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.

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.