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Published on: December 5, 2020
Valproic Acid Induces Antimicrobial Compound Production in Doratomyces microspores
Christoph Zutz1, Markus Bacher2, Alexandra Parich3
1Institute for Milk Hygiene, University of Veterinary Medicine ViennaVienna, Austria; Research Platform Bioactive Microbial Metabolites, Bioresources and Technologies Campus in TullnTulln an der Donau, Austria.
Abstract:
One of the biggest challenges in public health is the rising number of antibiotic resistant pathogens and the lack of novel antibiotics. In recent years there is a rising focus on fungi as sources of antimicrobial compounds due to their ability to produce a large variety of bioactive compounds and the observation that virtually every fungus may still contain yet unknown so called "cryptic," often silenced, compounds. These putative metabolites could include novel bioactive compounds. Considerable effort is spent on methods to induce production of these "cryptic" metabolites. One approach is the use of small molecule effectors, potentially influencing chromatin landscape in fungi. We observed that the supernatant of the fungus Doratomyces (D.) microsporus treated with valproic acid (VPA) displayed antimicrobial activity against Staphylococcus (S.) aureus and two methicillin resistant clinical S. aureus isolates. VPA treatment resulted in enhanced production of seven antimicrobial compounds: cyclo-(L-proline-L-methionine) (cPM), p-hydroxybenzaldehyde, cyclo-(phenylalanine-proline) (cFP), indole-3-carboxylic acid, phenylacetic acid (PAA) and indole-3-acetic acid. The production of the antimicrobial compound phenyllactic acid was exclusively detectable after VPA treatment. Furthermore three compounds, cPM, cFP, and PAA, were able to boost the antimicrobial activity of other antimicrobial compounds. cPM, for the first time isolated from fungi, and to a lesser extent PAA, are even able to decrease the minimal inhibitory concentration of ampicillin in MRSA strains. In conclusion we could show in this study that VPA treatment is a potent tool for induction of "cryptic" antimicrobial compound production in fungi, and that the induced compounds are not exclusively linked to the secondary metabolism. Furthermore this is the first discovery of the rare diketopiperazine cPM in fungi. Additionally we could demonstrate that cPM and PAA boost antibiotic activity against antibiotic resistant strains, suggesting a possible application in combinatorial antibiotic treatment against resistant pathogens.
Insights
Valproic acid (VPA) treatment induces fungi to produce novel antimicrobial compounds, including the rare diketopiperazine cyclo-(L-proline-L-methionine) (cPM). These compounds show potential in combating antibiotic-resistant bacteria, especially when used in combination therapies.
Area of Science:
- Microbiology
- Medicinal Chemistry
- Biotechnology
Background:
- Rising antibiotic resistance poses a global public health threat.
- Fungi are a promising source of novel antimicrobial compounds, including 'cryptic' metabolites.
- Inducing the production of these silent compounds is crucial for discovering new antibiotics.
Purpose of the Study:
- To investigate the effect of valproic acid (VPA) on inducing antimicrobial compound production in fungi.
- To identify novel antimicrobial compounds produced by Doratomyces (D.) microsporus treated with VPA.
- To evaluate the potential of induced compounds in combating antibiotic-resistant pathogens.
Main Methods:
- Treatment of Doratomyces (D.) microsporus with valproic acid (VPA).
- Analysis of fungal supernatant for antimicrobial activity against Staphylococcus (S.) aureus and MRSA.
- Identification and quantification of induced antimicrobial compounds using analytical techniques.
Main Results:
- VPA treatment enhanced the production of seven known antimicrobial compounds and exclusively induced phenyllactic acid.
- Three compounds (cyclo-(L-proline-L-methionine) [cPM], cyclo-(phenylalanine-proline) [cFP], and phenylacetic acid [PAA]) boosted antimicrobial activity.
- cPM, isolated from fungi for the first time, and PAA reduced the minimal inhibitory concentration of ampicillin in MRSA.
Conclusions:
- VPA is an effective tool for inducing 'cryptic' antimicrobial compound production in fungi.
- Induced compounds can enhance antibiotic activity against resistant strains, suggesting combinatorial therapy applications.
- Discovery of cPM in fungi opens new avenues for antimicrobial drug development.
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