下一代疫苗平台:整合合成生物学、纳米技术和系统免疫学以提高免疫原性。

IF 5.2 3区 医学 Q1 IMMUNOLOGY
Vaccines Pub Date : 2025-05-30 DOI:10.3390/vaccines13060588
Majid Eslami, Bahram Fadaee Dowlat, Shayan Yaghmayee, Anoosha Habibian, Saeedeh Keshavarzi, Valentyn Oksenych, Ramtin Naderian
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引用次数: 0

摘要

复杂和迅速演变的病原体的出现需要超越传统方法的创新疫苗平台。这篇综述探讨了下一代疫苗技术的变革潜力,重点是合成生物学、纳米技术和系统免疫学的联合应用。合成生物学为设计具有更好免疫原性的抗原成分提供了模块化的工具,如mRNA、DNA和基于肽的平台,这些平台具有密码子优化和自扩增结构。与此同时,纳米技术可以通过工程纳米颗粒(如基于脂质的载体、病毒样颗粒和聚合物系统)实现精确的抗原递送和受控的免疫激活,从而提高稳定性、靶向性和剂量效率。系统免疫学通过多组学数据和计算建模来分析免疫应答,这有助于抗原选择、免疫谱分析和佐剂优化。这种方法增强了体液和细胞免疫,解决了抗原呈递、反应持久性和疫苗个性化等挑战。SARS-CoV-2、eb病毒和结核分枝杆菌的案例研究突出了这些平台的实际应用。尽管取得了可喜的进展,但挑战包括可扩展性、安全性评估以及数据驱动疫苗设计的伦理问题。持续的跨学科合作对于充分开发这些技术以生产强效、适应性强、全球可获得的疫苗至关重要。这篇综述强调下一代疫苗是未来免疫预防的基础,特别是针对新出现的传染病和癌症免疫治疗。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Next-Generation Vaccine Platforms: Integrating Synthetic Biology, Nanotechnology, and Systems Immunology for Improved Immunogenicity.

The emergence of complex and rapidly evolving pathogens necessitates innovative vaccine platforms that move beyond traditional methods. This review explores the transformative potential of next-generation vaccine technologies, focusing on the combined use of synthetic biology, nanotechnology, and systems immunology. Synthetic biology provides modular tools for designing antigenic components with improved immunogenicity, as seen in mRNA, DNA, and peptide-based platforms featuring codon optimization and self-amplifying constructs. At the same time, nanotechnology enables precise antigen delivery and controlled immune activation through engineered nanoparticles such as lipid-based carriers, virus-like particles, and polymeric systems to improve stability, targeting, and dose efficiency. Systems immunology aids these advancements by analyzing immune responses through multi-omics data and computational modeling, which assists in antigen selection, immune profiling, and adjuvant optimization. This approach enhances both humoral and cellular immunity, solving challenges like antigen presentation, response durability, and vaccine personalization. Case studies on SARS-CoV-2, Epstein-Barr virus, and Mycobacterium tuberculosis highlight the practical application of these platforms. Despite promising progress, challenges include scalability, safety evaluation, and ethical concerns with data-driven vaccine designs. Ongoing interdisciplinary collaboration is crucial to fully develop these technologies for strong, adaptable, globally accessible vaccines. This review emphasizes next-generation vaccines as foundational for future immunoprophylaxis, especially against emerging infectious diseases and cancer immunotherapy.

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来源期刊
Vaccines
Vaccines Pharmacology, Toxicology and Pharmaceutics-Pharmacology
CiteScore
8.90
自引率
16.70%
发文量
1853
审稿时长
18.06 days
期刊介绍: Vaccines (ISSN 2076-393X) is an international, peer-reviewed open access journal focused on laboratory and clinical vaccine research, utilization and immunization. Vaccines publishes high quality reviews, regular research papers, communications and case reports.
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