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Updated: Jul 10, 2026

Myosin-Specific Adaptations of In vitro Fluorescence Microscopy-Based Motility Assays
Published on: February 4, 2021
Ultra short yeast tropomyosins show novel myosin regulation
Robin Maytum1, Victoria Hatch, Manfred Konrad
1School of Biological and Chemical Sciences, Queen Mary, University of London, E1 4NS, United Kingdom. r.maytum@qmul.ac.uk
Abstract:
Tropomyosin (Tm) is an alpha-helical coiled-coil actin-binding protein present in all eukaryotes from yeast to man. Its functional role has been best described in muscle regulation; however its much wider role in cytoskeletal actin regulation is still to be clarified. Isoforms vary in size from 284 or 248 amino acids in vertebrates, to 199 and 161 amino acids in yeast, spanning from 7 to 4 actin binding sites respectively. In Saccharomyces cerevisiae, the larger yTm1 protein is produced by an internal 38-amino acid duplication, corresponding to a single actin-binding site. We have produced an ultra-short Tm with only 125 amino acids by removing both of the 38 amino acid repeats from yTm1, with the addition of an Ala-Ser extension used to mimic the essential N-terminal acetylation. This short Tm, and an M1T mutant of it, bind to actin with a similar affinity to most Tms previously studied (K(50%) approximately 0.5 microm). However, an equilibrium fluorescence binding assay shows a much greater inhibition of myosin binding to actin than any previously studied Tm. Actin cosedimentation assays show this is caused by direct competition for binding to actin. The M1T mutant shows a reduced inhibition, probably due to weaker end-to-end interactions making it easier for myosin to displace Tm. All previously characterized Tms, although able to sterically block the myosin-binding site, are able to bind to actin along with myosin. By showing that Tm can compete directly with myosin for the same binding site these new Tms provide direct evidence for the steric blocking model.
Insights
Short tropomyosin proteins directly compete with myosin for actin binding sites, providing new evidence for the steric blocking model in cytoskeletal regulation.
Area of Science:
- Biochemistry
- Cell Biology
- Structural Biology
Background:
- Tropomyosin (Tm) is a crucial actin-binding protein involved in muscle and cytoskeletal regulation.
- Its precise role in non-muscle cells and the mechanism of actin binding require further clarification.
- Tm isoforms exhibit significant size and actin-binding site variations across eukaryotes.
Purpose of the Study:
- To investigate the function of ultra-short tropomyosin variants in actin-myosin interactions.
- To determine if modified tropomyosin can directly compete with myosin for actin binding.
- To provide evidence supporting the steric blocking model of muscle and cytoskeletal regulation.
Main Methods:
- Production of ultra-short tropomyosin variants from Saccharomyces cerevisiae Tm1.
- Equilibrium fluorescence binding assays to measure binding affinities and inhibition.
- Actin cosedimentation assays to assess competition for actin binding sites.
Main Results:
- Ultra-short tropomyosin variants bind actin with affinities comparable to previously studied Tms.
- These variants exhibit significantly greater inhibition of myosin binding to actin than other Tms.
- Actin cosedimentation assays confirm direct competition between tropomyosin and myosin for actin binding.
Conclusions:
- Tropomyosin can directly compete with myosin for the same binding site on actin.
- This competition provides direct evidence for the steric blocking model.
- Ultra-short tropomyosin variants offer a powerful tool for studying actin-myosin dynamics and regulation.
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