Abstract
Muscle elasticity strongly relies on the mechanical anchoring of the giant protein titin to both the sarcomere M-band and the Z-disk. Such strong attachment ensures the reversible dynamics of the stretching-relaxing cycles determining the muscle passive elasticity. Similarly, the design of biomaterials with enhanced elastic function requires experimental strategies able to secure the constituent molecules to avoid mechanical failure. Here we show that an engineered titin-mimicking protein is able to spontaneously dimerize in solution. Our observations reveal that the titin Z1Z2 domains are key to induce dimerization over a longrange distance in proteins that would otherwise remain in their monomeric form. Using single molecule force spectroscopy, we measure the threshold force that triggers the noncovalent transition from protein dimer to monomer, occurring at ∼700 piconewtons. Such extremely high mechanical stability is likely to be a natural protective mechanism that guarantees muscle integrity. We propose a simple molecular model to understand the force-induced dimer-to-monomer transition based on the geometric distribution of forces occurring within a dimeric protein under mechanical tension. © 2012 by The American Society for Biochemistry and Molecular Biology, Inc.
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CITATION STYLE
Garcia-Manyes, S., Badilla, C. L., Alegre-Cebollada, J., Javadi, Y., & Fernández, J. M. (2012). Spontaneous dimerization of titin protein Z1Z2 domains induces strong nanomechanical anchoring. Journal of Biological Chemistry, 287(24), 20240–20247. https://doi.org/10.1074/jbc.M112.355883
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