Both the cis-trans equilibrium and isomerization dynamics of a single proline amide modulate β2-microglobulin amyloid

Vladimir Yu Torbeev1, Donald Hilvert

  • 1Laboratory of Organic Chemistry, ETH Zurich, CH-8093 Zurich, Switzerland.

Insights

Proline isomerization in beta2-microglobulin (β2m) drives amyloid fibril formation in hemodialysis patients. Modifying proline with fluorine subtly alters protein dynamics, influencing β2m stability and aggregation into distinct amyloid structures.

Area of Science:

  • Biochemistry
  • Protein Misfolding Diseases
  • Chemical Synthesis

Background:

  • Human beta2-microglobulin (β2m) forms amyloid fibrils in patients on long-term hemodialysis.
  • Proline 32 (Pro32) cis-trans isomerization is hypothesized to initiate β2m misfolding and amyloid assembly.

Purpose of the Study:

  • To investigate the role of Pro32 cis-trans isomerization in β2m stability, folding, and aggregation.
  • To examine how altering the free-energy profile of proline isomerization affects β2m amyloid formation.

Main Methods:

  • Total chemical synthesis of β2m variants with modified Pro32 residues (4-fluoroprolines).
  • Systematic variation of the free-energy profile of proline cis-trans isomerization.
  • Analysis of protein stability, folding, and aggregation properties.

Main Results:

  • Fluoroproline substitutions modulated β2m stability and folding based on cis-trans isomerization preference.
  • 4,4-difluoroproline substitution destabilized β2m and increased oligomerization.
  • Subtle chemical modifications induced the formation of polymorphically distinct β2m amyloid fibrils.

Conclusions:

  • Proline cis-trans isomerization dynamics are critical for β2m amyloid cross-β structure assembly.
  • Conformational dynamics play a key role in the molecular assembly of amyloid structures.
  • Insights into the mechanistic role of Pro32 cis-trans isomerism in β2m aggregation were provided.

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