Network-based gene deletion analysis identifies candidate genes and molecular mechanism involved in clear cell renal

G K Udayaraja1, I Arnold Emerson

  • 1Bioinformatics Programming Lab, Department of Biotechnology, School of Bio Sciences and Technology, VIT, Vellore 632 014, India. i_arnoldemerson@yahoo.com.

Journal of Genetics
|March 12, 2021
PubMed

Insights

Researchers identified key genes in clear cell renal cell carcinoma (ccRCC) by analyzing gene expression data. This study highlights potential biomarkers like PDHB, ATP5C1, and APP for improved ccRCC diagnosis and treatment strategies.

Area of Science:

  • Oncology
  • Genomics
  • Bioinformatics

Background:

  • Clear cell renal cell carcinoma (ccRCC) is the most prevalent kidney cancer subtype.
  • There is a critical need for predictive biomarkers to understand ccRCC molecular mechanisms and improve patient management.
  • Current therapeutic strategies require enhancement through novel molecular targets.

Purpose of the Study:

  • To identify shared gene signatures in ccRCC using meta-analysis of gene expression data.
  • To construct and analyze gene networks to pinpoint central hub genes critical for ccRCC integrity.
  • To elucidate the functional roles of differentially expressed genes (DEGs) and their involvement in ccRCC pathogenesis.

Main Methods:

  • Meta-analysis of gene expression microarray data from case-control studies (Gene Expression Omnibus).
  • Gene network construction and topological analysis, including gene deletion studies.
  • Functional enrichment analysis using Gene Ontology and Elsevier disease pathways.
  • MicroRNA target gene analysis and regulatory network construction.

Main Results:

  • Identified 577 differentially expressed genes (DEGs) in ccRCC (146 overexpressed, 431 underexpressed).
  • Enrichment analysis linked DEGs to metabolic pathways, including cancer metabolic reprogramming and the Warburg effect.
  • Highlighted the potential roles of PDHB, ATP5C1 in metabolic alterations and APP in cell-cycle regulation in ccRCC progression.

Conclusions:

  • The identified DEGs and hub genes offer potential predictive biomarkers for ccRCC.
  • Findings provide insights into the molecular mechanisms driving ccRCC, particularly metabolic reprogramming.
  • This research paves the way for developing biomarker-based diagnostic and therapeutic strategies for ccRCC.

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