Tropomyosin Must Interact Weakly with Actin to Effectively Regulate Thin Filament Function.
File(s)D292V_071817.docx (3.25 MB)
Accepted version
Author(s)
Type
Journal Article
Abstract
Elongated tropomyosin, associated with actin-subunits along the surface of thin filaments, makes electrostatic interactions with clusters of conserved residues, K326, K328, and R147, on actin. The association is weak, permitting low-energy cost regulatory movement of tropomyosin across the filament during muscle activation. Interestingly, acidic D292 on actin, also evolutionarily conserved, lies adjacent to the three-residue cluster of basic amino acids and thus may moderate the combined local positive charge, diminishing tropomyosin-actin interaction and facilitating regulatory-switching. Indeed, charge neutralization of D292 is connected to muscle hypotonia in individuals with D292V actin mutations and linked to congenital fiber-type disproportion. Here, the D292V mutation may predispose tropomyosin-actin positioning to a myosin-blocking state, aberrantly favoring muscle relaxation, thus mimicking the low-Ca2+ effect of troponin even in activated muscles. To test this hypothesis, interaction energetics and in vitro function of wild-type and D292V filaments were measured. Energy landscapes based on F-actin-tropomyosin models show the mutation localizes tropomyosin in a blocked-state position on actin defined by a deeper energy minimum, consistent with augmented steric-interference of actin-myosin binding. In addition, whereas myosin-dependent motility of troponin/tropomyosin-free D292V F-actin is normal, motility is dramatically inhibited after addition of tropomyosin to the mutant actin. Thus, D292V-induced blocked-state stabilization appears to disrupt the delicately poised energy balance governing thin filament regulation. Our results validate the premise that stereospecific but necessarily weak binding of tropomyosin to F-actin is required for effective thin filament function.
Date Issued
2017-12-05
Date Acceptance
2017-10-05
Citation
Biophysical Journal, 2017, 113 (11), pp.2444-2451
ISSN
0006-3495
Publisher
Biophysical Society
Start Page
2444
End Page
2451
Journal / Book Title
Biophysical Journal
Volume
113
Issue
11
Copyright Statement
© 2017, Elsevier. Licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International http://creativecommons.org/licenses/by-nc-nd/4.0/
Sponsor
British Heart Foundation
Identifier
PII: S0006-3495(17)31089-5
Grant Number
RG/11/20/29266
Subjects
02 Physical Sciences
03 Chemical Sciences
06 Biological Sciences
Biophysics
Publication Status
Published