Kinetic coupling of folding and prolyl isomerization of beta2-microglobulin studied by mutational analysis

Michiko Sakata1, Eri Chatani, Atsushi Kameda

  • 1Institute for Protein Research, Osaka University and CREST, Japan Science and Technology Agency, Yamadaoka 3-2, Suita, Osaka 565-0871, Japan.

Insights

The slow isomerization of Pro32 limits beta(2)-microglobulin refolding and amyloid formation. Studying mutants revealed prolyl isomerization is coupled with protein folding kinetics, crucial for understanding protein mechanisms.

Area of Science:

  • Protein Folding and Dynamics
  • Biochemistry
  • Molecular Biology

Background:

  • Beta(2)-microglobulin (beta2-m) is implicated in dialysis-related amyloidosis.
  • Its refolding is hindered by the slow cis-trans isomerization of Proline 32 (Pro32).
  • Non-native trans-Pro32 isomers are precursors to amyloid fibril formation.

Purpose of the Study:

  • To investigate the Pro-limited folding kinetics of beta(2)-microglobulin.
  • To elucidate the role of Pro32 isomerization in beta(2)-m unfolding and refolding.
  • To understand the coupling between prolyl isomerization and conformational transitions.

Main Methods:

  • Guanidine hydrochloride (Gdn-HCl)-dependent unfolding/refolding kinetics.
  • Study of wild-type beta(2)-m, W39 beta(2)-m (fluorescence quenching mutant), and P32V beta(2)-m (Pro32 to Val mutant).
  • Utilized double-jump experiments to analyze kinetic coupling.

Main Results:

  • Prolyl isomerization is kinetically coupled with conformational transitions during unfolding/refolding.
  • This coupling leads to unusual kinetics, especially during unfolding.
  • W39 mutant enabled detailed analysis of Pro-limited folding via fluorescence quenching.
  • P32V mutant provided insights into the kinetic role of Pro32 isomerization.

Conclusions:

  • The kinetic coupling of unfolding/refolding and prolyl isomerization is essential for understanding protein folding mechanisms.
  • This coupling is critical for the biological significance of protein folding pathways.
  • Future studies should carefully consider this coupled process, often overlooked.

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