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Fungal-Bacterial Interactions in Polymicrobial Infections: Hidden Threats
Mohammad Javad Roustaye Gourabi1, Masoud Kargar2, Atefeh Kamali3
1Department of Microbiology, School of Medicine, Shahid Beheshti University of Medical Sciences, Tehran, Iran.
Abstract:
Polymicrobial infections involving fungi and bacteria represent a major and increasingly recognized clinical challenge, in which interkingdom interactions significantly amplify disease severity, antimicrobial resistance, and treatment failure. Rather than passive co-existence, fungal-bacterial communities form highly coordinated systems driven by physical adhesion, quorum sensing, metabolic interdependence, and biofilm-mediated structural reinforcement. These cooperative interactions, exemplified by pairs such as Candida albicans-Staphylococcus aureus and Pseudomonas aeruginosa-Aspergillus fumigatus, promote the development of treatment-recalcitrant biofilms with enhanced immune evasion and multidrug tolerance. The global rise of multidrug-resistant (MDR) and extensively drug-resistant (XDR) pathogens has further intensified this burden, with polymicrobial biofilms now representing a post-antibiotic clinical scenario in which therapeutic failure is driven not by individual resistant organisms but by emergent, cooperative resistance architectures. Conventional diagnostic approaches remain insufficient, as culture-based methods frequently fail to capture the complexity of mixed microbial communities. Emerging technologies such as MALDI-TOF mass spectrometry, metagenomic sequencing, and fluorescence in situ hybridization offer improved resolution but are not yet fully integrated into routine clinical practice. Therapeutically, increasing evidence indicates that monotherapy is inherently inadequate in polymicrobial infections due to the emergent nature of microbial cooperation. Effective management therefore requires combination strategies that simultaneously target multiple pathogens and their shared biofilm infrastructure. These include antibiotic-antifungal combinations, phage therapy, enzymatic and nanoparticle-mediated biofilm disruption, metabolic interference, and host-directed immunomodulation. Importantly, recent advances also highlight the role of biophysical properties such as biofilm viscoelasticity and matrix stiffness as critical and previously underappreciated therapeutic targets. This review uniquely integrates biochemical, biophysical, and therapeutic dimensions of polymicrobial infections into a unified systems-level framework in which microbial cooperation is the central driver of pathogenesis, resistance, and treatment failure. Fungal-bacterial interactions are thereby positioned along a dynamic continuum from commensalism to pathogenesis, shaped by host susceptibility and environmental perturbations. Future progress will depend on interdisciplinary strategies combining multi-omics technologies, precision diagnostics, and microbiome-informed therapeutic design to effectively disrupt these complex microbial networks.
Insights
Polymicrobial infections involving fungi and bacteria create drug-resistant biofilms. Effective treatment requires combination strategies targeting multiple pathogens and their biofilms, not single-drug approaches.
Area of Science:
- Microbiology
- Infectious Diseases
- Biophysics
Background:
- Polymicrobial infections involving fungi and bacteria present significant clinical challenges, amplifying disease severity and treatment failure.
- These interkingdom communities form coordinated systems through adhesion, quorum sensing, and metabolic interdependence, leading to robust biofilms.
- The rise of multidrug-resistant (MDR) and extensively drug-resistant (XDR) pathogens exacerbates this issue, creating a post-antibiotic era scenario.
Purpose of the Study:
- To provide a unified systems-level framework integrating biochemical, biophysical, and therapeutic aspects of fungal-bacterial polymicrobial infections.
- To highlight microbial cooperation as the central driver of pathogenesis, antimicrobial resistance, and therapeutic failure.
- To position fungal-bacterial interactions along a continuum from commensalism to pathogenesis.
Main Methods:
- Review of current literature on fungal-bacterial interactions, biofilm formation, and antimicrobial resistance.
- Integration of biochemical, biophysical, and clinical data into a systems-level perspective.
- Discussion of emerging diagnostic technologies and therapeutic strategies.
Main Results:
- Fungal-bacterial cooperation drives the formation of treatment-recalcitrant biofilms with enhanced immune evasion and multidrug tolerance.
- Conventional diagnostics are insufficient for complex polymicrobial communities; emerging technologies offer improved resolution.
- Monotherapy is inadequate; combination strategies targeting multiple pathogens and biofilm infrastructure are essential for effective management.
Conclusions:
- Effective management of polymicrobial infections necessitates combination therapies, including antibiotic-antifungal combinations, phage therapy, and biofilm disruption agents.
- Biophysical properties of biofilms, such as viscoelasticity and matrix stiffness, are critical therapeutic targets.
- Future progress requires interdisciplinary approaches combining multi-omics, precision diagnostics, and microbiome-informed therapeutic design to disrupt complex microbial networks.
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