A SARS-CoV-2 host infection model network based on genomic human Transcription Factors (TFs) depletion

Massimiliano Chetta1, Alessandra Rosati2, Liberato Marzullo2

  • 1Ospedale Antonio Cardarelli, O.C. di Genetica Medica e di Laboratorio, A.O.R.N. Cardarelli, Medical Genetics Laboratory, Building Y, Naples, Italy.

Heliyon
|September 28, 2020
PubMed

Insights

This study used bioinformatics to analyze SARS-CoV-2 genomes, identifying conserved motifs that bind host transcription factors. These findings may explain the virus's varied symptoms and suggest potential drug targets.

Area of Science:

  • Virology
  • Bioinformatics
  • Genomics

Background:

  • Coronaviruses, including SARS-CoV-2, cause significant global health issues.
  • Understanding viral mechanisms is crucial for managing emerging infectious diseases.
  • In silico analysis offers a powerful approach to study viral pathogens.

Purpose of the Study:

  • To perform an in silico comparative analysis of SARS-CoV-2 genomes against other coronaviruses.
  • To identify conserved motifs in viral genomic sequences capable of binding host transcription factors (TFs).
  • To explore the potential impact of TF binding on viral pathogenesis and host response.

Main Methods:

  • Comparative genomic analysis of SARS-CoV-2, SARS-CoV, MERS-CoV, and HCoV-OC43 using in silico methods.
  • Identification of conserved motifs and their distribution as Transcription Factor Binding Sites (TFBSs).
  • Analysis of potential interactions between viral motifs and host TFs.

Main Results:

  • Identified specific conserved motifs within the SARS-CoV-2 genome.
  • Determined the distribution of TFBSs across the analyzed viral strains.
  • Observed that these motifs are potentially capable of binding host TFs, influencing gene expression.

Conclusions:

  • The in silico approach provides valuable insights into SARS-CoV-2 biology.
  • TF-binding motifs may contribute to the complex and heterogeneous clinical presentation of SARS-CoV-2 infections.
  • These findings could aid in predicting interactions with metabolic pathways and identifying drug targets.

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