccines, such as Moderna's mRNA-4157 and BioNTech's autogene cevumeran, have demonstrated significant reductions in recurrence risk and improved survival across several cancer types, renewing optimism in the field. Personalized cancer vaccines leverage patient-specific tumor antigens to initiate potent and targeted immune responses. This review outlines various classes of personalized vaccines, including DNA-, mRNA-, peptide-, dendritic cell-, and whole-cell-based platforms, and examines the immunological challenges they face, such as tumor heterogeneity, immunosuppressive microenvironments, and inadequate immune memory. To address these limitations, both conventional and nanotechnology-enhanced delivery systems have been developed. Notably, nanovaccines constructed from lipid-polymer hybrids, biomimetic membranes, and stimulus-responsive materials enable codelivery of neoantigens and immunostimulatory agonists, promoting enhanced lymph node targeting, dendritic cell activation, and antigen cross-presentation. Furthermore, biomimetic formulations incorporating autologous tumor membranes preserve native antigenic diversity and allow dynamic adaptation to evolving tumors. When integrated with artificial intelligence for antigen selection and multiomics for patient stratification, these platforms accelerate vaccine design and improve precision. Combination regimens with immune checkpoint inhibitors or other agents further potentiate efficacy and promote durable antitumor immunity. Increasing clinical evidence, especially in melanoma and pancreatic cancer, underscores the potential of these strategies to induce long-term protection and reduce recurrence. Overall, next-generation personalized cancer vaccines are advancing the transition from reactive treatment to proactive, precision-controlled cancer immunotherapy.

个性化癌症疫苗:连接免疫肿瘤学和先进治疗的精准医学。
尽管治疗性癌症疫苗取得了进展,但由于疗效有限,临床转化一直受到阻碍,迄今为止,Sipuleucel-T仍然是fda批准的唯一治疗性癌症疫苗。然而,个性化mRNA疫苗的最新进展,如Moderna的mRNA-4157和BioNTech的自基因cevumeran,已经显示出在几种癌症类型中显著降低复发风险和提高生存率,重新燃起了该领域的乐观情绪。个性化癌症疫苗利用患者特异性肿瘤抗原启动有效和靶向免疫反应。本综述概述了各种类型的个性化疫苗,包括基于DNA、mRNA、肽、树突状细胞和全细胞的平台,并研究了它们面临的免疫学挑战,如肿瘤异质性、免疫抑制微环境和免疫记忆不足。为了解决这些限制,传统的和纳米技术增强的输送系统已经被开发出来。值得注意的是,由脂质-聚合物混合物、仿生膜和刺激反应材料构建的纳米疫苗能够共同递送新抗原和免疫刺激激动剂,促进增强的淋巴结靶向、树突状细胞活化和抗原交叉呈递。此外,结合自体肿瘤膜的仿生配方保留了天然抗原多样性,并允许动态适应不断进化的肿瘤。当与抗原选择的人工智能和患者分层的多组学相结合时,这些平台加速了疫苗设计并提高了精度。联合免疫检查点抑制剂或其他药物进一步增强疗效并促进持久的抗肿瘤免疫。越来越多的临床证据,特别是在黑色素瘤和胰腺癌中,强调了这些策略在诱导长期保护和减少复发方面的潜力。总的来说,下一代个性化癌症疫苗正在推进从被动治疗到主动、精确控制的癌症免疫治疗的转变。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Signal Transduction and Targeted Therapy
Signal Transduction and Targeted Therapy Biochemistry, Genetics and Molecular Biology-Genetics
CiteScore
44.50
自引率
1.50%
发文量
384
审稿时长
5 weeks
期刊介绍: Signal Transduction and Targeted Therapy is an open access journal that focuses on timely publication of cutting-edge discoveries and advancements in basic science and clinical research related to signal transduction and targeted therapy. Scope: The journal covers research on major human diseases, including, but not limited to: Cancer,Cardiovascular diseases,Autoimmune diseases,Nervous system diseases.
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