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Live Imaging of Antifungal Activity by Human Primary Neutrophils and Monocytes in Response to A. fumigatus
Published on: April 19, 2017
Sub-telomere directed gene expression during initiation of invasive aspergillosis
Andrew McDonagh1, Natalie D Fedorova, Jonathan Crabtree
1Department of Microbiology, Imperial College London, London, United Kingdom.
Abstract:
Aspergillus fumigatus is a common mould whose spores are a component of the normal airborne flora. Immune dysfunction permits developmental growth of inhaled spores in the human lung causing aspergillosis, a significant threat to human health in the form of allergic, and life-threatening invasive infections. The success of A. fumigatus as a pathogen is unique among close phylogenetic relatives and is poorly characterised at the molecular level. Recent genome sequencing of several Aspergillus species provides an exceptional opportunity to analyse fungal virulence attributes within a genomic and evolutionary context. To identify genes preferentially expressed during adaptation to the mammalian host niche, we generated multiple gene expression profiles from minute samplings of A. fumigatus germlings during initiation of murine infection. They reveal a highly co-ordinated A. fumigatus gene expression programme, governing metabolic and physiological adaptation, which allows the organism to prosper within the mammalian niche. As functions of phylogenetic conservation and genetic locus, 28% and 30%, respectively, of the A. fumigatus subtelomeric and lineage-specific gene repertoires are induced relative to laboratory culture, and physically clustered genes including loci directing pseurotin, gliotoxin and siderophore biosyntheses are a prominent feature. Locationally biased A. fumigatus gene expression is not prompted by in vitro iron limitation, acid, alkaline, anaerobic or oxidative stress. However, subtelomeric gene expression is favoured following ex vivo neutrophil exposure and in comparative analyses of richly and poorly nourished laboratory cultured germlings. We found remarkable concordance between the A. fumigatus host-adaptation transcriptome and those resulting from in vitro iron depletion, alkaline shift, nitrogen starvation and loss of the methyltransferase LaeA. This first transcriptional snapshot of a fungal genome during initiation of mammalian infection provides the global perspective required to direct much-needed diagnostic and therapeutic strategies and reveals genome organisation and subtelomeric diversity as potential driving forces in the evolution of pathogenicity in the genus Aspergillus.
Insights
Aspergillus fumigatus adapts to the mammalian host via a coordinated gene expression program. This study reveals insights into fungal pathogenicity and potential therapeutic targets.
Area of Science:
- Mycology
- Genomics
- Pathogenesis
Background:
- Aspergillus fumigatus is a common mold with spores in airborne flora.
- Immune dysfunction can lead to aspergillosis, a serious human health threat.
- The molecular basis of A. fumigatus pathogenicity is poorly understood.
Purpose of the Study:
- To identify genes expressed during adaptation to the mammalian host niche.
- To analyze fungal virulence attributes in a genomic and evolutionary context.
- To provide a global perspective for diagnostic and therapeutic strategies.
Main Methods:
- Generated gene expression profiles from A. fumigatus germlings during murine infection.
- Analyzed subtelomeric and lineage-specific gene expression.
- Compared host-adaptation transcriptome with in vitro conditions.
Main Results:
- A coordinated gene expression program governs A. fumigatus adaptation to the mammalian niche.
- Subtelomeric and lineage-specific genes are significantly induced during infection.
- Gene expression patterns show concordance with in vitro iron depletion, alkaline shift, and nitrogen starvation.
Conclusions:
- Genome organization and subtelomeric diversity may drive pathogenicity evolution in Aspergillus.
- This transcriptional snapshot offers insights into fungal host adaptation.
- Findings can guide the development of new diagnostic and therapeutic strategies against aspergillosis.
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