Literature DB >> 12850153

Mechanical unfolding of a titin Ig domain: structure of transition state revealed by combining atomic force microscopy, protein engineering and molecular dynamics simulations.

Robert B Best1, Susan B Fowler, José L Toca Herrera, Annette Steward, Emanuele Paci, Jane Clarke.   

Abstract

Titin I27 shows a high resistance to unfolding when subject to external force. To investigate the molecular basis of this mechanical stability, protein engineering Phi-value analysis has been combined with atomic force microscopy to investigate the structure of the barrier to forced unfolding. The results indicate that the transition state for forced unfolding is significantly structured, since highly destabilising mutations in the core do not affect the force required to unfold the protein. As has been shown before, mechanical strength lies in the region of the A' and G-strands but, contrary to previous suggestions, the results indicate clearly that side-chain interactions play a significant role in maintaining mechanical stability. Since Phi-values calculated from molecular dynamics simulations are the same as those determined experimentally, we can, with confidence, use the molecular dynamics simulations to analyse the structure of the transition state in detail, and are able to show loss of interactions between the A' and G-strands with associated A-B and E-F loops in the transition state. The key event is not a simple case of loss of hydrogen bonding interactions between the A' and G-strands alone. Comparison with Phi-values from traditional folding studies shows differences between the force and "no-force" transition states but, nevertheless, the region important for kinetic stability is the same in both cases. This explains the correspondence between hierarchy of kinetic stability (measured in stopped-flow denaturant studies) and mechanical strength in these titin domains.

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Year:  2003        PMID: 12850153     DOI: 10.1016/s0022-2836(03)00618-1

Source DB:  PubMed          Journal:  J Mol Biol        ISSN: 0022-2836            Impact factor:   5.469


  61 in total

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4.  Engineering proteins with enhanced mechanical stability by force-specific sequence motifs.

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6.  Extending a spectrin repeat unit. II: rupture behavior.

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9.  Comparison of the protein-unfolding pathways between mitochondrial protein import and atomic-force microscopy measurements.

Authors:  Takehiro Sato; Masatoshi Esaki; Julio M Fernandez; Toshiya Endo
Journal:  Proc Natl Acad Sci U S A       Date:  2005-12-02       Impact factor: 11.205

10.  Altered mechanical properties of titin immunoglobulin domain 27 in the presence of calcium.

Authors:  Michael M DuVall; Jessica L Gifford; Matthias Amrein; Walter Herzog
Journal:  Eur Biophys J       Date:  2012-12-07       Impact factor: 1.733

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