Tropomyosin - master regulator of actin filament function in the cytoskeleton
Peter W Gunning1, Edna C Hardeman2, Pekka Lappalainen3
1School of Medical Sciences, UNSW Australia, Sydney 2052, Australia.
Abstract:
Tropomyosin (Tpm) isoforms are the master regulators of the functions of individual actin filaments in fungi and metazoans. Tpms are coiled-coil parallel dimers that form a head-to-tail polymer along the length of actin filaments. Yeast only has two Tpm isoforms, whereas mammals have over 40. Each cytoskeletal actin filament contains a homopolymer of Tpm homodimers, resulting in a filament of uniform Tpm composition along its length. Evidence for this 'master regulator' role is based on four core sets of observation. First, spatially and functionally distinct actin filaments contain different Tpm isoforms, and recent data suggest that members of the formin family of actin filament nucleators can specify which Tpm isoform is added to the growing actin filament. Second, Tpms regulate whole-organism physiology in terms of morphogenesis, cell proliferation, vesicle trafficking, biomechanics, glucose metabolism and organ size in an isoform-specific manner. Third, Tpms achieve these functional outputs by regulating the interaction of actin filaments with myosin motors and actin-binding proteins in an isoform-specific manner. Last, the assembly of complex structures, such as stress fibers and podosomes involves the collaboration of multiple types of actin filament specified by their Tpm composition. This allows the cell to specify actin filament function in time and space by simply specifying their Tpm isoform composition.
Insights
Tropomyosin (Tpm) isoforms regulate actin filament function by binding along actin. Different Tpm isoforms control distinct cellular processes, impacting organism physiology and complex structure assembly.
Area of Science:
- Cell Biology
- Biochemistry
Background:
- Tropomyosin (Tpm) isoforms are crucial regulators of actin filament function in eukaryotes.
- Actin filaments are polymers of actin monomers, and Tpms form homodimers that polymerize along these filaments.
Purpose of the Study:
- To elucidate the role of tropomyosin isoforms as master regulators of actin filament diversity and function.
- To understand how Tpm isoform composition specifies actin filament behavior and cellular processes.
Main Methods:
- The study reviews existing evidence and data on Tpm isoform function.
- Analysis of Tpm's interaction with actin, formins, myosin motors, and other actin-binding proteins.
Main Results:
- Distinct actin filaments utilize specific Tpm isoforms, with formins potentially dictating Tpm incorporation.
- Tpms modulate organismal physiology (morphogenesis, proliferation, metabolism) and biomechanics in an isoform-specific manner.
- Tpm composition dictates interactions with myosin motors and actin-binding proteins, influencing the assembly of structures like stress fibers and podosomes.
Conclusions:
- Tropomyosin isoforms act as master regulators, specifying actin filament function in space and time.
- The diversity of Tpm isoforms allows for precise control over cellular architecture and physiological processes.
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