Literature DB >> 22953986

Mechanical transition from α-helical coiled coils to β-sheets in fibrin(ogen).

Artem Zhmurov1, Olga Kononova, Rustem I Litvinov, Ruxandra I Dima, Valeri Barsegov, John W Weisel.   

Abstract

We characterized the α-to-β transition in α-helical coiled-coil connectors of the human fibrin(ogen) molecule using biomolecular simulations of their forced elongation and theoretical modeling. The force (F)-extension (X) profiles show three distinct regimes: (1) the elastic regime, in which the coiled coils act as entropic springs (F < 100-125 pN; X < 7-8 nm); (2) the constant-force plastic regime, characterized by a force-plateau (F ≈ 150 pN; X ≈ 10-35 nm); and (3) the nonlinear regime (F > 175-200 pN; X > 40-50 nm). In the plastic regime, the three-stranded α-helices undergo a noncooperative phase transition to form parallel three-stranded β-sheets. The critical extension of the α-helices is 0.25 nm, and the energy difference between the α-helices and β-sheets is 4.9 kcal/mol per helical pitch. The soft α-to-β phase transition in coiled coils might be a universal mechanism underlying mechanical properties of filamentous α-helical proteins.

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Year:  2012        PMID: 22953986      PMCID: PMC3526676          DOI: 10.1021/ja3076428

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  35 in total

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  30 in total

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7.  Contribution of nascent cohesive fiber-fiber interactions to the non-linear elasticity of fibrin networks under tensile load.

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Authors:  Olga Kononova; Rustem I Litvinov; Dmitry S Blokhin; Vladimir V Klochkov; John W Weisel; Joel S Bennett; Valeri Barsegov
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9.  Energy landscapes of a mechanical prion and their implications for the molecular mechanism of long-term memory.

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10.  Structural Basis of Interfacial Flexibility in Fibrin Oligomers.

Authors:  Artem Zhmurov; Anna D Protopopova; Rustem I Litvinov; Pavel Zhukov; Alexander R Mukhitov; John W Weisel; Valeri Barsegov
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