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Updated: Aug 22, 2025

Purification and Aggregation of the Amyloid Precursor Protein Intracellular Domain
Published on: August 28, 2012
FapA is an Intrinsically Disordered Chaperone for Pseudomonas Functional Amyloid FapC
Helena Ø Rasmussen1, Amit Kumar2, Ben Shin2
1Interdisciplinary Nanoscience Center (iNANO) and Department of Chemistry, Aarhus University, Gustav Wieds Vej 14, 8000 Aarhus C, Denmark.
Abstract:
Bacterial functional amyloids contribute to biofilm development by bacteria and provide protection from the immune system and prevent antibiotic treatment. Strategies to target amyloid formation and interrupt biofilm formation have attracted recent interest due to their antimicrobial potential. Functional amyloid in Pseudomonas (Fap) includes FapC as the major component of the fibril while FapB is a minor component suggested to function as a nucleator of FapC. The system also includes the small periplasmic protein FapA, which has been shown to regulate fibril composition and morphology. The interplay between these three components is central in Fap fibril biogenesis. Here we present a comprehensive biophysical and spectroscopy analysis of FapA, FapB and FapC and provide insight into their molecular interactions. We show that all three proteins are primarily disordered with some regions with structural propensities for α-helix and β-sheet. FapA inhibits FapC fibrillation by targeting the nucleation step, whereas for FapB the elongation step is modulated. Furthermore, FapA alters the morphology of FapC (more than FapB) fibrils. Complex formation is observed between FapA and FapC, but not between FapA and FapB, and likely involves the N-terminus of FapA. We conclude that FapA is an intrinsically disordered chaperone for FapC that guards against fibrillation within the periplasm. This new understanding of a natural protective mechanism of Pseudomonas against amyloid formations can serve as inspiration for strategies blocking biofilm formation in infections.
Insights
Bacterial functional amyloids (Fap) aid biofilm formation and antibiotic resistance. This study reveals FapA acts as a chaperone, inhibiting FapC fibrillation and offering new antimicrobial strategies.
Area of Science:
- Microbiology
- Biochemistry
- Structural Biology
Background:
- Bacterial functional amyloids (Fap) are crucial for biofilm development, offering protection against host defenses and antibiotics.
- Targeting amyloid and biofilm formation presents a promising antimicrobial strategy.
Purpose of the Study:
- To investigate the molecular interactions and biogenesis of the Pseudomonas Fap system, focusing on FapA, FapB, and FapC.
- To elucidate the role of FapA as a chaperone in regulating FapC fibrillation.
Main Methods:
- Comprehensive biophysical and spectroscopy analysis of FapA, FapB, and FapC.
- Assessment of protein structural propensities (α-helix, β-sheet).
- Investigation of FapA and FapB modulation of FapC fibrillation at different steps (nucleation, elongation).
Main Results:
- FapA, FapB, and FapC are intrinsically disordered proteins with some helical and sheet propensities.
- FapA inhibits FapC fibrillation by targeting nucleation, while FapB modulates elongation.
- FapA significantly alters FapC fibril morphology and forms complexes with FapC, likely via its N-terminus.
Conclusions:
- FapA functions as an intrinsically disordered chaperone for FapC, preventing periplasmic fibrillation.
- Understanding this natural Pseudomonas protective mechanism provides inspiration for novel anti-biofilm strategies.
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