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Hydration-induced structural transitions in biomimetic tandem repeat proteins

View ORCID ProfileRomeo C. A. Dubini, View ORCID ProfileHuihun Jung, View ORCID ProfileMelik C. Demirel, View ORCID ProfilePetra Rovó
doi: https://doi.org/10.1101/2021.01.12.426322
Romeo C. A. Dubini
†Department of Chemistry and Pharmacy, Ludwig-Maximilians-Universität München, 81377 Munich, Germany
‡Center for Nanoscience (CeNS), Faculty of Physics, Ludwig-Maximilians-Universität München, Schellingstraβe 4, 5th floor, 80799 Munich, Germany
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Huihun Jung
¶Center for Research on Advanced Fiber Technologies (CRAFT), Materials Research Institute, Department of Engineering Science and Mechanics, and Huck Institutes of Life Sciences, Pennsylvania State University, University Park, Pennsylvania 16802, United States of America
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Melik C. Demirel
¶Center for Research on Advanced Fiber Technologies (CRAFT), Materials Research Institute, Department of Engineering Science and Mechanics, and Huck Institutes of Life Sciences, Pennsylvania State University, University Park, Pennsylvania 16802, United States of America
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Petra Rovó
†Department of Chemistry and Pharmacy, Ludwig-Maximilians-Universität München, 81377 Munich, Germany
‡Center for Nanoscience (CeNS), Faculty of Physics, Ludwig-Maximilians-Universität München, Schellingstraβe 4, 5th floor, 80799 Munich, Germany
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  • For correspondence: petra.rovo@lmu.de
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Abstract

A major challenge in developing biomimetic, high-performance, and sustainable products is the accurate replication of the biological materials’ striking properties, such as high strength, self-repair, and stimuli-responsiveness. The rationalization of such features on the microscopic scale, together with the rational design of synthetic materials, is currently hindered by our limited understanding of the sequence-structure-property relationship. Here, employing state-of-the-art nuclear magnetic resonance (NMR) spectroscopy, we link the atomistic structural and dynamic properties of an artificial bioinspired tandem repeat protein TR(1,11) to its stunning macroscopic properties including high elasticity, self-healing capabilities, and recordholding proton conductivity amongst biological materials. We show that the hydration-induced structural rearrangement of the amorphous Gly-rich soft segment and the ordered Ala-rich hard segment is the key to the material’s outstanding physical properties. We found that in the hydrated state both the Ala-rich ordered and Gly-rich disordered parts contribute to the formation of the nanoconfined β-sheets, thereby enhancing the strength and toughness of the material. This restructuring is accompanied by fast proline ring puckering and backbone cis-trans isomerization at the water-protein interface, which in turn enhances the elasticity and the thermal conductivity of the hydrated films. Our in-depth characterization provides a solid ground for the development of next-generation materials with improved properties.

Competing Interest Statement

H.J. and M.C.D. have issued patents (US patent 9,765,121,US patent 10,047,127, and US patent 10,246,493) on utility of protein sequences described in this article. All other authors have no competing interests.

Footnotes

  • ↵* E-mail: melik{at}psu.edu; petra.rovo{at}lmu.de

Copyright 
The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY-NC 4.0 International license.
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Posted January 13, 2021.
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Hydration-induced structural transitions in biomimetic tandem repeat proteins
Romeo C. A. Dubini, Huihun Jung, Melik C. Demirel, Petra Rovó
bioRxiv 2021.01.12.426322; doi: https://doi.org/10.1101/2021.01.12.426322
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Hydration-induced structural transitions in biomimetic tandem repeat proteins
Romeo C. A. Dubini, Huihun Jung, Melik C. Demirel, Petra Rovó
bioRxiv 2021.01.12.426322; doi: https://doi.org/10.1101/2021.01.12.426322

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