Accelerated Engineering of ELP‐Based Materials through Hybrid Biomimetic‐De Novo Predictive Molecular Design

Author:

Laakko Timo1,Korkealaakso Antti1,Yildirir Burcu Firatligil2,Batys Piotr3,Liljeström Ville4,Hokkanen Ari1,Nonappa 2,Penttilä Merja1,Laukkanen Anssi1,Miserez Ali56,Södergård Caj1,Mohammadi Pezhman1ORCID

Affiliation:

1. VTT Technical Research Centre of Finland Ltd. VTT FI‐02044 Finland

2. Faculty of Engineering and Natural Sciences Tampere University Korkeakoulunkatu 6 Tampere FI‐33720 Finland

3. Jerzy Haber Institute of Catalysis and Surface Chemistry Polish Academy of Sciences Niezapominajek 8 Krakow PL‐30239 Poland

4. Department of Applied Physics School of Science Aalto University Aalto FI‐00076 Finland

5. Center for Sustainable Materials (SusMat) School of Materials Science and Engineering Nanyang Technological University (NTU) Singapore 637553 Singapore

6. School of Biological Sciences NTU Singapore 637551 Singapore

Abstract

AbstractEfforts to engineer high‐performance protein‐based materials inspired by nature have mostly focused on altering naturally occurring sequences to confer the desired functionalities, whereas de novo design lags significantly behind and calls for unconventional innovative approaches. Here, using partially disordered elastin‐like polypeptides (ELPs) as initial building blocks this work shows that de novo engineering of protein materials can be accelerated through hybrid biomimetic design, which this work achieves by integrating computational modeling, deep neural network, and recombinant DNA technology. This generalizable approach involves incorporating a series of de novo‐designed sequences with α‐helical conformation and genetically encoding them into biologically inspired intrinsically disordered repeating motifs. The new ELP variants maintain structural conformation and showed tunable supramolecular self‐assembly out of thermal equilibrium with phase behavior in vitro. This work illustrates the effective translation of the predicted molecular designs in structural and functional materials. The proposed methodology can be applied to a broad range of partially disordered biomacromolecules and potentially pave the way toward the discovery of novel structural proteins.

Funder

Narodowym Centrum Nauki

Jenny ja Antti Wihurin Rahasto

Nanyang Technological University

CSC – IT Center for Science

Publisher

Wiley

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