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Microfluidic Mixers for Studying Protein Folding
Published on: April 10, 2012
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.
Abstract:
Beta(2)-microglobulin (beta2-m), a protein responsible for dialysis-related amyloidosis, adopts a typical immunoglobulin domain fold with the N-terminal peptide bond of Pro32 in a cis isomer. The refolding of beta2-m is limited by the slow trans-to-cis isomerization of Pro32, implying that intermediates with a non-native trans-Pro32 isomer are precursors for the formation of amyloid fibrils. To obtain further insight into the Pro-limited folding of beta2-m, we studied the Gdn-HCl-dependent unfolding/refolding kinetics using two mutants (W39 and P32V beta2-ms) as well as the wild-type beta2-m. W39 beta2-m is a triple mutant in which both of the authentic Trp residues (Trp60 and Trp95) are replaced by Phe and a buried Trp common to other immunoglobulin domains is introduced at the position of Leu39 (i.e., L39W/W60F/W95F). W39 beta2-m exhibits a dramatic quenching of fluorescence upon folding, enabling a detailed analysis of Pro-limited unfolding/refolding. On the other hand, P32V beta2-m is a mutant in which Pro32 is replaced by Val, useful for probing the kinetic role of the trans-to-cis isomerization of Pro32. A comparative analysis of the unfolding/refolding kinetics of these mutants including three types of double-jump experiments revealed the prolyl isomerization to be coupled with the conformational transitions, leading to apparently unusual kinetics, particularly for the unfolding. We suggest that careful consideration of the kinetic coupling of unfolding/refolding and prolyl isomerization, which has tended to be neglected in recent studies, is essential for clarifying the mechanism of protein folding and, moreover, its biological significance.
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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