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Tornadic Shear Stress Induces a Transient, Calcineurin-Dependent Hypervirulent Phenotype in Mucorales Molds
Sebastian Wurster1, Alexander M Tatara2, Nathaniel D Albert1
1Department of Infectious Diseases, Infection Control and Employee Health, The University of Texas M. D. Anderson Cancer Center, Houston, Texas, USA.
Abstract:
Trauma-related necrotizing myocutaneous mucormycosis (NMM) has a high morbidity and mortality in victims of combat-related injuries, geometeorological disasters, and severe burns. Inspired by the observation that several recent clusters of NMM have been associated with extreme mechanical forces (e.g., during tornados), we studied the impact of mechanical stress on Mucoralean biology and virulence in a Drosophila melanogaster infection model. In contrast to other experimental procedures to exert mechanical stress, tornadic shear challenge (TSC) by magnetic stirring induced a hypervirulent phenotype in several clinically relevant Mucorales species but not in Aspergillus or Fusarium Whereas fungal growth rates, morphogenesis, and susceptibility to noxious environments or phagocytes were not altered by TSC, soluble factors released in the supernatant of shear-challenged R. arrhizus spores rendered static spores hypervirulent. Consistent with a rapid decay of TSC-induced hypervirulence, minimal transcriptional changes were revealed by comparative RNA sequencing analysis of static and shear-challenged Rhizopus arrhizus However, inhibition of the calcineurin/heat shock protein 90 (hsp90) stress response circuitry by cyclosporine and tanespimycin abrogated the increased pathogenicity of R. arrhizus spores following TSC. Similarly, calcineurin loss-of-function mutants of Mucor circinelloides displayed no increased virulence capacity in flies after undergoing TSC. Collectively, these results establish that TSC induces hypervirulence specifically in Mucorales and point out the calcineurin/hsp90 pathway as a key orchestrator of this phenotype. Our findings invite future studies of topical calcineurin inhibitor treatment of wounds as an adjunct mitigation strategy for NMM following high-energy trauma.IMPORTANCE Given the limited efficacy of current medical treatments in trauma-related necrotizing mucormycosis, there is a dire need to better understand the Mucoralean pathophysiology in order to develop novel strategies to counteract fungal tissue invasion following severe trauma. Here, we describe that tornadic shear stress challenge transiently induces a hypervirulent phenotype in various pathogenic Mucorales species but not in other molds known to cause wound infections. Pharmacological and genetic inhibition of calcineurin signaling abrogated hypervirulence in shear stress-challenged Mucorales, encouraging further evaluation of (topical) calcineurin inhibitors to improve therapeutic outcomes of NMM after combat-related blast injuries or violent storms.
Insights
Tornadic shear stress challenge (TSC) enhances the virulence of Mucorales fungi, causing a hypervirulent phenotype. Inhibition of the calcineurin/hsp90 pathway abrogates this effect, suggesting new therapeutic strategies for trauma-related necrotizing myocutaneous mucormycosis.
Area of Science:
- Mycology and Infectious Diseases
- Trauma and Wound Infections
- Fungal Pathogenesis
Background:
- Trauma-related necrotizing myocutaneous mucormycosis (NMM) presents high morbidity and mortality.
- Recent NMM clusters are linked to extreme mechanical forces, such as tornados.
- Understanding fungal response to mechanical stress is crucial for novel treatment strategies.
Purpose of the Study:
- To investigate the impact of mechanical stress on Mucoralean biology and virulence.
- To identify the molecular mechanisms underlying stress-induced fungal hypervirulence.
- To explore potential therapeutic targets for NMM following high-energy trauma.
Main Methods:
- Utilized a *Drosophila melanogaster* infection model to study Mucorales.
- Applied tornadic shear challenge (TSC) via magnetic stirring to fungal spores.
- Analyzed fungal growth, morphology, and virulence; employed RNA sequencing and genetic/pharmacological inhibition of stress response pathways (calcineurin/hsp90).
Main Results:
- TSC induced a hypervirulent phenotype specifically in Mucorales, not *Aspergillus* or *Fusarium*.
- Shear-challenged *Rhizopus arrhizus* released soluble factors that rendered static spores hypervirulent.
- Inhibition of the calcineurin/hsp90 pathway abrogated TSC-induced hypervirulence in *R. arrhizus* and *Mucor circinelloides*.
Conclusions:
- Tornadic shear stress challenge specifically induces transient hypervirulence in Mucorales.
- The calcineurin/hsp90 pathway is a key regulator of this stress-induced hypervirulence.
- Findings support evaluating topical calcineurin inhibitors as an adjunct therapy for NMM after high-energy trauma.
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