Influence networks based on coexpression improve drug target discovery for the development of novel cancer

Nadia M Penrod, Jason H Moore1

  • 1Department of Genetics, Geisel School of Medicine at Dartmouth College, HB7937 One Medical Center Dr,, Lebanon, NH 03766, USA. jason.h.moore@dartmouth.edu.

BMC Systems Biology
|February 6, 2014
PubMed
Abstract

Insights

Influence networks identify essential genes as promising drug targets for personalized cancer therapy. This approach helps discover novel drug combinations by analyzing how tumors adapt to treatment.

Area of Science:

  • Oncology
  • Systems Biology
  • Bioinformatics

Background:

  • Personalized cancer treatment requires identifying molecular targets specific to individual tumors.
  • Drug discovery faces challenges in identifying safe and effective molecular targets and combinations.
  • Biological networks offer a promising approach to prioritize drug targets based on network properties.

Purpose of the Study:

  • Introduce influence networks as a method to generate influence scores for ranking potential drug targets.
  • Apply influence networks to identify novel drug targets in estrogen receptor-positive (ER⁺) breast tumors.
  • Investigate how gene influence scores change in tumors adapting to drug treatment.

Main Methods:

  • Developed influence networks to calculate gene influence scores.
  • Prioritized genes as drug targets in ER⁺ breast tumor samples treated with letrozole.
  • Compared influential genes with network hubs and bottlenecks.

Main Results:

  • Genes with high influence scores are more likely to be essential drug targets.
  • Identified novel, biologically relevant drug targets for ER⁺ breast cancer.
  • Demonstrated that gene influence differs between untreated and drug-adapted tumors.
  • Influence scores capture context-dependent gene functions.

Conclusions:

  • Influence networks effectively identify essential genes as promising drug targets.
  • This approach aids in developing molecularly targeted drugs and combination therapies.
  • Influence scores provide insights into tumor adaptation for designing novel treatment strategies.

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