Functional in vitro diversity of an intrinsically disordered plant protein during freeze–thawing is encoded by its structural plasticity

Author:

Hernández‐Sánchez Itzell1ORCID,Rindfleisch Tobias1234ORCID,Alpers Jessica1,Dulle Martin5ORCID,Garvey Christopher J.6ORCID,Knox‐Brown Patrick2ORCID,Miettinen Markus S.347ORCID,Nagy Gergely8ORCID,Pusterla Julio M.5ORCID,Rekas Agata9,Shou Keyun5910,Stadler Andreas M.510ORCID,Walther Dirk1ORCID,Wolff Martin2,Zuther Ellen1ORCID,Thalhammer Anja2ORCID

Affiliation:

1. Max‐Planck Institute of Molecular Plant Physiology Potsdam Germany

2. Physical Biochemistry University of Potsdam Potsdam Germany

3. Department of Chemistry University of Bergen Bergen Norway

4. Computational Biology Unit, Department of Informatics University of Bergen Bergen Norway

5. Jülich Centre for Neutron Science (JCNS‐1) and Institute of Biological Information Processing (IBI‐8: Neutron Scattering and Biological Matter) Forschungszentrum Jülich GmbH Jülich Germany

6. Heinz Maier‐Leibnitz Zentrum (MLZ) Technische Universität München Garching Germany

7. Department of Theory and Bio‐Systems Max Planck Institute of Colloids and Interfaces Potsdam Germany

8. Neutron Scattering Division Oak Ridge National Laboratory Oak Ridge Tennessee USA

9. Australian Nuclear Science and Technology Organization (ANSTO) Kirrawee New South Wales Australia

10. Institute of Physical Chemistry, RWTH Aachen University Aachen Germany

Abstract

AbstractIntrinsically disordered late embryogenesis abundant (LEA) proteins play a central role in the tolerance of plants and other organisms to dehydration brought upon, for example, by freezing temperatures, high salt concentration, drought or desiccation, and many LEA proteins have been found to stabilize dehydration‐sensitive cellular structures. Their conformational ensembles are highly sensitive to the environment, allowing them to undergo conformational changes and adopt ordered secondary and quaternary structures and to participate in formation of membraneless organelles. In an interdisciplinary approach, we discovered how the functional diversity of the Arabidopsis thaliana LEA protein COR15A found in vitro is encoded in its structural repertoire, with the stabilization of membranes being achieved at the level of secondary structure and the stabilization of enzymes accomplished by the formation of oligomeric complexes. We provide molecular details on intra‐ and inter‐monomeric helix–helix interactions, demonstrate how oligomerization is driven by an α‐helical molecular recognition feature (α‐MoRF) and provide a rationale that the formation of noncanonical, loosely packed, right‐handed coiled‐coils might be a recurring theme for homo‐ and hetero‐oligomerization of LEA proteins.

Funder

Trond Mohn stiftelse

Publisher

Wiley

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