Publication | Open Access
An Optimization-Driven Analysis Pipeline to Uncover Biomarkers and Signaling Paths: Cervix Cancer
34
Citations
81
References
2015
Year
EngineeringGeneticsMultiomicsGene Expression ProfilingImportant GenesTwo-step Analysis PipelineGenetic Signaling PathBiostatisticsUncover BiomarkersOptimization-driven Analysis PipelineMolecular DiagnosticsMicroarray Data AnalysisCancer ResearchOmicsPathway AnalysisBioinformaticsFunctional GenomicsCell BiologyTumor MicroenvironmentCervical CancerComputational BiologyCancer GenomicsRegulatory Network ModellingCervix CancerSystems BiologyMedicine
Establishing how a series of potentially important genes might relate to each other is relevant to understand the origin and evolution of illnesses, such as cancer. High-throughput biological experiments have played a critical role in providing information in this regard. A special challenge, however, is that of trying to conciliate information from separate microarray experiments to build a potential genetic signaling path. This work proposes a two-step analysis pipeline, based on optimization, to approach meta-analysis aiming to build a proxy for a genetic signaling path.
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