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A Novel Bayesian Framework Infers Driver Activation States and Reveals Pathway-Oriented Molecular Subtypes in Head and Neck Cancer. | LitMetric

AI Article Synopsis

  • - The study focuses on head and neck squamous cell cancer (HNSCC), which has various causes, and aims to uncover the underlying mechanisms driving different tumor behaviors through a new Bayesian framework.
  • - Researchers used a tumor-specific causal inference model to analyze relationships between genetic alterations and gene expression in HNSCC tumors from TCGA, leading to the identification of significant driver genes and their targets.
  • - By employing machine learning, the team classified HNSCC into four distinct subtypes based on protein activity related to cancer growth, revealing important roles of certain proteins affected by HPV infection, regardless of genetic changes in HPV-positive cases.

Article Abstract

Head and neck squamous cell cancer (HNSCC) is an aggressive cancer resulting from heterogeneous causes. To reveal the underlying drivers and signaling mechanisms of different HNSCC tumors, we developed a novel Bayesian framework to identify drivers of individual tumors and infer the states of driver proteins in cellular signaling system in HNSCC tumors. First, we systematically identify causal relationships between somatic genome alterations (SGAs) and differentially expressed genes (DEGs) for each TCGA HNSCC tumor using the tumor-specific causal inference (TCI) model. Then, we generalize the most statistically significant driver SGAs and their regulated DEGs in TCGA HNSCC cohort. Finally, we develop machine learning models that combine genomic and transcriptomic data to infer the protein functional activation states of driver SGAs in tumors, which enable us to represent a tumor in the space of cellular signaling systems. We discovered four mechanism-oriented subtypes of HNSCC, which show distinguished patterns of activation state of HNSCC driver proteins, and importantly, this subtyping is orthogonal to previously reported transcriptomic-based molecular subtyping of HNSCC. Further, our analysis revealed driver proteins that are likely involved in oncogenic processes induced by HPV infection, even though they are not perturbed by genomic alterations in HPV+ tumors.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9563147PMC
http://dx.doi.org/10.3390/cancers14194825DOI Listing

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