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Author Spotlight: Understanding the Propagation of Closed Circular Extrachromosomal rDNA Containing Element (CERE) in Naegleria gruberi
Published on: June 21, 2024
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.
Background:
The opportunistic pathogen Naegleria fowleri establishes infection in the human brain, killing almost invariably within 2 weeks. The amoeba performs piece-meal ingestion, or trogocytosis, of brain material causing direct tissue damage and massive inflammation. The cellular basis distinguishing N. fowleri from other Naegleria species, which are all non-pathogenic, is not known. Yet, with the geographic range of N. fowleri advancing, potentially due to climate change, understanding how this pathogen invades and kills is both important and timely.
Results:
Here, we report an -omics approach to understanding N. fowleri biology and infection at the system level. We sequenced two new strains of N. fowleri and performed a transcriptomic analysis of low- versus high-pathogenicity N. fowleri cultured in a mouse infection model. Comparative analysis provides an in-depth assessment of encoded protein complement between strains, finding high conservation. Molecular evolutionary analyses of multiple diverse cellular systems demonstrate that the N. fowleri genome encodes a similarly complete cellular repertoire to that found in free-living N. gruberi. From transcriptomics, neither stress responses nor traits conferred from lateral gene transfer are suggested as critical for pathogenicity. By contrast, cellular systems such as proteases, lysosomal machinery, and motility, together with metabolic reprogramming and novel N. fowleri proteins, are all implicated in facilitating pathogenicity within the host. Upregulation in mouse-passaged N. fowleri of genes associated with glutamate metabolism and ammonia transport suggests adaptation to available carbon sources in the central nervous system.
Conclusions:
In-depth analysis of Naegleria genomes and transcriptomes provides a model of cellular systems involved in opportunistic pathogenicity, uncovering new angles to understanding the biology of a rare but highly fatal pathogen.
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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