Molecular Mechanisms of Mucormycosis Pathogenesis: Host–Pathogen Interactions and Immune Evasion
Abstract
1. Introduction
2. Biological and Molecular Basis of Virulence
3. Host–Pathogen Interactions: From Entry to Tissue Invasion
3.1. Spore Adhesion and Endothelial Invasion
3.2. Iron Acquisition as a Central Pathogenic Axis
3.3. Angioinvasion and Thrombosis
4. Host Immune Responses to Mucorales
4.1. Innate Immunity
4.2. Adaptive Immunity
5. Immune Evasion Strategies
5.1. Masking and Modulation of PAMP Recognition
5.2. Resistance to Phagocytic Killing
5.3. Metabolic Adaptation in Host Microenvironments
5.4. Modulation of Host Signaling Pathways
6. Translational Implications
6.1. Molecular Diagnostics
6.2. Therapeutic Targets
7. Knowledge Gaps and Future Directions
8. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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| Virulence Determinant | Gene(s)/Molecular Component | Molecular Function | Host Interaction Mechanism | Clinical Relevance Classification | References |
|---|---|---|---|---|---|
| CotH | CotH3, CotH7 | Surface proteins specific to Mucorales; work as invasins | Direct attachment to host GRP78 on endothelial cells | Antifungal target; candidate molecular diagnostic marker | [4,24] |
| Iron permease system | FTR1 | Reductive iron absorption is facilitated by iron permease. | Helps absorb ferric iron that is released in acidic or iron-overloaded environments | Metabolic virulence factor; potential antifungal target (iron acquisition pathway); risk amplifier in iron-overload states | [25,26] |
| Xenosiderophore-mediated iron acquisition | Ferrioxamine transport system | Employs deferoxamine as a xenosiderophore for iron acquisition | Deferoxamine-iron complex transported into fungal cells | Latrogenic risk factor pathway (deferoxamine-mediated xenosiderophore activity); therapeutic caution marker in iron-chelation therapy | [27,28] |
| Calcineurin signaling pathway | CnaA, CnbR | Calcium/calmodulin-dependent phosphatase modulation hyphal expansion | Regulates morphogenesis and stress adaptation | Antifungal drug target; virulence regulator | [29,30] |
| Heat shock protein 90 (Hsp90) | Hsp90 | Stress response protein stabilization by a molecular chaperone | Promotes the survival of fungi under oxidative and heat stress | Therapeutic target (combination therapy) | [31,32] |
| Cell wall synthesis machinery | Chitin synthases | Cell wall chitin biosynthesis | Keeps the hyphae’s structural integrity intact | Structural antifungal target | [33] |
| Oxidative stress response enzymes | Superoxide dismutase (SOD), catalase | Detoxification of reactive oxygen species (ROS) | Safeguards against oxidative death caused by neutrophils | Immune evasion factor | [34] |
| Immune Component | Key Molecular Mediators | Fungal Trigger | Cellular Response | Outcome | References |
|---|---|---|---|---|---|
| GRP78-driven endothelial invasion process | GRP78 (HSPA5), downstream endocytic machinery | CotH surface proteins | Receptor-faciliated fungal endocytosis and endothelial cell damage | Promotes, angioinvasion, vascular thrombosis, tissue necrosis | [13] |
| TLR2/TLR4–MyD88–NF-κB signals | TLR2, TLR4, MyD88, NF-κB | Spore and germling cell wall components | NF-κB stimulation with TNF-α and IL-6 release | Causes an early innate inflammatory cytokine reaction. | [41] |
| Dectin-1–SYK identification process | Dectin-1, SYK kinase | β-glucan | Poor SYK signals and moderate cytokine generation | Decreased inflammatory stimulation in contrast to infections caused by Aspergillus | [42] |
| Neutrophil oxidative burst process | NADPH oxidase, ROS | Hyphal elements | ROS-driven hyphal injury and extracellular death | Neutropenia markedly predisposes to invasive condition | [17] |
| Macrophage phagolysosomal response to spores | Phagolysosomal enzymes, TNF-α | Sporangiospores | Phagocytosis and suppression of intracellular germination | Early restriction lowers progression to hyphal invasion | [37] |
| Iron sequestration | Transferrin, ferritin | FTR1-mediated uptake | Host iron attachment limits extracellular iron accessibility | Acidosis decreases transferrin attachment, increasing fungal growth | [5] |
| IFN-γ–induced macrophage stimulation (Th1 response) | IFN-γ | Antigen presentation following innate stimulation | Increased macrophage antifungal action and cytokine generation | Protective cellular immunity prevents the spread of fungi | [35] |
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Alanazi, A.; Ibrahim, M.N.; Alenezi, M.A.; Albalawi, W.O. Molecular Mechanisms of Mucormycosis Pathogenesis: Host–Pathogen Interactions and Immune Evasion. Pathogens 2026, 15, 522. https://doi.org/10.3390/pathogens15050522
Alanazi A, Ibrahim MN, Alenezi MA, Albalawi WO. Molecular Mechanisms of Mucormycosis Pathogenesis: Host–Pathogen Interactions and Immune Evasion. Pathogens. 2026; 15(5):522. https://doi.org/10.3390/pathogens15050522
Chicago/Turabian StyleAlanazi, Awadh, Mohamed N. Ibrahim, Maram Awied Alenezi, and Wejdan Oudah Albalawi. 2026. "Molecular Mechanisms of Mucormycosis Pathogenesis: Host–Pathogen Interactions and Immune Evasion" Pathogens 15, no. 5: 522. https://doi.org/10.3390/pathogens15050522
APA StyleAlanazi, A., Ibrahim, M. N., Alenezi, M. A., & Albalawi, W. O. (2026). Molecular Mechanisms of Mucormycosis Pathogenesis: Host–Pathogen Interactions and Immune Evasion. Pathogens, 15(5), 522. https://doi.org/10.3390/pathogens15050522

