Organic solvent mediated self-association of an amyloid forming peptide from beta2-microglobulin: an atomic force

Nitin Chaudhary1, Shashi Singh, Ramakrishnan Nagaraj

  • 1Centre for Cellular and Molecular Biology, Council of Scientific and Industrial Research, Uppal Road, Hyderabad 500 007, India.

Biopolymers
|September 19, 2008
PubMed

Insights

Human beta(2)-microglobulin peptide self-assembly into amyloid fibrils depends on organic solvents. The peptide forms amyloid fibrils in aqueous buffer, with structure influenced by solvent choice for stock solutions.

Area of Science:

  • Biochemistry
  • Biophysics
  • Materials Science

Background:

  • Human beta(2)-microglobulin (beta(2)m) is implicated in hemodialysis-related amyloidosis.
  • Peptides derived from beta(2)m beta-strands can form amyloid fibrils independently.

Purpose of the Study:

  • To investigate the self-association of a beta(2)m-derived peptide (Pbeta(2)m) in various organic solvents.
  • To determine the influence of solvent choice on Pbeta(2)m amyloid fibril formation and structure.

Main Methods:

  • Studied a 13-residue peptide (Pbeta(2)m) spanning a beta-strand of beta(2)m.
  • Dissolved peptide in methanol, TFE, HFIP, and DMSO, then diluted into aqueous buffer (pH 7.0).
  • Assessed fibril formation using Thioflavin T fluorescence, circular dichroism, and atomic force microscopy.

Main Results:

  • Pbeta(2)m formed amyloid fibrils upon dilution into aqueous buffer, confirmed by Thioflavin T fluorescence.
  • Amyloid formation was solvent-dependent; helical conformations were observed in MeOH, TFE, and HFIP.
  • Atomic force microscopy revealed solvent-dependent nonfibrillar structures, indicating self-assembly capabilities.

Conclusions:

  • Solvent selection critically influences the self-assembly pathway and resulting morphology of beta(2)m-derived peptides.
  • Amyloid-forming peptides offer potential for generating diverse self-assembled nanostructures through controlled dissolution and surface interactions.