Cargando…

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

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 E...

Descripción completa

Detalles Bibliográficos
Autores principales: Sun, Xiaomei, Ye, Yuxin, Sakurai, Naofumi, Wang, Hang, Kato, Koji, Yu, Jian, Yuasa, Keizo, Tsuji, Akihiko, Yao, Min
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10619976/
https://www.ncbi.nlm.nih.gov/pubmed/37910430
http://dx.doi.org/10.7554/eLife.88939
_version_ 1785130108251537408
author Sun, Xiaomei
Ye, Yuxin
Sakurai, Naofumi
Wang, Hang
Kato, Koji
Yu, Jian
Yuasa, Keizo
Tsuji, Akihiko
Yao, Min
author_facet Sun, Xiaomei
Ye, Yuxin
Sakurai, Naofumi
Wang, Hang
Kato, Koji
Yu, Jian
Yuasa, Keizo
Tsuji, Akihiko
Yao, Min
author_sort Sun, Xiaomei
collection PubMed
description 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.
format Online
Article
Text
id pubmed-10619976
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher eLife Sciences Publications, Ltd
record_format MEDLINE/PubMed
spelling pubmed-106199762023-11-02 Structural basis of EHEP-mediated offense against phlorotannin-induced defense from brown algae to protect akuBGL activity Sun, Xiaomei Ye, Yuxin Sakurai, Naofumi Wang, Hang Kato, Koji Yu, Jian Yuasa, Keizo Tsuji, Akihiko Yao, Min eLife Structural Biology and Molecular Biophysics 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. eLife Sciences Publications, Ltd 2023-11-01 /pmc/articles/PMC10619976/ /pubmed/37910430 http://dx.doi.org/10.7554/eLife.88939 Text en © 2023, Sun, Ye et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Structural Biology and Molecular Biophysics
Sun, Xiaomei
Ye, Yuxin
Sakurai, Naofumi
Wang, Hang
Kato, Koji
Yu, Jian
Yuasa, Keizo
Tsuji, Akihiko
Yao, Min
Structural basis of EHEP-mediated offense against phlorotannin-induced defense from brown algae to protect akuBGL activity
title Structural basis of EHEP-mediated offense against phlorotannin-induced defense from brown algae to protect akuBGL activity
title_full Structural basis of EHEP-mediated offense against phlorotannin-induced defense from brown algae to protect akuBGL activity
title_fullStr Structural basis of EHEP-mediated offense against phlorotannin-induced defense from brown algae to protect akuBGL activity
title_full_unstemmed Structural basis of EHEP-mediated offense against phlorotannin-induced defense from brown algae to protect akuBGL activity
title_short Structural basis of EHEP-mediated offense against phlorotannin-induced defense from brown algae to protect akuBGL activity
title_sort structural basis of ehep-mediated offense against phlorotannin-induced defense from brown algae to protect akubgl activity
topic Structural Biology and Molecular Biophysics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10619976/
https://www.ncbi.nlm.nih.gov/pubmed/37910430
http://dx.doi.org/10.7554/eLife.88939
work_keys_str_mv AT sunxiaomei structuralbasisofehepmediatedoffenseagainstphlorotannininduceddefensefrombrownalgaetoprotectakubglactivity
AT yeyuxin structuralbasisofehepmediatedoffenseagainstphlorotannininduceddefensefrombrownalgaetoprotectakubglactivity
AT sakurainaofumi structuralbasisofehepmediatedoffenseagainstphlorotannininduceddefensefrombrownalgaetoprotectakubglactivity
AT wanghang structuralbasisofehepmediatedoffenseagainstphlorotannininduceddefensefrombrownalgaetoprotectakubglactivity
AT katokoji structuralbasisofehepmediatedoffenseagainstphlorotannininduceddefensefrombrownalgaetoprotectakubglactivity
AT yujian structuralbasisofehepmediatedoffenseagainstphlorotannininduceddefensefrombrownalgaetoprotectakubglactivity
AT yuasakeizo structuralbasisofehepmediatedoffenseagainstphlorotannininduceddefensefrombrownalgaetoprotectakubglactivity
AT tsujiakihiko structuralbasisofehepmediatedoffenseagainstphlorotannininduceddefensefrombrownalgaetoprotectakubglactivity
AT yaomin structuralbasisofehepmediatedoffenseagainstphlorotannininduceddefensefrombrownalgaetoprotectakubglactivity