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综合多组学分析推断 COVID-19 的生物学见解。

Integrated multiomics analysis to infer COVID-19 biological insights.

机构信息

Basic Research Department, Proteomics and Metabolomics Research Program, Children's Cancer Hospital 57357 (CCHE-57357), Cairo, Egypt.

Intensive Care Unit, As-Salam International Hospital, Cairo, Egypt.

出版信息

Sci Rep. 2023 Jan 31;13(1):1802. doi: 10.1038/s41598-023-28816-5.

Abstract

Three years after the pandemic, we still have an imprecise comprehension of the pathogen landscape and we are left with an urgent need for early detection methods and effective therapy for severe COVID-19 patients. The implications of infection go beyond pulmonary damage since the virus hijacks the host's cellular machinery and consumes its resources. Here, we profiled the plasma proteome and metabolome of a cohort of 57 control and severe COVID-19 cases using high-resolution mass spectrometry. We analyzed their proteome and metabolome profiles with multiple depths and methodologies as conventional single omics analysis and other multi-omics integrative methods to obtain the most comprehensive method that portrays an in-depth molecular landscape of the disease. Our findings revealed that integrating the knowledge-based and statistical-based techniques (knowledge-statistical network) outperformed other methods not only on the pathway detection level but even on the number of features detected within pathways. The versatile usage of this approach could provide us with a better understanding of the molecular mechanisms behind any biological system and provide multi-dimensional therapeutic solutions by simultaneously targeting more than one pathogenic factor.

摘要

大流行三年后,我们仍然对病原体景观缺乏精确的理解,迫切需要针对严重 COVID-19 患者的早期检测方法和有效治疗方法。感染的影响不仅限于肺部损伤,因为病毒劫持了宿主的细胞机制并消耗其资源。在这里,我们使用高分辨率质谱法对 57 名对照和严重 COVID-19 病例的血浆蛋白质组和代谢组进行了分析。我们使用多种深度和方法(包括常规单组学分析和其他多组学整合方法)对其蛋白质组和代谢组谱进行了分析,以获得最全面的方法,描绘了疾病的深入分子景观。我们的研究结果表明,将基于知识和基于统计的技术(知识统计网络)相结合,不仅在途径检测水平上,而且在途径内检测到的特征数量上,都优于其他方法。这种方法的多功能性可以帮助我们更好地理解任何生物系统背后的分子机制,并通过同时针对多个致病因素提供多维治疗解决方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e9ed/9889745/36d4320ecf29/41598_2023_28816_Fig1_HTML.jpg

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