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Published on: July 30, 2014
Tropomyosin and actin isoforms modulate the localization of tropomyosin strands on actin filaments
1Department of Physiology and Structural Biology, Boston University School of Medicine, 80 East Concord Street, Boston, MA 02118, USA. Lehman@med-rana.bu.edu
Abstract:
Tropomyosin is present in virtually all eucaryotic cells, where it functions to modulate actin-myosin interaction and to stabilize actin filament structure. In striated muscle, tropomyosin regulates contractility by sterically blocking myosin-binding sites on actin in the relaxed state. On activation, tropomyosin moves away from these sites in two steps, one induced by Ca(2+) binding to troponin and a second by the binding of myosin to actin. In smooth muscle and non-muscle cells, where troponin is absent, the precise role and structural dynamics of tropomyosin on actin are poorly understood. Here, the location of tropomyosin on F-actin filaments free of troponin and other actin-binding proteins was determined to better understand the structural basis of its functioning in muscle and non-muscle cells. Using electron microscopy and three-dimensional image reconstruction, the association of a diverse set of wild-type and mutant actin and tropomyosin isoforms, from both muscle and non-muscle sources, was investigated. Tropomyosin position on actin appeared to be defined by two sets of binding interactions and tropomyosin localized on either the inner or the outer domain of actin, depending on the specific actin or tropomyosin isoform examined. Since these equilibrium positions depended on minor amino acid sequence differences among isoforms, we conclude that the energy barrier between thin filament states is small. Our results imply that, in striated muscles, troponin and myosin serve to stabilize tropomyosin in inhibitory and activating states, respectively. In addition, they are consistent with tropomyosin-dependent cooperative switching on and off of actomyosin-based motility. Finally, the locations of tropomyosin that we have determined suggest the possibility of significant competition between tropomyosin and other cellular actin-binding proteins. Based on these results, we present a general framework for tropomyosin modulation of motility and cytoskeletal modelling.
Insights
Tropomyosin
Area of Science:
- Biochemistry
- Cell Biology
- Structural Biology
Background:
- Tropomyosin modulates actin-myosin interactions and stabilizes actin filaments in eukaryotic cells.
- Its precise role and dynamics on actin are less understood in smooth muscle and non-muscle cells due to the absence of troponin.
- Understanding tropomyosin's structural dynamics is crucial for both muscle contractility and cytoskeletal functions.
Purpose of the Study:
- To determine the location of tropomyosin on F-actin filaments without troponin or other actin-binding proteins.
- To elucidate the structural basis of tropomyosin's function in muscle and non-muscle cells.
- To investigate the influence of different actin and tropomyosin isoforms on tropomyosin's position.
Main Methods:
- Utilized electron microscopy and three-dimensional image reconstruction.
- Examined the association of various wild-type and mutant actin and tropomyosin isoforms from muscle and non-muscle sources.
- Analyzed tropomyosin localization on F-actin filaments.
Main Results:
- Tropomyosin's position on actin is determined by specific binding interactions, localizing to either the inner or outer actin domain.
- Isoform-specific differences in actin and tropomyosin sequences dictate tropomyosin's equilibrium positions.
- The energy barrier between different thin filament states is minimal.
Conclusions:
- Troponin and myosin stabilize tropomyosin in specific functional states (inhibitory or activating) in striated muscle.
- Results support a model of tropomyosin-dependent cooperative switching in actomyosin-based motility.
- Tropomyosin's determined locations suggest potential competition with other cellular actin-binding proteins, impacting cytoskeletal dynamics.
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