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Interdomain interactions dictate the function of the Candida albicans Hsp110 protein Msi3

Heat shock proteins of 110 kDa (Hsp110s), a unique class of molecular chaperones, are essential for maintaining protein homeostasis. Hsp110s exhibit a strong chaperone activity preventing protein aggregation (the “holdase” activity) and also function as the major nucleotide-exchange factor (NEF) for...

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Autores principales: Li, Hongtao, Hu, Liqing, Cuffee, Crist William, Mohamed, Mahetab, Li, Qianbin, Liu, Qingdai, Zhou, Lei, Liu, Qinglian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8424595/
https://www.ncbi.nlm.nih.gov/pubmed/34403698
http://dx.doi.org/10.1016/j.jbc.2021.101082
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author Li, Hongtao
Hu, Liqing
Cuffee, Crist William
Mohamed, Mahetab
Li, Qianbin
Liu, Qingdai
Zhou, Lei
Liu, Qinglian
author_facet Li, Hongtao
Hu, Liqing
Cuffee, Crist William
Mohamed, Mahetab
Li, Qianbin
Liu, Qingdai
Zhou, Lei
Liu, Qinglian
author_sort Li, Hongtao
collection PubMed
description Heat shock proteins of 110 kDa (Hsp110s), a unique class of molecular chaperones, are essential for maintaining protein homeostasis. Hsp110s exhibit a strong chaperone activity preventing protein aggregation (the “holdase” activity) and also function as the major nucleotide-exchange factor (NEF) for Hsp70 chaperones. Hsp110s contain two functional domains: a nucleotide-binding domain (NBD) and substrate-binding domain (SBD). ATP binding is essential for Hsp110 function and results in close contacts between the NBD and SBD. However, the molecular mechanism of this ATP-induced allosteric coupling remains poorly defined. In this study, we carried out biochemical analysis on Msi3, the sole Hsp110 in Candida albicans, to dissect the unique allosteric coupling of Hsp110s using three mutations affecting the domain–domain interface. All the mutations abolished both the in vivo and in vitro functions of Msi3. While the ATP-bound state was disrupted in all mutants, only mutation of the NBD-SBDβ interfaces showed significant ATPase activity, suggesting that the full-length Hsp110s have an ATPase that is mainly suppressed by NBD-SBDβ contacts. Moreover, the high-affinity ATP-binding unexpectedly appears to require these NBD-SBD contacts. Remarkably, the “holdase” activity was largely intact for all mutants tested while NEF activity was mostly compromised, although both activities strictly depended on the ATP-bound state, indicating different requirements for these two activities. Stable peptide substrate binding to Msi3 led to dissociation of the NBD-SBD contacts and compromised interactions with Hsp70. Taken together, our data demonstrate that the exceptionally strong NBD-SBD contacts in Hsp110s dictate the unique allosteric coupling and biochemical activities.
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spelling pubmed-84245952021-09-13 Interdomain interactions dictate the function of the Candida albicans Hsp110 protein Msi3 Li, Hongtao Hu, Liqing Cuffee, Crist William Mohamed, Mahetab Li, Qianbin Liu, Qingdai Zhou, Lei Liu, Qinglian J Biol Chem Research Article Heat shock proteins of 110 kDa (Hsp110s), a unique class of molecular chaperones, are essential for maintaining protein homeostasis. Hsp110s exhibit a strong chaperone activity preventing protein aggregation (the “holdase” activity) and also function as the major nucleotide-exchange factor (NEF) for Hsp70 chaperones. Hsp110s contain two functional domains: a nucleotide-binding domain (NBD) and substrate-binding domain (SBD). ATP binding is essential for Hsp110 function and results in close contacts between the NBD and SBD. However, the molecular mechanism of this ATP-induced allosteric coupling remains poorly defined. In this study, we carried out biochemical analysis on Msi3, the sole Hsp110 in Candida albicans, to dissect the unique allosteric coupling of Hsp110s using three mutations affecting the domain–domain interface. All the mutations abolished both the in vivo and in vitro functions of Msi3. While the ATP-bound state was disrupted in all mutants, only mutation of the NBD-SBDβ interfaces showed significant ATPase activity, suggesting that the full-length Hsp110s have an ATPase that is mainly suppressed by NBD-SBDβ contacts. Moreover, the high-affinity ATP-binding unexpectedly appears to require these NBD-SBD contacts. Remarkably, the “holdase” activity was largely intact for all mutants tested while NEF activity was mostly compromised, although both activities strictly depended on the ATP-bound state, indicating different requirements for these two activities. Stable peptide substrate binding to Msi3 led to dissociation of the NBD-SBD contacts and compromised interactions with Hsp70. Taken together, our data demonstrate that the exceptionally strong NBD-SBD contacts in Hsp110s dictate the unique allosteric coupling and biochemical activities. American Society for Biochemistry and Molecular Biology 2021-08-14 /pmc/articles/PMC8424595/ /pubmed/34403698 http://dx.doi.org/10.1016/j.jbc.2021.101082 Text en © 2021 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
Li, Hongtao
Hu, Liqing
Cuffee, Crist William
Mohamed, Mahetab
Li, Qianbin
Liu, Qingdai
Zhou, Lei
Liu, Qinglian
Interdomain interactions dictate the function of the Candida albicans Hsp110 protein Msi3
title Interdomain interactions dictate the function of the Candida albicans Hsp110 protein Msi3
title_full Interdomain interactions dictate the function of the Candida albicans Hsp110 protein Msi3
title_fullStr Interdomain interactions dictate the function of the Candida albicans Hsp110 protein Msi3
title_full_unstemmed Interdomain interactions dictate the function of the Candida albicans Hsp110 protein Msi3
title_short Interdomain interactions dictate the function of the Candida albicans Hsp110 protein Msi3
title_sort interdomain interactions dictate the function of the candida albicans hsp110 protein msi3
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8424595/
https://www.ncbi.nlm.nih.gov/pubmed/34403698
http://dx.doi.org/10.1016/j.jbc.2021.101082
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