Key result
Tropomyosin acetylation is required to regulate the in vivo motility of class II myosins in fission yeast, but has no effect on the motility of class I and V myosins.
Tropomyosin acetylation state provides a mechanism for regulating specific actomyosin cytoskeletal interactions in fission yeast.
Tropomyosin acetylation selectively tunes class II myosin motility in yeast; leaves open relevance to cardiac sarcomere function in humans.
Tropomyosin (Tm) is a conserved dimeric coiled-coil protein, which forms polymers that curl around actin filaments in order to regulate actomyosin function. Acetylation of the Tm N-terminal methionine strengthens end-to-end bonds, which enhances actin binding as well as the ability of Tm to regulate myosin motor activity in both muscle and non-muscle cells. In this study we explore the function of each Tm form within fission yeast cells. Electron microscopy and live cell imaging revealed that acetylated and unacetylated Tm associate with distinct actin structures within the cell, and that each form has a profound effect upon the shape and integrity of the polymeric actin filament. We show that, whereas Tm acetylation is required to regulate the in vivo motility of class II myosins, acetylated Tm had no effect on the motility of class I and V myosins. These findings illustrate a novel Tm-acetylation-state-dependent mechanism for regulating specific actomyosin cytoskeletal interactions.
No takes yet. Share an insight, caveat, or question.
Coulton et al. (2010) studied this question. Acetylated and unacetylated tropomyosin was evaluated on Motility of class I, II, and V myosins and actin filament shape/integrity. Tropomyosin acetylation is required to regulate the in vivo motility of class II myosins in fission yeast, but has no effect on the motility of class I and V myosins.
Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context: