2021
DOI: 10.1186/s13059-020-02213-x
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An integrated multi-omics approach to identify regulatory mechanisms in cancer metastatic processes

Abstract: Background Metastatic progress is the primary cause of death in most cancers, yet the regulatory dynamics driving the cellular changes necessary for metastasis remain poorly understood. Multi-omics approaches hold great promise for addressing this challenge; however, current analysis tools have limited capabilities to systematically integrate transcriptomic, epigenomic, and cistromic information to accurately define the regulatory networks critical for metastasis. … Show more

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Cited by 15 publications
(9 citation statements)
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References 70 publications
(88 reference statements)
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“…Notwithstanding the potential role of salient genes in other cancer types, the central role of MiR143HG, AMOTL1, ACTG2, FILIP1, ARHGEF17, FAM219B in the progression of CRC is inadequate and lacking in previous reports. Previous reports on TOP2A 100,101 , ITPKB 101 , HAND1 102 , SERINC2 [103][104][105] present a conjectural view of the importance of the gene in the progression of the CRC.…”
Section: Genesmentioning
confidence: 97%
“…Notwithstanding the potential role of salient genes in other cancer types, the central role of MiR143HG, AMOTL1, ACTG2, FILIP1, ARHGEF17, FAM219B in the progression of CRC is inadequate and lacking in previous reports. Previous reports on TOP2A 100,101 , ITPKB 101 , HAND1 102 , SERINC2 [103][104][105] present a conjectural view of the importance of the gene in the progression of the CRC.…”
Section: Genesmentioning
confidence: 97%
“…The evidenced utility of immune scores in predicting patients' survival and clinical outcome has paved the way for further research on the tumor immune microenvironment and its regulatory mechanisms [14]. The prominent advancement in OMICs technologies facilitated a comprehensive and integrative analysis of colon cancer pathogenic mechanisms [15,16]. These technologies have recently been applied to study disease's molecular features and their correlation with prognosis and clinical outcomes [17].…”
Section: Introductionmentioning
confidence: 99%
“…In machine learning, multiclass classification, often known as multinomial classification, refers to the challenge of classifying events into one of three or more classes (classifying instances into one of two classes is called binary classification) ( 26 ). Many studies have focused on specifically alterative genes and their gene spaces in each disease subtype ( 27 , 28 ). Gene space is divided into regions that includes genes associated with specific pathological states because one or several biological processes could be affected and altered by a disease ( 26 ).…”
Section: Introductionmentioning
confidence: 99%