Cargando…

Structural model of dodecameric heat-shock protein Hsp21: Flexible N-terminal arms interact with client proteins while C-terminal tails maintain the dodecamer and chaperone activity

Small heat-shock proteins (sHsps) prevent aggregation of thermosensitive client proteins in a first line of defense against cellular stress. The mechanisms by which they perform this function have been hard to define due to limited structural information; currently, there is only one high-resolution...

Descripción completa

Detalles Bibliográficos
Autores principales: Rutsdottir, Gudrun, Härmark, Johan, Weide, Yoran, Hebert, Hans, Rasmussen, Morten I., Wernersson, Sven, Respondek, Michal, Akke, Mikael, Højrup, Peter, Koeck, Philip J. B., Söderberg, Christopher A. G., Emanuelsson, Cecilia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5427286/
https://www.ncbi.nlm.nih.gov/pubmed/28325834
http://dx.doi.org/10.1074/jbc.M116.766816
_version_ 1783235629281181696
author Rutsdottir, Gudrun
Härmark, Johan
Weide, Yoran
Hebert, Hans
Rasmussen, Morten I.
Wernersson, Sven
Respondek, Michal
Akke, Mikael
Højrup, Peter
Koeck, Philip J. B.
Söderberg, Christopher A. G.
Emanuelsson, Cecilia
author_facet Rutsdottir, Gudrun
Härmark, Johan
Weide, Yoran
Hebert, Hans
Rasmussen, Morten I.
Wernersson, Sven
Respondek, Michal
Akke, Mikael
Højrup, Peter
Koeck, Philip J. B.
Söderberg, Christopher A. G.
Emanuelsson, Cecilia
author_sort Rutsdottir, Gudrun
collection PubMed
description Small heat-shock proteins (sHsps) prevent aggregation of thermosensitive client proteins in a first line of defense against cellular stress. The mechanisms by which they perform this function have been hard to define due to limited structural information; currently, there is only one high-resolution structure of a plant sHsp published, that of the cytosolic Hsp16.9. We took interest in Hsp21, a chloroplast-localized sHsp crucial for plant stress resistance, which has even longer N-terminal arms than Hsp16.9, with a functionally important and conserved methionine-rich motif. To provide a framework for investigating structure-function relationships of Hsp21 and understanding these sequence variations, we developed a structural model of Hsp21 based on homology modeling, cryo-EM, cross-linking mass spectrometry, NMR, and small-angle X-ray scattering. Our data suggest a dodecameric arrangement of two trimer-of-dimer discs stabilized by the C-terminal tails, possibly through tail-to-tail interactions between the discs, mediated through extended IXVXI motifs. Our model further suggests that six N-terminal arms are located on the outside of the dodecamer, accessible for interaction with client proteins, and distinct from previous undefined or inwardly facing arms. To test the importance of the IXVXI motif, we created the point mutant V181A, which, as expected, disrupts the Hsp21 dodecamer and decreases chaperone activity. Finally, our data emphasize that sHsp chaperone efficiency depends on oligomerization and that client interactions can occur both with and without oligomer dissociation. These results provide a generalizable workflow to explore sHsps, expand our understanding of sHsp structural motifs, and provide a testable Hsp21 structure model to inform future investigations.
format Online
Article
Text
id pubmed-5427286
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher American Society for Biochemistry and Molecular Biology
record_format MEDLINE/PubMed
spelling pubmed-54272862017-05-15 Structural model of dodecameric heat-shock protein Hsp21: Flexible N-terminal arms interact with client proteins while C-terminal tails maintain the dodecamer and chaperone activity Rutsdottir, Gudrun Härmark, Johan Weide, Yoran Hebert, Hans Rasmussen, Morten I. Wernersson, Sven Respondek, Michal Akke, Mikael Højrup, Peter Koeck, Philip J. B. Söderberg, Christopher A. G. Emanuelsson, Cecilia J Biol Chem Protein Structure and Folding Small heat-shock proteins (sHsps) prevent aggregation of thermosensitive client proteins in a first line of defense against cellular stress. The mechanisms by which they perform this function have been hard to define due to limited structural information; currently, there is only one high-resolution structure of a plant sHsp published, that of the cytosolic Hsp16.9. We took interest in Hsp21, a chloroplast-localized sHsp crucial for plant stress resistance, which has even longer N-terminal arms than Hsp16.9, with a functionally important and conserved methionine-rich motif. To provide a framework for investigating structure-function relationships of Hsp21 and understanding these sequence variations, we developed a structural model of Hsp21 based on homology modeling, cryo-EM, cross-linking mass spectrometry, NMR, and small-angle X-ray scattering. Our data suggest a dodecameric arrangement of two trimer-of-dimer discs stabilized by the C-terminal tails, possibly through tail-to-tail interactions between the discs, mediated through extended IXVXI motifs. Our model further suggests that six N-terminal arms are located on the outside of the dodecamer, accessible for interaction with client proteins, and distinct from previous undefined or inwardly facing arms. To test the importance of the IXVXI motif, we created the point mutant V181A, which, as expected, disrupts the Hsp21 dodecamer and decreases chaperone activity. Finally, our data emphasize that sHsp chaperone efficiency depends on oligomerization and that client interactions can occur both with and without oligomer dissociation. These results provide a generalizable workflow to explore sHsps, expand our understanding of sHsp structural motifs, and provide a testable Hsp21 structure model to inform future investigations. American Society for Biochemistry and Molecular Biology 2017-05-12 2017-03-21 /pmc/articles/PMC5427286/ /pubmed/28325834 http://dx.doi.org/10.1074/jbc.M116.766816 Text en © 2017 by The American Society for Biochemistry and Molecular Biology, Inc. Author's Choice—Final version free via Creative Commons CC-BY license (http://creativecommons.org/licenses/by/4.0) .
spellingShingle Protein Structure and Folding
Rutsdottir, Gudrun
Härmark, Johan
Weide, Yoran
Hebert, Hans
Rasmussen, Morten I.
Wernersson, Sven
Respondek, Michal
Akke, Mikael
Højrup, Peter
Koeck, Philip J. B.
Söderberg, Christopher A. G.
Emanuelsson, Cecilia
Structural model of dodecameric heat-shock protein Hsp21: Flexible N-terminal arms interact with client proteins while C-terminal tails maintain the dodecamer and chaperone activity
title Structural model of dodecameric heat-shock protein Hsp21: Flexible N-terminal arms interact with client proteins while C-terminal tails maintain the dodecamer and chaperone activity
title_full Structural model of dodecameric heat-shock protein Hsp21: Flexible N-terminal arms interact with client proteins while C-terminal tails maintain the dodecamer and chaperone activity
title_fullStr Structural model of dodecameric heat-shock protein Hsp21: Flexible N-terminal arms interact with client proteins while C-terminal tails maintain the dodecamer and chaperone activity
title_full_unstemmed Structural model of dodecameric heat-shock protein Hsp21: Flexible N-terminal arms interact with client proteins while C-terminal tails maintain the dodecamer and chaperone activity
title_short Structural model of dodecameric heat-shock protein Hsp21: Flexible N-terminal arms interact with client proteins while C-terminal tails maintain the dodecamer and chaperone activity
title_sort structural model of dodecameric heat-shock protein hsp21: flexible n-terminal arms interact with client proteins while c-terminal tails maintain the dodecamer and chaperone activity
topic Protein Structure and Folding
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5427286/
https://www.ncbi.nlm.nih.gov/pubmed/28325834
http://dx.doi.org/10.1074/jbc.M116.766816
work_keys_str_mv AT rutsdottirgudrun structuralmodelofdodecamericheatshockproteinhsp21flexiblenterminalarmsinteractwithclientproteinswhilecterminaltailsmaintainthedodecamerandchaperoneactivity
AT harmarkjohan structuralmodelofdodecamericheatshockproteinhsp21flexiblenterminalarmsinteractwithclientproteinswhilecterminaltailsmaintainthedodecamerandchaperoneactivity
AT weideyoran structuralmodelofdodecamericheatshockproteinhsp21flexiblenterminalarmsinteractwithclientproteinswhilecterminaltailsmaintainthedodecamerandchaperoneactivity
AT heberthans structuralmodelofdodecamericheatshockproteinhsp21flexiblenterminalarmsinteractwithclientproteinswhilecterminaltailsmaintainthedodecamerandchaperoneactivity
AT rasmussenmorteni structuralmodelofdodecamericheatshockproteinhsp21flexiblenterminalarmsinteractwithclientproteinswhilecterminaltailsmaintainthedodecamerandchaperoneactivity
AT wernerssonsven structuralmodelofdodecamericheatshockproteinhsp21flexiblenterminalarmsinteractwithclientproteinswhilecterminaltailsmaintainthedodecamerandchaperoneactivity
AT respondekmichal structuralmodelofdodecamericheatshockproteinhsp21flexiblenterminalarmsinteractwithclientproteinswhilecterminaltailsmaintainthedodecamerandchaperoneactivity
AT akkemikael structuralmodelofdodecamericheatshockproteinhsp21flexiblenterminalarmsinteractwithclientproteinswhilecterminaltailsmaintainthedodecamerandchaperoneactivity
AT højruppeter structuralmodelofdodecamericheatshockproteinhsp21flexiblenterminalarmsinteractwithclientproteinswhilecterminaltailsmaintainthedodecamerandchaperoneactivity
AT koeckphilipjb structuralmodelofdodecamericheatshockproteinhsp21flexiblenterminalarmsinteractwithclientproteinswhilecterminaltailsmaintainthedodecamerandchaperoneactivity
AT soderbergchristopherag structuralmodelofdodecamericheatshockproteinhsp21flexiblenterminalarmsinteractwithclientproteinswhilecterminaltailsmaintainthedodecamerandchaperoneactivity
AT emanuelssoncecilia structuralmodelofdodecamericheatshockproteinhsp21flexiblenterminalarmsinteractwithclientproteinswhilecterminaltailsmaintainthedodecamerandchaperoneactivity