Immune network operations in COVID-19

J. Burgos-Salcedo
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引用次数: 0

Abstract

The immune system, whose nature lies in being a complex network of interactions, lends itself well to being represented and studied using graph theory. However, it should be noted that although the formalization of models of the immune system is relatively recent, the medical use of its signaling network structure has been carried out empirically for centuries in vaccinology, immunopathology, and clinical immunology, as evidenced by the development of effective vaccines, the management of transplant rejection, the management of allergies, and the treatment of certain types of cancer and autoimmune diseases. A network optimization analogy is proposed through the employment of the system dynamic formalism of causal loop diagrams (CLDs), where current network operations (also known as NetOps) in information technology (IT), are interpreted as immune NetOps in coronavirus disease 2019 (COVID-19) treatment. Traffic shaping corresponds to signaling pathway modulation by immunosuppressors. Data caching corresponds to the activation of innate immunity by application of Bacillus Calmette-Guerin (BCG) and other vaccines. Data compression corresponds with the activation of adaptative immune response by vaccination with the actual approved COVID-19 vaccines. Buffer tuning corresponds with concurrent activation of innate and adaptative or specialized immune cells and antibodies that attack and destroy foreign invaders by trained immunity-based vaccines to develop. The present study delineates some experimental extensions and future developments. Given the complex communication architecture of signal transduction in the immune system, it is apparent that multiple parallel pathways influencing and regulating each other are not the exception but the norm. Thus, the transition from empirical immune NetOps to analytical immune NetOps is a goal for the near future in biomedicine.
COVID-19中的免疫网络操作
免疫系统的本质是一个复杂的相互作用网络,它很适合用图论来表示和研究。然而,应该指出的是,尽管免疫系统模型的形式化是相对较新的,但其信号网络结构的医学应用已经在疫苗学、免疫病理学和临床免疫学中进行了几个世纪的经验,如有效疫苗的开发、移植排斥反应的管理、过敏的管理以及某些类型的癌症和自身免疫性疾病的治疗。通过使用因果循环图(CLDs)的系统动态形式化,提出了一个网络优化类比,其中信息技术(IT)中的当前网络操作(也称为NetOps)被解释为2019冠状病毒病(COVID-19)治疗中的免疫NetOps。交通整形对应于免疫抑制因子对信号通路的调节。数据缓存对应于应用卡介苗和其他疫苗激活先天免疫。数据压缩与接种实际批准的COVID-19疫苗激活适应性免疫反应相对应。缓冲调节与先天和适应性或特化免疫细胞和抗体的同时激活相对应,这些细胞和抗体通过训练有素的免疫疫苗来攻击和摧毁外来入侵者。本研究描述了一些实验的扩展和未来的发展。鉴于免疫系统中信号转导的复杂通信结构,很明显,多个平行通路相互影响和调节不是例外,而是常态。因此,从经验性免疫NetOps过渡到分析性免疫NetOps是生物医学不久的将来的目标。
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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