Systems Biomedicine of Rabies Delineates the Affected Signaling Pathways

Sadegh Azimzadeh Jamalkandi1, Sayed-Hamidreza Mozhgani2, Hamid Gholami Pourbadie3

  • 1Chemical Injuries Research Center, Baqiyatallah University of Medical Sciences Tehran, Iran.

Frontiers in Microbiology
|November 23, 2016
PubMed

Insights

Rabies virus infection causes lethal brain inflammation with no cure. This study identified key gene networks involved in rabies neuropathology, offering potential targets for new drug development.

Area of Science:

  • Neurovirology
  • Systems Biology
  • Computational Biology

Background:

  • Rabies, a neurotropic virus from the Rhabdoviridae family, causes fatal encephalomyelitis.
  • Despite extensive research and preventative measures, effective late-stage treatments for rabies remain elusive.
  • The psychological manifestations, etiology, and low survival rates of rabies encephalitis present ongoing mysteries.

Purpose of the Study:

  • To employ a systems biomedicine strategy to identify gene product networks implicated in rabies.
  • To elucidate the molecular mechanisms underlying rabies neuropathology and identify potential therapeutic targets.

Main Methods:

  • Meta-analysis of whole-transcriptome microarray datasets from the central nervous system (CNS) infected with rabies virus strain CVS-11.
  • Integration of transcriptomic data with interactome information using computational and statistical approaches.
  • Reconstruction of a refined protein-protein interaction network (PPIN) to map the rabies-implicated signal transduction network (RISN).

Main Results:

  • Identification of 61 seed genes central to signal propagation by integrating differentially expressed genes (DEGs) at mRNA and microRNA levels.
  • Construction of a refined PPIN, revealing the RISN.
  • Validation of selected network genes using Real-time PCR, confirming differential expression.

Conclusions:

  • The identified seed genes and their network neighborhood provide insights into signaling pathways, including interferon evasion, proliferation, survival, and neuropathology.
  • This study establishes a molecular framework for understanding rabies infection's complex neuropathology.
  • The findings offer potential drug targets for developing novel rabies therapies.

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