Genomics and transcriptomics yields a system-level view of the biology of the pathogen Naegleria fowleri

Emily K Herman1,2, Alex Greninger3,4, Mark van der Giezen5

  • 1Division of Infectious Disease, Department of Medicine, Faculty of Medicine and Dentistry, University of Alberta, Edmonton, Canada. eherman@ualberta.ca.

BMC Biology
|July 23, 2021
PubMed
Abstract

Insights

Naegleria fowleri, a brain-infecting pathogen, kills rapidly. This study reveals key cellular systems, including proteases and metabolic adaptations, are crucial for its pathogenicity and host invasion.

Area of Science:

  • Microbiology
  • Pathogen Biology
  • Genomics

Background:

  • Naegleria fowleri is an opportunistic pathogen causing fatal brain infections.
  • It invades brain tissue via trogocytosis, leading to severe inflammation.
  • Understanding N. fowleri's pathogenicity is critical due to its expanding range.

Purpose of the Study:

  • To investigate the system-level biology of Naegleria fowleri using an -omics approach.
  • To identify cellular mechanisms distinguishing pathogenic from non-pathogenic Naegleria species.
  • To understand how N. fowleri adapts and causes disease in the human brain.

Main Methods:

  • Sequencing of two new N. fowleri strains.
  • Transcriptomic analysis of low- vs. high-pathogenicity N. fowleri in a mouse model.
  • Comparative genomic and molecular evolutionary analyses.

Main Results:

  • High conservation of encoded protein complements between N. fowleri strains.
  • N. fowleri possesses a complete cellular repertoire similar to non-pathogenic species.
  • Pathogenicity is linked to proteases, lysosomal machinery, motility, metabolic reprogramming, and novel proteins, not stress responses or lateral gene transfer.
  • Upregulation of glutamate metabolism and ammonia transport genes suggests adaptation to the central nervous system environment.

Conclusions:

  • Genomic and transcriptomic analyses offer a model for N. fowleri pathogenicity.
  • Key cellular systems and metabolic adaptations are implicated in N. fowleri's fatal infections.
  • This research provides new insights into the biology of this rare but lethal pathogen.

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