Structural basis of EHEP-mediated offense against phlorotannin-induced defense from brown algae to protect akuBGL activity

Author:

Sun Xiaomei1ORCID,Ye Yuxin1,Sakurai Naofumi1,Wang Hang1ORCID,Kato Koji1,Yu Jian1,Yuasa Keizo2ORCID,Tsuji Akihiko2,Yao Min1ORCID

Affiliation:

1. Faculty of Advanced Life Science, Hokkaido University

2. Graduate School of Bioscience and Bioindustry, Tokushima University

Abstract

The defensive–offensive associations between algae and herbivores determine marine ecology. Brown algae utilize phlorotannin as their chemical defense against the predator Aplysia kurodai, which uses β-glucosidase (akuBGL) to digest the laminarin in algae into glucose. Moreover, A. kurodai employs Eisenia hydrolysis-enhancing protein (EHEP) as an offense to protect akuBGL activity from phlorotannin inhibition by precipitating phlorotannin. To underpin the molecular mechanism of this digestive–defensive–offensive system, we determined the structures of the apo and tannic acid (TNA, a phlorotannin analog) bound forms of EHEP, as well as the apo akuBGL. EHEP consisted of three peritrophin-A domains arranged in a triangular shape and bound TNA in the center without significant conformational changes. Structural comparison between EHEP and EHEP–TNA led us to find that EHEP can be resolubilized from phlorotannin precipitation at an alkaline pH, which reflects a requirement in the digestive tract. akuBGL contained two GH1 domains, only one of which conserved the active site. Combining docking analysis, we propose the mechanisms by which phlorotannin inhibits akuBGL by occupying the substrate-binding pocket, and EHEP protects akuBGL against this inhibition by binding with phlorotannin to free the akuBGL pocket.

Funder

Japan Society for the Promotion of Science

Japan Agency for Medical Research and Development

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

Reference68 articles.

1. PHENIX: a comprehensive Python-based system for macromolecular structure solution;Adams;Acta Crystallographica. Section D, Biological Crystallography,2010

2. Towards automated crystallographic structure refinement with phenix.refine;Afonine;Acta Crystallographica. Section D, Biological Crystallography,2012

3. Distinct roles of N- and O-glycans in cellulase activity and stability;Amore;PNAS,2017

4. Defensive and sensory chemical Ecology of Brown algae;Amsler;Advances in Botanical Research,2005

5. Tannins in plant-herbivore interactions;Barbehenn;Phytochemistry,2011

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