PROTAC 工程化蛋白/DNA 纳米抗原是癌症免疫治疗中树突状细胞疫苗的有效增强剂
PROTAC-Engineered Protein/DNA Nanoantigen is a Potent Booster for Dendritic Cell Vaccines in Cancer Immunotherapy.
树突状细胞(DC)疫苗在肿瘤免疫治疗中的疗效常因抗原交叉呈递(XPT)效率低下导致的免疫原性较弱而受到限制。
英文原题:Recent advancements in cancer vaccine developments: novel approaches.
利用免疫系统,疫苗既可作为预防性屏障,也可作为精准导向的治疗剂,为抗击癌症提供了一种有前景的双管齐下策略。
利用免疫系统,疫苗既是预防性屏障,也是精准导向的治疗剂,为抗癌斗争提供了一种有前景的双重策略。此前的里程碑式进展包括肿瘤相关抗原(TAA)的鉴定以及树突状细胞疫苗和病毒载体平台的开发,这些为现代个性化方法奠定了基础。癌症疫苗代表了肿瘤学中的一种变革性方法,利用免疫系统来预防、治疗或消除恶性肿瘤。近期进展集中于提高免疫应答的效力、增强免疫原性以及克服肿瘤免疫逃逸。与缺乏持久免疫且常导致复发的传统化疗不同,癌症疫苗可诱导长期免疫记忆,降低复发风险。它们还通过适应性免疫靶向减轻耐药性,并与免疫检查点抑制剂有效协同。凭借良好的安全性特征、较低的毒性以及长期成本效益,癌症疫苗为传统疗法提供了一种基于精准的替代方案。然而,肿瘤异质性、免疫抑制和高成本等挑战仍然存在。未来研究应优化疫苗设计、改进递送系统并探索联合策略以最大化临床结局。本综述探讨了前沿癌症疫苗平台,包括治疗性疫苗(树突状细胞、肽、mRNA和病毒载体疫苗)、预防性疫苗(HPV和HBV疫苗)以及联合免疫治疗策略,同时讨论该领域的局限性和未来方向。
Harnessing the immune system, vaccines function as both prophylactic shields and precision-guided therapeutic agents, offering a promising strategy of a dual-armament approach in the fight against cancer. Previous landmark advances include identification of tumor-associated antigens (TAAs) and the development of dendritic cell vaccines and viral-vector platforms that laid the groundwork for modern personalized approaches. Cancer vaccines represent a transformative approach in oncology, harnessing the immune system to prevent, treat, or eliminate malignancies. Recent advances focus on improving the efficacy of immune responses, enhancing immunogenicity, and overcoming tumor immune evasion. Unlike conventional chemotherapy, which lacks durable immunity and often leads to relapse, cancer vaccines can induce long-term immune memory, reducing recurrence risks. They also mitigate drug resistance through adaptive immune targeting and synergize effectively with immune checkpoint inhibitors. With favorable safety profiles, reduced toxicity, and long-term cost benefits, cancer vaccines offer a precision-based alternative to traditional therapies. However, challenges such as tumor heterogeneity, immunosuppression, and high costs remain. Future research should optimize vaccine design, refine delivery systems, and explore combination strategies to maximize clinical outcomes. This review explores cutting-edge cancer vaccine platforms, including therapeutic (dendritic cell, peptide, mRNA, and viral vector-based vaccines), preventive (HPV and HBV vaccines), and combination immunotherapy strategies, while addressing, limitations and future directions in the field.
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