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Artificial Intelligence (AI)-Based Systems Biology Approaches in Multi-Omics Data Analysis of Cancer

机译:人工智能(AI)基于癌症多OMICS数据分析的系统生物学方法

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摘要

Cancer is the manifestation of abnormalities of different physiological processes involving genes, DNAs, RNAs, proteins, and other biomolecules whose profiles are reflected in different omics data types. As these bio-entities are very much correlated, integrative analysis of different types of omics data, multi-omics data, is required to understanding the disease from the tumorigenesis to the disease progression. Artificial intelligence (AI), specifically machine learning algorithms, has the ability to make decisive interpretation of “big”-sized complex data and, hence, appears as the most effective tool for the analysis and understanding of multi-omics data for patient-specific observations. In this review, we have discussed about the recent outcomes of employing AI in multi-omics data analysis of different types of cancer. Based on the research trends and significance in patient treatment, we have primarily focused on the AI-based analysis for determining cancer subtypes, disease prognosis, and therapeutic targets. We have also discussed about AI analysis of some non-canonical types of omics data as they have the capability of playing the determiner role in cancer patient care. Additionally, we have briefly discussed about the data repositories because of their pivotal role in multi-omics data storing, processing, and analysis.
机译:癌症是涉及基因,DNA,RNA,蛋白质和其他生物分子的不同生理过程的异常的表现出来,其曲线在不同的OMICS数据类型中反映。由于这些生物实体非常相关,因此需要对不同类型的OMIC数据,多OMICS数据的综合分析,需要了解从肿瘤发生到疾病进展的疾病。人工智能(AI),专门的机器学习算法,具有对“大”复杂数据进行决定性解释的能力,因此看起来是分析和理解对患者特定的多OMIC数据的最有效工具观察。在本次审查中,我们已经讨论了在不同类型癌症的多OMICS数据分析中使用AI的最近结果。基于患者治疗的研究趋势和意义,我们主要专注于确定癌症亚型,疾病预后和治疗靶标的基于AI的分析。我们还讨论了对某些非规范类型的常规数据的AI分析,因为它们具有在癌症患者护理中扮演决定员作用的能力。此外,我们已经简要讨论了数据存储库,因为它们在多OMIC数据存储,处理和分析中的关键作用。

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