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Published on: March 19, 2019
Harnessing inter-kingdom metabolic disparities at the human-fungal interface for novel therapeutic approaches
Claudio Costantini1, Marilena Pariano1, Matteo Puccetti2
1Department of Medicine and Surgery, University of Perugia, Perugia, Italy.
Abstract:
Humans interact with a multitude of microorganisms in various ecological relationships, ranging from commensalism to pathogenicity. The same applies to fungi, long recognized for their pathogenic roles in infection-such as in invasive fungal diseases caused, among others, by Aspergillus fumigatus and Candida spp.-and, more recently, for their beneficial activities as an integral part of the microbiota. Indeed, alterations in the fungal component of the microbiota, or mycobiota, have been associated with inflammatory, infectious and metabolic diseases, and cancer. Whether acting as opportunistic pathogens or symbiotic commensals, fungi possess a complex enzymatic repertoire that intertwines with that of the host. In this metabolic cross-talk, fungal enzymes may be unique, thus providing novel metabolic opportunities to the host, or, conversely, produce toxic metabolites. Indeed, administration of fungal probiotics and fungi-derived products may be beneficial in inflammatory and infectious diseases, but fungi may also produce a plethora of toxic secondary metabolites, collectively known as mycotoxins. Fungal enzymes may also be homologues to human enzymes, but nevertheless embedded in fungal-specific metabolic networks, determined by all the interconnected enzymes and molecules, quantitatively and qualitatively specific to the network, such that the activity and metabolic effects of each enzyme remain unique to fungi. In this Opinion, we explore the concept that targeting this fungal metabolic unicity, either in opportunistic pathogens or commensals, may be exploited to develop novel therapeutic strategies. In doing so, we present our recent experience in different pathological settings that ultimately converge on relevant trans-kingdom metabolic differences.
Insights
Fungi, as pathogens or commensals, possess unique enzymes that interact with human metabolism. Targeting these fungal metabolic differences offers novel therapeutic strategies for various diseases.
Area of Science:
- Microbiology
- Metabolic Engineering
- Medical Mycology
Background:
- Fungi are key members of the human microbiota, exhibiting diverse ecological roles from commensalism to pathogenicity.
- Alterations in the fungal microbiota (mycobiota) are linked to inflammatory, infectious, metabolic diseases, and cancer.
- Fungi possess unique enzymatic repertoires that engage in metabolic cross-talk with the host.
Purpose of the Study:
- To explore the concept of targeting fungal metabolic uniqueness for novel therapeutic strategies.
- To highlight the potential of exploiting trans-kingdom metabolic differences between fungi and hosts.
- To present recent experiences in pathological settings demonstrating these metabolic differences.
Main Methods:
- Review of fungal enzymatic repertoires and their interactions with host metabolism.
- Analysis of metabolic cross-talk between fungi (pathogens and commensals) and human systems.
- Case studies illustrating pathological settings involving fungal-human metabolic interactions.
Main Results:
- Fungal enzymes can offer unique metabolic opportunities or produce toxic metabolites (mycotoxins).
- Fungal metabolic networks, though containing enzyme homologues to humans, are uniquely structured.
- Trans-kingdom metabolic differences between fungi and hosts are evident across various pathological conditions.
Conclusions:
- Targeting the unique metabolic characteristics of fungi, whether pathogenic or commensal, presents a promising avenue for developing novel therapeutics.
- Understanding fungal-specific metabolic pathways and their interactions with the host is crucial for therapeutic innovation.
- Exploiting fungal metabolic unicity holds potential for treating a range of diseases associated with mycobiota dysbiosis or fungal infections.
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