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Coil-to-α-helix transition at the Nup358-BicD2 interface activates BicD2 for dynein recruitment

Nup358, a protein of the nuclear pore complex, facilitates a nuclear positioning pathway that is essential for many biological processes, including neuromuscular and brain development. Nup358 interacts with the dynein adaptor Bicaudal D2 (BicD2), which in turn recruits the dynein machinery to positi...

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Autores principales: Gibson, James M, Cui, Heying, Ali, M Yusuf, Zhao, Xiaoxin, Debler, Erik W, Zhao, Jing, Trybus, Kathleen M, Solmaz, Sozanne R, Wang, Chunyu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8956292/
https://www.ncbi.nlm.nih.gov/pubmed/35229716
http://dx.doi.org/10.7554/eLife.74714
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author Gibson, James M
Cui, Heying
Ali, M Yusuf
Zhao, Xiaoxin
Debler, Erik W
Zhao, Jing
Trybus, Kathleen M
Solmaz, Sozanne R
Wang, Chunyu
author_facet Gibson, James M
Cui, Heying
Ali, M Yusuf
Zhao, Xiaoxin
Debler, Erik W
Zhao, Jing
Trybus, Kathleen M
Solmaz, Sozanne R
Wang, Chunyu
author_sort Gibson, James M
collection PubMed
description Nup358, a protein of the nuclear pore complex, facilitates a nuclear positioning pathway that is essential for many biological processes, including neuromuscular and brain development. Nup358 interacts with the dynein adaptor Bicaudal D2 (BicD2), which in turn recruits the dynein machinery to position the nucleus. However, the molecular mechanisms of the Nup358/BicD2 interaction and the activation of transport remain poorly understood. Here for the first time, we show that a minimal Nup358 domain activates dynein/dynactin/BicD2 for processive motility on microtubules. Using nuclear magnetic resonance titration and chemical exchange saturation transfer, mutagenesis, and circular dichroism spectroscopy, a Nup358 α-helix encompassing residues 2162–2184 was identified, which transitioned from a random coil to an α-helical conformation upon BicD2 binding and formed the core of the Nup358-BicD2 interface. Mutations in this region of Nup358 decreased the Nup358/BicD2 interaction, resulting in decreased dynein recruitment and impaired motility. BicD2 thus recognizes Nup358 through a ‘cargo recognition α-helix,’ a structural feature that may stabilize BicD2 in its activated state and promote processive dynein motility.
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spelling pubmed-89562922022-03-26 Coil-to-α-helix transition at the Nup358-BicD2 interface activates BicD2 for dynein recruitment Gibson, James M Cui, Heying Ali, M Yusuf Zhao, Xiaoxin Debler, Erik W Zhao, Jing Trybus, Kathleen M Solmaz, Sozanne R Wang, Chunyu eLife Structural Biology and Molecular Biophysics Nup358, a protein of the nuclear pore complex, facilitates a nuclear positioning pathway that is essential for many biological processes, including neuromuscular and brain development. Nup358 interacts with the dynein adaptor Bicaudal D2 (BicD2), which in turn recruits the dynein machinery to position the nucleus. However, the molecular mechanisms of the Nup358/BicD2 interaction and the activation of transport remain poorly understood. Here for the first time, we show that a minimal Nup358 domain activates dynein/dynactin/BicD2 for processive motility on microtubules. Using nuclear magnetic resonance titration and chemical exchange saturation transfer, mutagenesis, and circular dichroism spectroscopy, a Nup358 α-helix encompassing residues 2162–2184 was identified, which transitioned from a random coil to an α-helical conformation upon BicD2 binding and formed the core of the Nup358-BicD2 interface. Mutations in this region of Nup358 decreased the Nup358/BicD2 interaction, resulting in decreased dynein recruitment and impaired motility. BicD2 thus recognizes Nup358 through a ‘cargo recognition α-helix,’ a structural feature that may stabilize BicD2 in its activated state and promote processive dynein motility. eLife Sciences Publications, Ltd 2022-03-01 /pmc/articles/PMC8956292/ /pubmed/35229716 http://dx.doi.org/10.7554/eLife.74714 Text en © 2022, Gibson 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
Gibson, James M
Cui, Heying
Ali, M Yusuf
Zhao, Xiaoxin
Debler, Erik W
Zhao, Jing
Trybus, Kathleen M
Solmaz, Sozanne R
Wang, Chunyu
Coil-to-α-helix transition at the Nup358-BicD2 interface activates BicD2 for dynein recruitment
title Coil-to-α-helix transition at the Nup358-BicD2 interface activates BicD2 for dynein recruitment
title_full Coil-to-α-helix transition at the Nup358-BicD2 interface activates BicD2 for dynein recruitment
title_fullStr Coil-to-α-helix transition at the Nup358-BicD2 interface activates BicD2 for dynein recruitment
title_full_unstemmed Coil-to-α-helix transition at the Nup358-BicD2 interface activates BicD2 for dynein recruitment
title_short Coil-to-α-helix transition at the Nup358-BicD2 interface activates BicD2 for dynein recruitment
title_sort coil-to-α-helix transition at the nup358-bicd2 interface activates bicd2 for dynein recruitment
topic Structural Biology and Molecular Biophysics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8956292/
https://www.ncbi.nlm.nih.gov/pubmed/35229716
http://dx.doi.org/10.7554/eLife.74714
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