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Aha1 Exhibits Distinctive Dynamics Behavior and Chaperone-Like Activity

Aha1 is the only co-chaperone known to strongly stimulate the ATPase activity of Hsp90. Meanwhile, besides the well-studied co-chaperone function, human Aha1 has also been demonstrated to exhibit chaperoning activity against stress-denatured proteins. To provide structural insights for a better unde...

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Autores principales: Hu, Huifang, Wang, Qing, Du, Jingwen, Liu, Zhijun, Ding, Yiluan, Xue, Hongjuan, Zhou, Chen, Feng, Linyin, Zhang, Naixia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8037086/
https://www.ncbi.nlm.nih.gov/pubmed/33808352
http://dx.doi.org/10.3390/molecules26071943
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author Hu, Huifang
Wang, Qing
Du, Jingwen
Liu, Zhijun
Ding, Yiluan
Xue, Hongjuan
Zhou, Chen
Feng, Linyin
Zhang, Naixia
author_facet Hu, Huifang
Wang, Qing
Du, Jingwen
Liu, Zhijun
Ding, Yiluan
Xue, Hongjuan
Zhou, Chen
Feng, Linyin
Zhang, Naixia
author_sort Hu, Huifang
collection PubMed
description Aha1 is the only co-chaperone known to strongly stimulate the ATPase activity of Hsp90. Meanwhile, besides the well-studied co-chaperone function, human Aha1 has also been demonstrated to exhibit chaperoning activity against stress-denatured proteins. To provide structural insights for a better understanding of Aha1’s co-chaperone and chaperone-like activities, nuclear magnetic resonance (NMR) techniques were used to reveal the unique structure and internal dynamics features of full-length human Aha1. We then found that, in solution, both the two domains of Aha1 presented distinctive thermal stabilities and dynamics behaviors defined by their primary sequences and three-dimensional structures. The low thermal stability (melting temperature of Aha1(28–162): 54.45 °C) and the internal dynamics featured with slow motions on the µs-ms time scale were detected for Aha1’s N-terminal domain (Aha1N). The aforementioned experimental results suggest that Aha1N is in an energy-unfavorable state, which would therefore thermostatically favor the interaction of Aha1N with its partner proteins such as Hsp90’s middle domain. Differently from Aha1N, Aha1C (Aha1’s C-terminal domain) exhibited enhanced thermal stability (melting temperature of Aha1(204–335): 72.41 °C) and the internal dynamics featured with intermediate motions on the ps-ns time scale. Aha1C’s thermal and structural stabilities make it competent for the stabilization of the exposed hydrophobic groove of dimerized Hsp90’s N-terminal domain. Of note, according to the NMR data and the thermal shift results, although the very N-terminal region (M1-W27) and the C-terminal relaxin-like factor (RLF) motif showed no tight contacts with the remaining parts of human Aha1, they were identified to play important roles in the recognition of intrinsically disordered pathological α-synuclein.
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spelling pubmed-80370862021-04-12 Aha1 Exhibits Distinctive Dynamics Behavior and Chaperone-Like Activity Hu, Huifang Wang, Qing Du, Jingwen Liu, Zhijun Ding, Yiluan Xue, Hongjuan Zhou, Chen Feng, Linyin Zhang, Naixia Molecules Article Aha1 is the only co-chaperone known to strongly stimulate the ATPase activity of Hsp90. Meanwhile, besides the well-studied co-chaperone function, human Aha1 has also been demonstrated to exhibit chaperoning activity against stress-denatured proteins. To provide structural insights for a better understanding of Aha1’s co-chaperone and chaperone-like activities, nuclear magnetic resonance (NMR) techniques were used to reveal the unique structure and internal dynamics features of full-length human Aha1. We then found that, in solution, both the two domains of Aha1 presented distinctive thermal stabilities and dynamics behaviors defined by their primary sequences and three-dimensional structures. The low thermal stability (melting temperature of Aha1(28–162): 54.45 °C) and the internal dynamics featured with slow motions on the µs-ms time scale were detected for Aha1’s N-terminal domain (Aha1N). The aforementioned experimental results suggest that Aha1N is in an energy-unfavorable state, which would therefore thermostatically favor the interaction of Aha1N with its partner proteins such as Hsp90’s middle domain. Differently from Aha1N, Aha1C (Aha1’s C-terminal domain) exhibited enhanced thermal stability (melting temperature of Aha1(204–335): 72.41 °C) and the internal dynamics featured with intermediate motions on the ps-ns time scale. Aha1C’s thermal and structural stabilities make it competent for the stabilization of the exposed hydrophobic groove of dimerized Hsp90’s N-terminal domain. Of note, according to the NMR data and the thermal shift results, although the very N-terminal region (M1-W27) and the C-terminal relaxin-like factor (RLF) motif showed no tight contacts with the remaining parts of human Aha1, they were identified to play important roles in the recognition of intrinsically disordered pathological α-synuclein. MDPI 2021-03-30 /pmc/articles/PMC8037086/ /pubmed/33808352 http://dx.doi.org/10.3390/molecules26071943 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Hu, Huifang
Wang, Qing
Du, Jingwen
Liu, Zhijun
Ding, Yiluan
Xue, Hongjuan
Zhou, Chen
Feng, Linyin
Zhang, Naixia
Aha1 Exhibits Distinctive Dynamics Behavior and Chaperone-Like Activity
title Aha1 Exhibits Distinctive Dynamics Behavior and Chaperone-Like Activity
title_full Aha1 Exhibits Distinctive Dynamics Behavior and Chaperone-Like Activity
title_fullStr Aha1 Exhibits Distinctive Dynamics Behavior and Chaperone-Like Activity
title_full_unstemmed Aha1 Exhibits Distinctive Dynamics Behavior and Chaperone-Like Activity
title_short Aha1 Exhibits Distinctive Dynamics Behavior and Chaperone-Like Activity
title_sort aha1 exhibits distinctive dynamics behavior and chaperone-like activity
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8037086/
https://www.ncbi.nlm.nih.gov/pubmed/33808352
http://dx.doi.org/10.3390/molecules26071943
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