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A Platform of Anti-biofilm Assays Suited to the Exploration of Natural Compound Libraries
Published on: December 27, 2016
Antibiofilm activity of flavonoids on staphylococcal biofilms through targeting BAP amyloids
Leticia Matilla-Cuenca1, Carmen Gil2, Sergio Cuesta1
1Instituto de Agrobiotecnología (IDAB), CSIC-UPNA-Gobierno de Navarra, Avenida Pamplona 123, 31192, Mutilva, Spain.
Abstract:
The opportunistic pathogen Staphylococcus aureus is responsible for causing infections related to indwelling medical devices, where this pathogen is able to attach and form biofilms. The intrinsic properties given by the self-produced extracellular biofilm matrix confer high resistance to antibiotics, triggering infections difficult to treat. Therefore, novel antibiofilm strategies targeting matrix components are urgently needed. The Biofilm Associated Protein, Bap, expressed by staphylococcal species adopts functional amyloid-like structures as scaffolds of the biofilm matrix. In this work we have focused on identifying agents targeting Bap-related amyloid-like aggregates as a strategy to combat S. aureus biofilm-related infections. We identified that the flavonoids, quercetin, myricetin and scutellarein specifically inhibited Bap-mediated biofilm formation of S. aureus and other staphylococcal species. By using in vitro aggregation assays and the cell-based methodology for generation of amyloid aggregates based on the Curli-Dependent Amyloid Generator system (C-DAG), we demonstrated that these polyphenols prevented the assembly of Bap-related amyloid-like structures. Finally, using an in vivo catheter infection model, we showed that quercetin and myricetin significantly reduced catheter colonization by S. aureus. These results support the use of polyphenols as anti-amyloids molecules that can be used to treat biofilm-related infections.
Insights
Flavonoids like quercetin inhibit Staphylococcus aureus biofilm formation by targeting the amyloid-like structures of the Biofilm Associated Protein (Bap). These compounds offer a novel strategy against difficult-to-treat medical device infections.
Area of Science:
- Microbiology
- Biochemistry
- Infectious Diseases
Background:
- Staphylococcus aureus forms antibiotic-resistant biofilms on medical devices.
- The Biofilm Associated Protein (Bap) forms amyloid-like structures essential for biofilm matrix.
- Novel antibiofilm strategies targeting matrix components are crucial.
Purpose of the Study:
- To identify agents targeting Bap-related amyloid-like aggregates.
- To combat Staphylococcus aureus biofilm-related infections.
Main Methods:
- In vitro aggregation assays.
- Curli-Dependent Amyloid Generator (C-DAG) system for amyloid generation.
- In vivo catheter infection model.
Main Results:
- Flavonoids (quercetin, myricetin, scutellarein) inhibited Bap-mediated biofilm formation in staphylococci.
- Polyphenols prevented the assembly of Bap-related amyloid-like structures.
- Quercetin and myricetin reduced S. aureus catheter colonization in vivo.
Conclusions:
- Flavonoids act as anti-amyloid agents targeting Bap.
- Polyphenols represent a promising therapeutic strategy for biofilm-related infections.
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