MYC_V1-Related Genes Affect Gastric Cancer Proliferation by Regulating Energy Metabolism and Analysis of Therapeutic

Duo Xu1, Lingyi Peng1, Jing He2

  • 1School of Clinical Medical Sciences, Jiamusi University, Jiamusi 154007, China.

Insights

This study identifies MYC_V1-related genes as key drivers of gastric cancer (GC) progression and develops a prognostic model. NDUFV2 is highlighted as a potential therapeutic target for improving gastric cancer survival.

Area of Science:

  • Oncology
  • Molecular Biology
  • Bioinformatics

Background:

  • Gastric cancer (GC) presents a significant global health challenge with limited treatment options for advanced stages, often due to drug resistance.
  • Aberrant cellular metabolism, particularly MYC_V1-driven reprogramming, is crucial for cancer progression, yet its specific role in GC energy metabolism remains unclear.
  • Identifying novel therapeutic targets is critical for improving patient outcomes in GC.

Purpose of the Study:

  • To investigate the role of MYC_V1-related genes in gastric cancer (GC) progression and energy metabolism.
  • To develop a prognostic risk model for GC patients based on MYC_V1-related genes.
  • To identify potential therapeutic agents and validate novel molecular targets for GC treatment.

Main Methods:

  • Utilized single-sample gene set enrichment analysis (ssGSEA) to assess tumor hallmarks in GC.
  • Constructed and validated a prognostic risk model using eight MYC_V1-related genes and a nomogram.
  • Performed high-throughput drug screening, molecular docking, and functional experiments (CCK-8, wound-healing, ATP assays) to validate gene function.

Main Results:

  • MYC_V1 was identified as a primary risk factor for overall survival (OS) in GC patients (p = 0.038).
  • A robust prognostic risk model based on eight MYC_V1-related genes (KPNA2, MCM2, MCM4, NDUFV2, PDK4, MPO, IGFBP1, STC2) was developed and validated as an independent prognostic factor.
  • Camptothecin (CPT) and vinblastine were identified as potential therapeutics for high-risk GC patients; NDUFV2 was found to be overexpressed and crucial for GC cell proliferation, migration, and ATP production.

Conclusions:

  • The developed prognostic risk model accurately predicts OS in GC patients and reveals differences in tumor microenvironment immune cell infiltration.
  • NDUFV2 plays a critical role in gastric cancer progression by promoting proliferation, migration, and energy metabolism.
  • NDUFV2 emerges as a promising therapeutic target for gastric cancer, with potential drug candidates identified for high-risk patient stratification.

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