Precise binding of Tropomyosin on actin involves sequence-dependent variance in coiled-coil twisting

Often considered an archetypal dimeric coiled coil, tropomyosin nonetheless exhibits distinctive “noncanonical” core residues located at the hydrophobic interface between its component α-helices. Notably, a charged aspartate, D137, takes the place of nonpolar residues otherwise present. Much specula...

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Hauptverfasser: Lehman, William (VerfasserIn) , Fischer, Stefan (VerfasserIn)
Dokumenttyp: Article (Journal)
Sprache:Englisch
Veröffentlicht: 18 August 2018
In: Biophysical journal
Year: 2018, Jahrgang: 115, Heft: 6, Pages: 1082-1092
ISSN:1542-0086
DOI:10.1016/j.bpj.2018.08.017
Online-Zugang:Verlag, Volltext: https://doi.org/10.1016/j.bpj.2018.08.017
Verlag: http://www.sciencedirect.com/science/article/pii/S000634951830969X
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Verfasserangaben:William Lehman, Xiaochuan Li, Farooq A. Kiani, Jeffrey R. Moore, Stuart G. Campbell, Stefan Fischer, and Michael J. Rynkiewicz

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520 |a Often considered an archetypal dimeric coiled coil, tropomyosin nonetheless exhibits distinctive “noncanonical” core residues located at the hydrophobic interface between its component α-helices. Notably, a charged aspartate, D137, takes the place of nonpolar residues otherwise present. Much speculation has been offered to rationalize potential local coiled-coil instability stemming from D137 and its effect on regulatory transitions of tropomyosin over actin filaments. Although experimental approaches such as electron cryomicroscopy reconstruction are optimal for defining average tropomyosin positions on actin filaments, to date, these methods have not captured the dynamics of tropomyosin residues clustered around position 137 or elsewhere. In contrast, computational biochemistry, involving molecular dynamics simulation, is a compelling choice to extend the understanding of local and global tropomyosin behavior on actin filaments at high resolution. Here, we report on molecular dynamics simulation of actin-free and actin-associated tropomyosin, showing noncanonical residue D137 as a locus for tropomyosin twist variation, with marked effects on actin-tropomyosin interactions. We conclude that D137-sponsored coiled-coil twisting is likely to optimize electrostatic side-chain contacts between tropomyosin and actin on the assembled thin filament, while offsetting disparities between tropomyosin pseudorepeat and actin subunit periodicities. We find that D137 has only minor local effects on tropomyosin coiled-coil flexibility, (i.e., on its flexural mobility). Indeed, D137-associated overtwisting may actually augment tropomyosin stiffness on actin filaments. Accordingly, such twisting-induced stiffness of tropomyosin is expected to enhance cooperative regulatory translocation of the tropomyosin cable over actin. 
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