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Updated: Jul 18, 2026

Rapid Generation of Amyloid from Native Proteins In vitro
Published on: December 5, 2013
In vitro polymerization of a functional Escherichia coli amyloid protein
Xuan Wang1, Daniel R Smith, Jonathan W Jones
1Department of Molecular, Cellular and Developmental Biology, University of Michigan, Ann Arbor, Michigan 48109, USA.
Abstract:
Amyloid formation is characterized by the conversion of soluble proteins into biochemically and structurally distinct fibers. Although amyloid formation is traditionally associated with diseases such as Alzheimer disease, a number of biologically functional amyloids have recently been described. Curli are amyloid fibers produced by Escherichia coli that contribute to biofilm formation and other important physiological processes. We characterized the polymerization properties of the major curli subunit protein CsgA. CsgA polymerizes into an amyloid fiber in a sigmoidal kinetic fashion with a distinct lag, growth, and stationary phase. Adding sonicated preformed CsgA fibers to the polymerization reaction can significantly shorten the duration of the lag phase. We also demonstrate that the conversion of soluble CsgA into an insoluble fiber involves the transient formation of an intermediate similar to that characterized for several disease-associated amyloids. The CsgA core amyloid domain can be divided into five repeating units that share sequence and structural hallmarks. We show that peptides representing three of these repeating units are amyloidogenic in vitro. Although the defining characteristics of CsgA polymerization appear conserved with disease-associated amyloids, these proteins evolved in diverse systems and for different purposes. Therefore, amyloidogenesis appears to be an innate protein folding pathway that can be capitalized on to fulfill normal physiological tasks.
Insights
Bacterial amyloid curli fibers, like those in Alzheimer disease, form via a conserved protein folding pathway. This study characterizes CsgA polymerization, revealing insights into functional amyloidogenesis.
Area of Science:
- Microbiology
- Biochemistry
- Structural Biology
Background:
- Amyloid formation, traditionally linked to diseases like Alzheimer's, also serves biological functions.
- Curli are functional amyloid fibers produced by Escherichia coli, crucial for biofilm formation and other processes.
Purpose of the Study:
- To characterize the polymerization properties of CsgA, the major curli subunit protein.
- To investigate the mechanism of CsgA amyloid fiber formation and its relationship to disease-associated amyloids.
Main Methods:
- Kinetic analysis of CsgA polymerization.
- Investigating the effect of preformed fibers on polymerization.
- Characterizing intermediate structures during polymerization.
- Peptide analysis of the CsgA core amyloid domain.
Main Results:
- CsgA polymerizes into amyloid fibers with sigmoidal kinetics (lag, growth, stationary phases).
- Preformed CsgA fibers accelerate polymerization by shortening the lag phase.
- Soluble CsgA converts to insoluble fibers via a transient intermediate, similar to disease-associated amyloids.
- Repeating units within the CsgA core domain are amyloidogenic.
Conclusions:
- Amyloidogenesis is an innate protein folding pathway utilized for diverse biological purposes, including functional amyloids like curli.
- Despite shared polymerization characteristics with disease-associated amyloids, CsgA evolved for distinct physiological roles.
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