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基于蛋白质-蛋白质相互作用的量子疫苗组学方法。

A Quantum Vaccinomics Approach Based on Protein-Protein Interactions.

机构信息

Interdisciplinary Laboratory of Clinical Analysis, Interlab-UMU, Regional Campus of International Excellence Campus Mare Nostrum, University of Murcia, Murcia, Spain.

SaBio. Instituto de Investigación en Recursos Cinegéticos IREC-CSIC-UCLM-JCCM, Ronda de Toledo s/n, Ciudad Real, Spain.

出版信息

Methods Mol Biol. 2022;2411:287-305. doi: 10.1007/978-1-0716-1888-2_17.

Abstract

Vaccines are the most effective preventive intervention to reduce the impact of infectious diseases worldwide. In particular, tick-borne diseases represent a growing burden for human and animal health worldwide and vaccines are the most effective and environmentally sound approach for the control of vector infestations and pathogen transmission. However, the development of effective vaccines for the control of tick-borne diseases with combined vector-derived and pathogen-derived antigens is one of the limitations for the development of effective vaccine formulations. Quantum biology arise from findings suggesting that living cells operate under non-trivial features of quantum mechanics, which has been proposed to be involved in DNA mutation biological process. Then, the electronic structure of the molecular interactions behind peptide immunogenicity led to quantum immunology and based on the definition of the photon as a quantum of light, the immune protective epitopes were proposed as the immunological quantum. Recently, a quantum vaccinomics approach was proposed based on the characterization of the immunological quantum to further advance the design of more effective and safe vaccines. In this chapter, we describe methods of the quantum vaccinomics approach based on proteins with key functions in cell interactome and regulome of vector-host-pathogen interactions for the identification by yeast two-hybrid screen and the characterization by in vitro protein-protein interactions and musical scores of protein interacting domains, and the characterization of conserved protective epitopes in protein interacting domains. These results can then be used for the design and production of chimeric protective antigens.

摘要

疫苗是减少全球传染病影响的最有效预防干预措施。特别是,蜱传疾病对全球人类和动物健康构成了越来越大的负担,疫苗是控制病媒滋生和病原体传播的最有效和环保的方法。然而,开发具有联合病媒来源和病原体来源抗原的控制蜱传疾病的有效疫苗是开发有效疫苗制剂的限制之一。量子生物学源于这样的发现,即活细胞在量子力学的非平凡特征下运作,这被认为与 DNA 突变生物过程有关。然后,肽免疫原性背后的分子相互作用的电子结构导致了量子免疫学,并基于将光子定义为光的量子,免疫保护表位被提议为免疫学的量子。最近,提出了一种基于免疫学量子表征的量子疫苗组学方法,以进一步推进更有效和安全疫苗的设计。在这一章中,我们描述了基于在病媒-宿主-病原体相互作用的细胞相互作用组和调节组中具有关键功能的蛋白质的量子疫苗组学方法,这些方法用于通过酵母双杂交筛选进行鉴定,并通过体外蛋白质-蛋白质相互作用和蛋白质相互作用域的音乐评分进行表征,以及蛋白质相互作用域中保守保护表位的表征。然后可以将这些结果用于设计和生产嵌合保护性抗原。

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