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July 3, 2001Proceedings of the National Academy of Sciences247 citationsOpen Access

Deciphering the design of the tropomyosin molecule

JBJerry H. BrownKKKyoung Hee KimGJGyo Jun

Key Result

Crystal structure analysis of an 81-residue N-terminal fragment of muscle alpha-tropomyosin revealed a parallel two-stranded alpha-helical coiled-coil structure with specific bends.

Structured PICO

P
Population
81-residue N-terminal fragment of muscle alpha-tropomyosin
E
Exposure
Crystal structure analysis at 2.0-A resolution
O
Outcome
Molecular structure and conformation of the tropomyosin fragment

The asymmetric design of the tropomyosin molecule, characterized by alanine clusters, allows it to adopt multiple bent conformations necessary for its regulatory role in muscle contraction.

Abstract

The crystal structure at 2.0-A resolution of an 81-residue N-terminal fragment of muscle alpha-tropomyosin reveals a parallel two-stranded alpha-helical coiled-coil structure with a remarkable core. The high alanine content of the molecule is clustered into short regions where the local 2-fold symmetry is broken by a small (approximately 1.2-A) axial staggering of the helices. The joining of these regions with neighboring segments, where the helices are in axial register, gives rise to specific bends in the molecular axis. We observe such bends to be widely distributed in two-stranded alpha-helical coiled-coil proteins. This asymmetric design in a dimer of identical (or highly similar) sequences allows the tropomyosin molecule to adopt multiple bent conformations. The seven alanine clusters in the core of the complete molecule (which spans seven monomers of the actin helix) promote the semiflexible winding of the tropomyosin filament necessary for its regulatory role in muscle contraction.

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Cite This Study

Brown et al. (2001) studied this question. Crystal structure analysis of an 81-residue N-terminal fragment of muscle alpha-tropomyosin revealed a parallel two-stranded alpha-helical coiled-coil structure with specific bends.

synapsesocial.com/papers/6a22533121b01fc9abab5551https://doi.org/10.1073/pnas.131219198
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