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A Disorder-to-Order Transition Activates an ATP-Independent Membrane Protein Chaperone

The 43 kDa subunit of the chloroplast signal recognition particle, cpSRP43, is an ATP-independent chaperone essential for the biogenesis of the light harvesting chlorophyll-binding proteins (LHCP), the most abundant membrane protein family on earth. cpSRP43 is activated by a stromal factor, cpSRP54,...

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Autores principales: Siegel, Alex, McAvoy, Camille Z., Lam, Vinh, Liang, Fu-Cheng, Kroon, Gerard, Miaou, Emily, Griffin, Patrick, Wright, Peter E., Shan, Shu-ou
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7780713/
https://www.ncbi.nlm.nih.gov/pubmed/33188783
http://dx.doi.org/10.1016/j.jmb.2020.11.007
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author Siegel, Alex
McAvoy, Camille Z.
Lam, Vinh
Liang, Fu-Cheng
Kroon, Gerard
Miaou, Emily
Griffin, Patrick
Wright, Peter E.
Shan, Shu-ou
author_facet Siegel, Alex
McAvoy, Camille Z.
Lam, Vinh
Liang, Fu-Cheng
Kroon, Gerard
Miaou, Emily
Griffin, Patrick
Wright, Peter E.
Shan, Shu-ou
author_sort Siegel, Alex
collection PubMed
description The 43 kDa subunit of the chloroplast signal recognition particle, cpSRP43, is an ATP-independent chaperone essential for the biogenesis of the light harvesting chlorophyll-binding proteins (LHCP), the most abundant membrane protein family on earth. cpSRP43 is activated by a stromal factor, cpSRP54, to more effectively capture and solubilize LHCPs. The molecular mechanism underlying this chaperone activation is unclear. Here, a combination of hydrogen-deuterium exchange, electron paramagnetic resonance, and NMR spectroscopy experiments reveal that a disorder-to-order transition of the ankyrin repeat motifs in the substrate binding domain of cpSRP43 drives its activation. An analogous coil-to-helix transition in the bridging helix, which connects the ankyrin repeat motifs to the cpSRP54 binding site in the second chromodomain, mediates long-range allosteric communication of cpSRP43 with its activating binding partner. Our results provide a molecular model to explain how the conformational dynamics of cpSRP43 enables regulation of its chaperone activity and suggest a general mechanism by which ATP-independent chaperones with cooperatively folding domains can be regulated.
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spelling pubmed-77807132021-01-04 A Disorder-to-Order Transition Activates an ATP-Independent Membrane Protein Chaperone Siegel, Alex McAvoy, Camille Z. Lam, Vinh Liang, Fu-Cheng Kroon, Gerard Miaou, Emily Griffin, Patrick Wright, Peter E. Shan, Shu-ou J Mol Biol Article The 43 kDa subunit of the chloroplast signal recognition particle, cpSRP43, is an ATP-independent chaperone essential for the biogenesis of the light harvesting chlorophyll-binding proteins (LHCP), the most abundant membrane protein family on earth. cpSRP43 is activated by a stromal factor, cpSRP54, to more effectively capture and solubilize LHCPs. The molecular mechanism underlying this chaperone activation is unclear. Here, a combination of hydrogen-deuterium exchange, electron paramagnetic resonance, and NMR spectroscopy experiments reveal that a disorder-to-order transition of the ankyrin repeat motifs in the substrate binding domain of cpSRP43 drives its activation. An analogous coil-to-helix transition in the bridging helix, which connects the ankyrin repeat motifs to the cpSRP54 binding site in the second chromodomain, mediates long-range allosteric communication of cpSRP43 with its activating binding partner. Our results provide a molecular model to explain how the conformational dynamics of cpSRP43 enables regulation of its chaperone activity and suggest a general mechanism by which ATP-independent chaperones with cooperatively folding domains can be regulated. 2020-11-12 2020-12-04 /pmc/articles/PMC7780713/ /pubmed/33188783 http://dx.doi.org/10.1016/j.jmb.2020.11.007 Text en This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Siegel, Alex
McAvoy, Camille Z.
Lam, Vinh
Liang, Fu-Cheng
Kroon, Gerard
Miaou, Emily
Griffin, Patrick
Wright, Peter E.
Shan, Shu-ou
A Disorder-to-Order Transition Activates an ATP-Independent Membrane Protein Chaperone
title A Disorder-to-Order Transition Activates an ATP-Independent Membrane Protein Chaperone
title_full A Disorder-to-Order Transition Activates an ATP-Independent Membrane Protein Chaperone
title_fullStr A Disorder-to-Order Transition Activates an ATP-Independent Membrane Protein Chaperone
title_full_unstemmed A Disorder-to-Order Transition Activates an ATP-Independent Membrane Protein Chaperone
title_short A Disorder-to-Order Transition Activates an ATP-Independent Membrane Protein Chaperone
title_sort disorder-to-order transition activates an atp-independent membrane protein chaperone
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7780713/
https://www.ncbi.nlm.nih.gov/pubmed/33188783
http://dx.doi.org/10.1016/j.jmb.2020.11.007
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